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		<id>https://proteopedia.org/index.php?title=Cholera_toxin&amp;diff=1388968</id>
		<title>Cholera toxin</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Cholera_toxin&amp;diff=1388968"/>
		<updated>2012-05-09T05:26:56Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_1xtc|  PDB=1xtc  | SIZE=420| SCENE=Cholera_toxin/Cv/1 |right|CAPTION=Cholera toxin [[1xtc]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Cholera toxin]] (CTX), secreted by bacterium [http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae],is an oligomeric complex of  enzymatic A and pentameric B subunits, which bind to the cell surface. CTX is the main cause of the diarrhea symptoms of cholera infection.  &lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;PDB ID&#039;&#039;&#039;: 1XTC                                         &lt;br /&gt;
&#039;&#039;&#039;MMDB ID:&#039;&#039;&#039; 52036&lt;br /&gt;
{{TOC limit|limit=2}}&lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
[[Image:CTX interaction.PNG|left|270px|thumb| Interaction of 7 chains of Cholera toxin[[1xtc]]. Cholera toxin contains 7 chains: A,C,D,E,F,G and H.Chains A and C belong to subunit A. Chains C,D,E,F,G and H belong to subunit B]] &lt;br /&gt;
Cholera toxin(CTX) has two types of subunits: subunit A and subunit B. A subunit contains A1 domain, which includes the enzymatic active site, and A2 domain, which has a α–helix tail. The B subunit contains five chains that form a pentameric ring around the central pore in structure; Subunit A and subunit B are assembled by the α–helix tail of A2 domain, which inserts into the central pore. CTX is the main virulence factor of the pathogen &#039;&#039;Vibrio cholerae&#039;&#039; and cause the major symptom of infection: extreme diarrhea, vomiting, cramps and even death &amp;lt;ref&amp;gt;Ryan KJ; Ray CG (editors) (2004). Sherris Medical Microbiology (4th ed.). McGraw Hill. p. 375. ISBN 0838585299.&amp;lt;/ref&amp;gt;,&amp;lt;ref&amp;gt;Faruque SM; Nair GB (editors). (2008). Vibrio cholerae: Genomics and Molecular Biology. Caister Academic Press. ISBN 978-1-904455-33-2.&amp;lt;/ref&amp;gt;,&amp;lt;ref&amp;gt;Jennifer McDowall, Cholera Toxin, EMBL-EMI, Interpro&amp;lt;/ref&amp;gt;.&lt;br /&gt;
The enzymatic subunit has a globular domain (CTA1) and a long helical domain (CTA2).  Once the CTX binds to the cell surface, it is internalized, and its CTA1 domain binds to ADP-ribosylation factor 6(Arf6)[http://en.wikipedia.org/wiki/ADP_ribosylation_factor], enabling its catalytic activity. &lt;br /&gt;
&lt;br /&gt;
The image at the lower right  correspond to the crystal structure of cholera toxin ([[1xtc]]).  The image at left correspond to the annotated interaction of 7 chains of cholera toxins([[1xtc]]) in Proteopedia see [[Toxins]].&lt;br /&gt;
&lt;br /&gt;
[[Image:1xtc.png|right|280px|thumb|Crystal Structure of Cholera toxin [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
== mRNA Structure ==&lt;br /&gt;
[[Image:CTX_RNA.png|left|280px|thumb|mRNA structure of CTX. The structure is predicted by the method of minimum free energy, using RNAfold WebServer.The colors represent the propensity of each nucleotide to participate in base pairs and whether a predicted base pair is well predicted. The scale ranges from red (highest probability) to blue-violet (lower probability).]]&lt;br /&gt;
&lt;br /&gt;
RNA folding algorithm uses a method to minimize the free energy of the structure so that the RNA molecule is in the most stable form. The image at lower left is the predicted mRNA structure of CTX, which is made by RNAfold WebServer.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
Cholera toxin, after being secreted from the &#039;&#039;Vibrio cholerae&#039;&#039;, binds to the enterocytes (intestinal cells) by the interaction between the subunit B and GM1 ganglioside[http://en.wikipedia.org/wiki/GM1] receptor on enterocytes, which then promotes the toxin endocytosis. Next, A1 turns to an active enzyme after separating with the A2 domain. After the A1 domain of subunit A of the toxin enters the cytosol, it activates adenylate cyclase to produce cAMP through G proteins, which triggers the activation of cystic fibrosis transmembrane conductance regulator (CFTR), leading to watery diarrhea: the efflux of water and ions from cells &amp;lt;ref&amp;gt;Jennifer McDowall, Cholera Toxin, EMBL-EMI, Interpro&amp;lt;/ref&amp;gt;.&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
CTXφ Bacteriophage which is carried by &#039;&#039;Vibrio cholerae&#039;&#039; produces Cholera toxin. Cholera toxin is encoded by the ctxA and ctxB genes that are introduced into V. cholerae strains by horizontal gene transfer &amp;lt;ref&amp;gt;Davis B, Waldor M (2003). &amp;quot;Filamentous phages linked to virulence of Vibrio cholerae&amp;quot;. Curr Opin Microbiol 6 (1): 35–42. doi:10.1016/S1369-5274(02)00005-X. PMID 12615217.&amp;lt;/ref&amp;gt;. &lt;br /&gt;
&lt;br /&gt;
== Application ==&lt;br /&gt;
Subunit B of cholera toxin is designed to be applied as a neuronal tracer due to its non-toxic characteristic. It also used to identify lipid rafts as florescent tag on the cell surface since lipid rafts contains GM1 gangliosides, which will interact with subunit B during mechanism &amp;lt;ref&amp;gt;Luppi P.H.. &amp;quot;The Discovery of Cholera-Toxin as a Powerful Neuroanatomical Tool&amp;quot;. Retrieved 2011-03-23.&amp;lt;/ref&amp;gt;. It is demonstrated that cholera toxin subunit B is a sensitive retrograde tracer for the central nervous system &amp;lt;ref&amp;gt;Luppi P.H., Fort P., Jouvet M. Iontophoretic application of unconjugated cholera toxin B subunit (CTb) combined with immunohistochemistry of neurochemical substances: a method for transmitter identification of retrogradely labeled neurons. Brain Res. 534 (1-2) pages : 209-224 (1990)&amp;lt;/ref&amp;gt;.&lt;br /&gt;
&lt;br /&gt;
== 3D Structures of Cholera toxin ==&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;Updated November 2011&#039;&#039;&lt;br /&gt;
[[Image:Picture1.png|right|300px|thumb|Structure Notation of the RNA of CTX A, CLC RNA Workbench]]&lt;br /&gt;
[[Image:TREE - MAXIMUM LIKEHOOD.PNG|right|430px|thumb|Phylogenetic Tree of MSA of CTX, Statistic Method:Maximum Likelihood, made by MEGA 5.05]]&lt;br /&gt;
=== CTX ===&lt;br /&gt;
&lt;br /&gt;
[[1xtc]] - CTX&lt;br /&gt;
&lt;br /&gt;
=== CTX A subunit ===&lt;br /&gt;
&lt;br /&gt;
[[2a5d]], [[2a5g]] – CTX A subunit+hArf6+GTP – human&amp;lt;br /&amp;gt;&lt;br /&gt;
[[2a5f]] -  CTX A subunit+hArf6+GTP+NAD&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1s5b]], [[1s5c]], [[1s5d]], [[1s5e]], [[1s5f]] -  CTX A subunit (mutant)&lt;br /&gt;
&lt;br /&gt;
=== CTX B subunits ===&lt;br /&gt;
&lt;br /&gt;
[[1fgb]] - CTX B subunits&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1g8z]] , [[1chp]], [[1chq]] - CTX B subunits (mutant)&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1rcv]], [[1rd9]], [[1rdp]], [[1rf2]], [[1pzi]], [[1pzj]], [[1pzk]], [[1efi]], [[1eef]], [[1djr]], [[1eei]] – CTX B subunits+ galactoside derivatives&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1llr]], [[1jqy]], [[1jr0]], [[1fd7]], [[1md2]] -  CTX B subunits+BMSC derivatives&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1eef]] -  CTX B subunits+PEPG&amp;lt;br /&amp;gt;&lt;br /&gt;
[[3chb]], [[2chb]] - CTX B subunits+pentasaccharide&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1ct1]] - CTX B subunits (mutant)+pentasaccharide&amp;lt;br /&amp;gt;&lt;br /&gt;
[[3efx]] – CTX B/heat-labile enterotoxin B chain&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1tet]] – CTX peptide 3+FAB light and heavy chains - mouse&lt;br /&gt;
&lt;br /&gt;
== Multiple Sequence Alignment ==&lt;br /&gt;
[[Image:MSA1.jpg|left|250px|thumb|Multiple Sequence Alignment-TEXSHADE result.BlastP of CTX A subunit that contains six different species. This is made by Biology Workbench]]&lt;br /&gt;
&#039;&#039;&#039;Selected Sequences:&#039;&#039;&#039;&lt;br /&gt;
&lt;br /&gt;
1. Cholera toxin Subunit A&lt;br /&gt;
&lt;br /&gt;
2. Escherichia coli E24377A plasmid pETEC_80, complete sequence&lt;br /&gt;
&lt;br /&gt;
3. Escherichia coli strain 214-III elt operon, complete sequence&lt;br /&gt;
&lt;br /&gt;
4. Vibrio cholerae strain JS9803 prophage Vibrio phage CTX Zot (zot)&lt;br /&gt;
&lt;br /&gt;
5. Vibrio cholera O395 chromosome II, complete sequence&lt;br /&gt;
&lt;br /&gt;
6. Vibrio cholera O1 str. 2010EL-1786 chromosome 1, complete&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Reference ==&lt;br /&gt;
&amp;lt;references /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== External Links ==&lt;br /&gt;
PDB ID: 1XTC [http://www.rcsb.org/pdb/101/motm_disscussed_entry.do?id=1xtc]&lt;br /&gt;
               &lt;br /&gt;
MMDB ID: 52036 [http://www.ncbi.nlm.nih.gov/Structure/mmdb/mmdbsrv.cgi?uid=52036]&lt;br /&gt;
&lt;br /&gt;
PubMed[http://www.ncbi.nlm.nih.gov/pubmed/7658473?dopt=Abstract]&lt;br /&gt;
&lt;br /&gt;
[[Category:Topic Page]]&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Cholera_toxin&amp;diff=1388967</id>
		<title>Cholera toxin</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Cholera_toxin&amp;diff=1388967"/>
		<updated>2012-05-09T05:20:35Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_1xtc|  PDB=1xtc  | SIZE=420| SCENE=Cholera_toxin/Cv/1 |right|CAPTION=Cholera toxin [[1xtc]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Cholera toxin]] (CTX), secreted by bacterium [http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae],is an oligomeric complex of  enzymatic A and pentameric B subunits, which bind to the cell surface. CTX is the main cause of the diarrhea symptoms of cholera infection.  &lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;PDB ID&#039;&#039;&#039;: 1XTC                                         &lt;br /&gt;
&#039;&#039;&#039;MMDB ID:&#039;&#039;&#039; 52036&lt;br /&gt;
{{TOC limit|limit=2}}&lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
[[Image:CTX interaction.PNG|left|270px|thumb| Interaction of 7 chains of Cholera toxin[[1xtc]]. Cholera toxin contains 7 chains: A,C,D,E,F,G and H.Chains A and C belong to subunit A. Chains C,D,E,F,G and H belong to subunit B]] &lt;br /&gt;
Cholera toxin(CTX) has two types of subunits: subunit A and subunit B. A subunit contains A1 domain, which includes the enzymatic active site, and A2 domain, which has a α–helix tail. The B subunit contains five chains that form a pentameric ring around the central pore in structure; Subunit A and subunit B are assembled by the α–helix tail of A2 domain, which inserts into the central pore. CTX is the main virulence factor of the pathogen &#039;&#039;Vibrio cholerae&#039;&#039; and cause the major symptom of infection: extreme diarrhea, vomiting, cramps and even death &amp;lt;ref&amp;gt;Ryan KJ; Ray CG (editors) (2004). Sherris Medical Microbiology (4th ed.). McGraw Hill. p. 375. ISBN 0838585299.&amp;lt;/ref&amp;gt;,&amp;lt;ref&amp;gt;Faruque SM; Nair GB (editors). (2008). Vibrio cholerae: Genomics and Molecular Biology. Caister Academic Press. ISBN 978-1-904455-33-2.&amp;lt;/ref&amp;gt;,&amp;lt;ref&amp;gt;Jennifer McDowall, Cholera Toxin, EMBL-EMI, Interpro&amp;lt;/ref&amp;gt;.&lt;br /&gt;
The enzymatic subunit has a globular domain (CTA1) and a long helical domain (CTA2).  Once the CTX binds to the cell surface, it is internalized, and its CTA1 domain binds to ADP-ribosylation factor 6(Arf6)[http://en.wikipedia.org/wiki/ADP_ribosylation_factor], enabling its catalytic activity. &lt;br /&gt;
&lt;br /&gt;
The image at the lower right  correspond to the crystal structure of cholera toxin ([[1xtc]]).  The image at left correspond to the annotated interaction of 7 chains of cholera toxins([[1xtc]]) in Proteopedia see [[Toxins]].&lt;br /&gt;
&lt;br /&gt;
[[Image:1xtc.png|right|280px|thumb|Crystal Structure of Cholera toxin [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
== mRNA Structure ==&lt;br /&gt;
[[Image:CTX_RNA.png|left|280px|thumb|mRNA structure of CTX. This is predicted by method using the minimum free energy, made by mRNA fold.The colors represent the propensity of each nucleotide to participate in base pairs and whether a predicted base pair is well predicted. The scale ranges from red (highest probability) to blue-violet (lower probability).]]&lt;br /&gt;
&lt;br /&gt;
RNA folding algorithm uses a method to minimize the free energy of the structure so that the RNA molecule is in the most stable form.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
Cholera toxin, after being secreted from the &#039;&#039;Vibrio cholerae&#039;&#039;, binds to the enterocytes (intestinal cells) by the interaction between the subunit B and GM1 ganglioside[http://en.wikipedia.org/wiki/GM1] receptor on enterocytes, which then promotes the toxin endocytosis. Next, A1 turns to an active enzyme after separating with the A2 domain. After the A1 domain of subunit A of the toxin enters the cytosol, it activates adenylate cyclase to produce cAMP through G proteins, which triggers the activation of cystic fibrosis transmembrane conductance regulator (CFTR), leading to watery diarrhea: the efflux of water and ions from cells &amp;lt;ref&amp;gt;Jennifer McDowall, Cholera Toxin, EMBL-EMI, Interpro&amp;lt;/ref&amp;gt;.&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
CTXφ Bacteriophage which is carried by &#039;&#039;Vibrio cholerae&#039;&#039; produces Cholera toxin. Cholera toxin is encoded by the ctxA and ctxB genes that are introduced into V. cholerae strains by horizontal gene transfer &amp;lt;ref&amp;gt;Davis B, Waldor M (2003). &amp;quot;Filamentous phages linked to virulence of Vibrio cholerae&amp;quot;. Curr Opin Microbiol 6 (1): 35–42. doi:10.1016/S1369-5274(02)00005-X. PMID 12615217.&amp;lt;/ref&amp;gt;. &lt;br /&gt;
&lt;br /&gt;
== Application ==&lt;br /&gt;
Subunit B of cholera toxin is designed to be applied as a neuronal tracer due to its non-toxic characteristic. It also used to identify lipid rafts as florescent tag on the cell surface since lipid rafts contains GM1 gangliosides, which will interact with subunit B during mechanism &amp;lt;ref&amp;gt;Luppi P.H.. &amp;quot;The Discovery of Cholera-Toxin as a Powerful Neuroanatomical Tool&amp;quot;. Retrieved 2011-03-23.&amp;lt;/ref&amp;gt;. It is demonstrated that cholera toxin subunit B is a sensitive retrograde tracer for the central nervous system &amp;lt;ref&amp;gt;Luppi P.H., Fort P., Jouvet M. Iontophoretic application of unconjugated cholera toxin B subunit (CTb) combined with immunohistochemistry of neurochemical substances: a method for transmitter identification of retrogradely labeled neurons. Brain Res. 534 (1-2) pages : 209-224 (1990)&amp;lt;/ref&amp;gt;.&lt;br /&gt;
&lt;br /&gt;
== 3D Structures of Cholera toxin ==&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;Updated November 2011&#039;&#039;&lt;br /&gt;
[[Image:Picture1.png|right|300px|thumb|Structure Notation of the RNA of CTX A, CLC RNA Workbench]]&lt;br /&gt;
[[Image:TREE - MAXIMUM LIKEHOOD.PNG|right|430px|thumb|Phylogenetic Tree of MSA of CTX, Statistic Method:Maximum Likelihood, made by MEGA 5.05]]&lt;br /&gt;
=== CTX ===&lt;br /&gt;
&lt;br /&gt;
[[1xtc]] - CTX&lt;br /&gt;
&lt;br /&gt;
=== CTX A subunit ===&lt;br /&gt;
&lt;br /&gt;
[[2a5d]], [[2a5g]] – CTX A subunit+hArf6+GTP – human&amp;lt;br /&amp;gt;&lt;br /&gt;
[[2a5f]] -  CTX A subunit+hArf6+GTP+NAD&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1s5b]], [[1s5c]], [[1s5d]], [[1s5e]], [[1s5f]] -  CTX A subunit (mutant)&lt;br /&gt;
&lt;br /&gt;
=== CTX B subunits ===&lt;br /&gt;
&lt;br /&gt;
[[1fgb]] - CTX B subunits&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1g8z]] , [[1chp]], [[1chq]] - CTX B subunits (mutant)&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1rcv]], [[1rd9]], [[1rdp]], [[1rf2]], [[1pzi]], [[1pzj]], [[1pzk]], [[1efi]], [[1eef]], [[1djr]], [[1eei]] – CTX B subunits+ galactoside derivatives&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1llr]], [[1jqy]], [[1jr0]], [[1fd7]], [[1md2]] -  CTX B subunits+BMSC derivatives&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1eef]] -  CTX B subunits+PEPG&amp;lt;br /&amp;gt;&lt;br /&gt;
[[3chb]], [[2chb]] - CTX B subunits+pentasaccharide&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1ct1]] - CTX B subunits (mutant)+pentasaccharide&amp;lt;br /&amp;gt;&lt;br /&gt;
[[3efx]] – CTX B/heat-labile enterotoxin B chain&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1tet]] – CTX peptide 3+FAB light and heavy chains - mouse&lt;br /&gt;
&lt;br /&gt;
== Multiple Sequence Alignment ==&lt;br /&gt;
[[Image:MSA1.jpg|left|250px|thumb|Multiple Sequence Alignment-TEXSHADE result.BlastP of CTX A subunit that contains six different species. This is made by Biology Workbench]]&lt;br /&gt;
&#039;&#039;&#039;Selected Sequences:&#039;&#039;&#039;&lt;br /&gt;
&lt;br /&gt;
1. Cholera toxin Subunit A&lt;br /&gt;
&lt;br /&gt;
2. Escherichia coli E24377A plasmid pETEC_80, complete sequence&lt;br /&gt;
&lt;br /&gt;
3. Escherichia coli strain 214-III elt operon, complete sequence&lt;br /&gt;
&lt;br /&gt;
4. Vibrio cholerae strain JS9803 prophage Vibrio phage CTX Zot (zot)&lt;br /&gt;
&lt;br /&gt;
5. Vibrio cholera O395 chromosome II, complete sequence&lt;br /&gt;
&lt;br /&gt;
6. Vibrio cholera O1 str. 2010EL-1786 chromosome 1, complete&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Reference ==&lt;br /&gt;
&amp;lt;references /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== External Links ==&lt;br /&gt;
PDB ID: 1XTC [http://www.rcsb.org/pdb/101/motm_disscussed_entry.do?id=1xtc]&lt;br /&gt;
               &lt;br /&gt;
MMDB ID: 52036 [http://www.ncbi.nlm.nih.gov/Structure/mmdb/mmdbsrv.cgi?uid=52036]&lt;br /&gt;
&lt;br /&gt;
PubMed[http://www.ncbi.nlm.nih.gov/pubmed/7658473?dopt=Abstract]&lt;br /&gt;
&lt;br /&gt;
[[Category:Topic Page]]&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Cholera_toxin&amp;diff=1388966</id>
		<title>Cholera toxin</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Cholera_toxin&amp;diff=1388966"/>
		<updated>2012-05-09T05:13:05Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_1xtc|  PDB=1xtc  | SIZE=420| SCENE=Cholera_toxin/Cv/1 |right|CAPTION=Cholera toxin [[1xtc]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Cholera toxin]] (CTX), secreted by bacterium [http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae],is an oligomeric complex of  enzymatic A and pentameric B subunits, which bind to the cell surface. CTX is the main cause of the diarrhea symptoms of cholera infection.  &lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;PDB ID&#039;&#039;&#039;: 1XTC                                         &lt;br /&gt;
&#039;&#039;&#039;MMDB ID:&#039;&#039;&#039; 52036&lt;br /&gt;
{{TOC limit|limit=2}}&lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
[[Image:CTX interaction.PNG|left|270px|thumb| Interaction of 7 chains of Cholera toxin[[1xtc]]. Cholera toxin contains 7 chains: A,C,D,E,F,G and H.Chains A and C belong to subunit A. Chains C,D,E,F,G and H belong to subunit B]] &lt;br /&gt;
Cholera toxin(CTX) has two types of subunits: subunit A and subunit B. A subunit contains A1 domain, which includes the enzymatic active site, and A2 domain, which has a α–helix tail. The B subunit contains five chains that form a pentameric ring around the central pore in structure; Subunit A and subunit B are assembled by the α–helix tail of A2 domain, which inserts into the central pore. CTX is the main virulence factor of the pathogen &#039;&#039;Vibrio cholerae&#039;&#039; and cause the major symptom of infection: extreme diarrhea, vomiting, cramps and even death &amp;lt;ref&amp;gt;Ryan KJ; Ray CG (editors) (2004). Sherris Medical Microbiology (4th ed.). McGraw Hill. p. 375. ISBN 0838585299.&amp;lt;/ref&amp;gt;,&amp;lt;ref&amp;gt;Faruque SM; Nair GB (editors). (2008). Vibrio cholerae: Genomics and Molecular Biology. Caister Academic Press. ISBN 978-1-904455-33-2.&amp;lt;/ref&amp;gt;,&amp;lt;ref&amp;gt;Jennifer McDowall, Cholera Toxin, EMBL-EMI, Interpro&amp;lt;/ref&amp;gt;.&lt;br /&gt;
The enzymatic subunit has a globular domain (CTA1) and a long helical domain (CTA2).  Once the CTX binds to the cell surface, it is internalized, and its CTA1 domain binds to ADP-ribosylation factor 6 (Arf6), enabling its catalytic activity. &lt;br /&gt;
&lt;br /&gt;
The image at the lower right  correspond to the crystal structure of cholera toxin ([[1xtc]]).  The image at left correspond to the annotated interaction of 7 chains of cholera toxins([[1xtc]]) in Proteopedia see [[Toxins]].&lt;br /&gt;
&lt;br /&gt;
[[Image:1xtc.png|right|280px|thumb|Crystal Structure of Cholera toxin [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
== mRNA Structure ==&lt;br /&gt;
[[Image:CTX_RNA.png|left|280px|thumb|mRNA structure of CTX. This is predicted by method using the minimum free energy, made by mRNA fold.The colors represent the propensity of each nucleotide to participate in base pairs and whether a predicted base pair is well predicted. The scale ranges from red (highest probability) to blue-violet (lower probability).]]&lt;br /&gt;
&lt;br /&gt;
RNA folding algorithm uses a method to minimize the free energy of the structure so that the RNA molecule is in the most stable form.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
Cholera toxin, after being secreted from the &#039;&#039;Vibrio cholerae&#039;&#039;, binds to the enterocytes (intestinal cells) by the interaction between the subunit B and GM1 ganglioside receptor on enterocytes, which then promotes the toxin endocytosis. Next, A1 turns to an active enzyme after separating with the A2 domain. After the A1 domain of subunit A of the toxin enters the cytosol, it activates adenylate cyclase to produce cAMP through G proteins, which triggers the activation of cystic fibrosis transmembrane conductance regulator (CFTR), leading to watery diarrhea: the efflux of water and ions from cells &amp;lt;ref&amp;gt;Jennifer McDowall, Cholera Toxin, EMBL-EMI, Interpro&amp;lt;/ref&amp;gt;.&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
CTXφ Bacteriophage which is carried by &#039;&#039;Vibrio cholerae&#039;&#039; produces Cholera toxin. Cholera toxin is encoded by the ctxA and ctxB genes that are introduced into V. cholerae strains by horizontal gene transfer &amp;lt;ref&amp;gt;Davis B, Waldor M (2003). &amp;quot;Filamentous phages linked to virulence of Vibrio cholerae&amp;quot;. Curr Opin Microbiol 6 (1): 35–42. doi:10.1016/S1369-5274(02)00005-X. PMID 12615217.&amp;lt;/ref&amp;gt;. &lt;br /&gt;
&lt;br /&gt;
== Application ==&lt;br /&gt;
Subunit B of cholera toxin is designed to be applied as a neuronal tracer due to its non-toxic characteristic. It also used to identify lipid rafts as florescent tag on the cell surface since lipid rafts contains GM1 gangliosides, which will interact with subunit B during mechanism &amp;lt;ref&amp;gt;Luppi P.H.. &amp;quot;The Discovery of Cholera-Toxin as a Powerful Neuroanatomical Tool&amp;quot;. Retrieved 2011-03-23.&amp;lt;/ref&amp;gt;. It is demonstrated that cholera toxin subunit B is a sensitive retrograde tracer for the central nervous system &amp;lt;ref&amp;gt;Luppi P.H., Fort P., Jouvet M. Iontophoretic application of unconjugated cholera toxin B subunit (CTb) combined with immunohistochemistry of neurochemical substances: a method for transmitter identification of retrogradely labeled neurons. Brain Res. 534 (1-2) pages : 209-224 (1990)&amp;lt;/ref&amp;gt;.&lt;br /&gt;
&lt;br /&gt;
== 3D Structures of Cholera toxin ==&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;Updated November 2011&#039;&#039;&lt;br /&gt;
[[Image:Picture1.png|right|300px|thumb|Structure Notation of the RNA of CTX A, CLC RNA Workbench]]&lt;br /&gt;
[[Image:TREE - MAXIMUM LIKEHOOD.PNG|right|430px|thumb|Phylogenetic Tree of MSA of CTX, Statistic Method:Maximum Likelihood, made by MEGA 5.05]]&lt;br /&gt;
=== CTX ===&lt;br /&gt;
&lt;br /&gt;
[[1xtc]] - CTX&lt;br /&gt;
&lt;br /&gt;
=== CTX A subunit ===&lt;br /&gt;
&lt;br /&gt;
[[2a5d]], [[2a5g]] – CTX A subunit+hArf6+GTP – human&amp;lt;br /&amp;gt;&lt;br /&gt;
[[2a5f]] -  CTX A subunit+hArf6+GTP+NAD&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1s5b]], [[1s5c]], [[1s5d]], [[1s5e]], [[1s5f]] -  CTX A subunit (mutant)&lt;br /&gt;
&lt;br /&gt;
=== CTX B subunits ===&lt;br /&gt;
&lt;br /&gt;
[[1fgb]] - CTX B subunits&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1g8z]] , [[1chp]], [[1chq]] - CTX B subunits (mutant)&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1rcv]], [[1rd9]], [[1rdp]], [[1rf2]], [[1pzi]], [[1pzj]], [[1pzk]], [[1efi]], [[1eef]], [[1djr]], [[1eei]] – CTX B subunits+ galactoside derivatives&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1llr]], [[1jqy]], [[1jr0]], [[1fd7]], [[1md2]] -  CTX B subunits+BMSC derivatives&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1eef]] -  CTX B subunits+PEPG&amp;lt;br /&amp;gt;&lt;br /&gt;
[[3chb]], [[2chb]] - CTX B subunits+pentasaccharide&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1ct1]] - CTX B subunits (mutant)+pentasaccharide&amp;lt;br /&amp;gt;&lt;br /&gt;
[[3efx]] – CTX B/heat-labile enterotoxin B chain&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1tet]] – CTX peptide 3+FAB light and heavy chains - mouse&lt;br /&gt;
&lt;br /&gt;
== Multiple Sequence Alignment ==&lt;br /&gt;
[[Image:MSA1.jpg|left|250px|thumb|Multiple Sequence Alignment-TEXSHADE result.BlastP of CTX A subunit that contains six different species. This is made by Biology Workbench]]&lt;br /&gt;
&#039;&#039;&#039;Selected Sequences:&#039;&#039;&#039;&lt;br /&gt;
&lt;br /&gt;
1. Cholera toxin Subunit A&lt;br /&gt;
&lt;br /&gt;
2. Escherichia coli E24377A plasmid pETEC_80, complete sequence&lt;br /&gt;
&lt;br /&gt;
3. Escherichia coli strain 214-III elt operon, complete sequence&lt;br /&gt;
&lt;br /&gt;
4. Vibrio cholerae strain JS9803 prophage Vibrio phage CTX Zot (zot)&lt;br /&gt;
&lt;br /&gt;
5. Vibrio cholera O395 chromosome II, complete sequence&lt;br /&gt;
&lt;br /&gt;
6. Vibrio cholera O1 str. 2010EL-1786 chromosome 1, complete&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Reference ==&lt;br /&gt;
&amp;lt;references /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== External Links ==&lt;br /&gt;
PDB ID: 1XTC [http://www.rcsb.org/pdb/101/motm_disscussed_entry.do?id=1xtc]&lt;br /&gt;
               &lt;br /&gt;
MMDB ID: 52036 [http://www.ncbi.nlm.nih.gov/Structure/mmdb/mmdbsrv.cgi?uid=52036]&lt;br /&gt;
&lt;br /&gt;
PubMed[http://www.ncbi.nlm.nih.gov/pubmed/7658473?dopt=Abstract]&lt;br /&gt;
&lt;br /&gt;
[[Category:Topic Page]]&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Cholera_toxin&amp;diff=1388965</id>
		<title>Cholera toxin</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Cholera_toxin&amp;diff=1388965"/>
		<updated>2012-05-09T05:01:09Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_1xtc|  PDB=1xtc  | SIZE=420| SCENE=Cholera_toxin/Cv/1 |right|CAPTION=Cholera toxin [[1xtc]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Cholera toxin]] (CTX), secreted by bacterium [http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae],is an oligomeric complex of  enzymatic A and pentameric B subunits, which bind to the cell surface. CTX is the main cause of the diarrhea symptoms of cholera infection.  &lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;PDB ID&#039;&#039;&#039;: 1XTC                                         &lt;br /&gt;
&#039;&#039;&#039;MMDB ID:&#039;&#039;&#039; 52036&lt;br /&gt;
{{TOC limit|limit=2}}&lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
[[Image:CTX interaction.PNG|left|270px|thumb| Interaction of 7 chains of Cholera toxin[[1xtc]]. Cholera toxin contains 7 chains: A,C,D,E,F,G and H.Chains A and C belong to subunit A. Chains C,D,E,F,G and H belong to subunit B]] &lt;br /&gt;
Cholera toxin(CTX) has two types of subunits: subunit A and subunit B. A subunit contains A1 domain, which includes the enzymatic active site, and A2 domain, which has a α–helix tail. The B subunit contains five chains that form a pentameric ring around the central pore in structure; Subunit A and subunit B are assembled by the α–helix tail of A2 domain, which inserts into the central pore. CTX is the main virulence factor of the pathogen &#039;&#039;Vibrio cholerae&#039;&#039; and cause the major symptom of infection: extreme diarrhea, vomiting, cramps and even death [1][2][3].&lt;br /&gt;
The enzymatic subunit has a globular domain (CTA1) and a long helical domain (CTA2).  Once the CTX binds to the cell surface, it is internalized, and its CTA1 domain binds to ADP-ribosylation factor 6 (Arf6), enabling its catalytic activity. &lt;br /&gt;
&lt;br /&gt;
The image at the lower right  correspond to the crystal structure of cholera toxin ([[1xtc]]).  The image at left correspond to the annotated interaction of 7 chains of cholera toxins([[1xtc]]) in Proteopedia see [[Toxins]].&lt;br /&gt;
&lt;br /&gt;
[[Image:1xtc.png|right|280px|thumb|Crystal Structure of Cholera toxin [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
== mRNA Structure ==&lt;br /&gt;
[[Image:CTX_RNA.png|left|280px|thumb|mRNA structure of CTX. This is predicted by method using the minimum free energy, made by mRNA fold.The colors represent the propensity of each nucleotide to participate in base pairs and whether a predicted base pair is well predicted. The scale ranges from red (highest probability) to blue-violet (lower probability).]]&lt;br /&gt;
&lt;br /&gt;
RNA folding algorithm uses a method to minimize the free energy of the structure so that the RNA molecule is in the most stable form.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
Cholera toxin, after being secreted from the &#039;&#039;Vibrio cholerae&#039;&#039;, binds to the enterocytes (intestinal cells) by the interaction between the subunit B and GM1 ganglioside receptor on enterocytes, which then promotes the toxin endocytosis. Next, A1 turns to an active enzyme after separating with the A2 domain. After the A1 domain of subunit A of the toxin enters the cytosol, it activates adenylate cyclase to produce cAMP through G proteins, which triggers the activation of cystic fibrosis transmembrane conductance regulator (CFTR), leading to watery diarrhea: the efflux of water and ions from cells [3].&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
CTXφ Bacteriophage which is carried by &#039;&#039;Vibrio cholerae&#039;&#039; produces Cholera toxin. Cholera toxin is encoded by the ctxA and ctxB genes that are introduced into V. cholerae strains by horizontal gene transfer [4]. &lt;br /&gt;
&lt;br /&gt;
== Application ==&lt;br /&gt;
Subunit B of cholera toxin is designed to be applied as a neuronal tracer due to its non-toxic characteristic. It also used to identify lipid rafts as florescent tag on the cell surface since lipid rafts contains GM1 gangliosides, which will interact with subunit B during mechanism [5]. It is demonstrated that cholera toxin subunit B is a sensitive retrograde tracer for the central nervous system.[6]&lt;br /&gt;
&lt;br /&gt;
== 3D Structures of Cholera toxin ==&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;Updated November 2011&#039;&#039;&lt;br /&gt;
[[Image:Picture1.png|right|300px|thumb|Structure Notation of the RNA of CTX A, CLC RNA Workbench]]&lt;br /&gt;
[[Image:TREE - MAXIMUM LIKEHOOD.PNG|right|430px|thumb|Phylogenetic Tree of MSA of CTX, Statistic Method:Maximum Likelihood, made by MEGA 5.05]]&lt;br /&gt;
=== CTX ===&lt;br /&gt;
&lt;br /&gt;
[[1xtc]] - CTX&lt;br /&gt;
&lt;br /&gt;
=== CTX A subunit ===&lt;br /&gt;
&lt;br /&gt;
[[2a5d]], [[2a5g]] – CTX A subunit+hArf6+GTP – human&amp;lt;br /&amp;gt;&lt;br /&gt;
[[2a5f]] -  CTX A subunit+hArf6+GTP+NAD&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1s5b]], [[1s5c]], [[1s5d]], [[1s5e]], [[1s5f]] -  CTX A subunit (mutant)&lt;br /&gt;
&lt;br /&gt;
=== CTX B subunits ===&lt;br /&gt;
&lt;br /&gt;
[[1fgb]] - CTX B subunits&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1g8z]] , [[1chp]], [[1chq]] - CTX B subunits (mutant)&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1rcv]], [[1rd9]], [[1rdp]], [[1rf2]], [[1pzi]], [[1pzj]], [[1pzk]], [[1efi]], [[1eef]], [[1djr]], [[1eei]] – CTX B subunits+ galactoside derivatives&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1llr]], [[1jqy]], [[1jr0]], [[1fd7]], [[1md2]] -  CTX B subunits+BMSC derivatives&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1eef]] -  CTX B subunits+PEPG&amp;lt;br /&amp;gt;&lt;br /&gt;
[[3chb]], [[2chb]] - CTX B subunits+pentasaccharide&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1ct1]] - CTX B subunits (mutant)+pentasaccharide&amp;lt;br /&amp;gt;&lt;br /&gt;
[[3efx]] – CTX B/heat-labile enterotoxin B chain&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1tet]] – CTX peptide 3+FAB light and heavy chains - mouse&lt;br /&gt;
&lt;br /&gt;
== Multiple Sequence Alignment ==&lt;br /&gt;
[[Image:MSA1.jpg|left|260px|thumb|Multiple Sequence Alignment-TEXSHADE result.BlastP of CTX A subunit that contains six different species. This is made by Biology Workbench]]&lt;br /&gt;
&#039;&#039;&#039;Selected Sequences:&#039;&#039;&#039;&lt;br /&gt;
&lt;br /&gt;
1. Cholera toxin Subunit A&lt;br /&gt;
&lt;br /&gt;
2. Escherichia coli E24377A plasmid pETEC_80, complete sequence&lt;br /&gt;
&lt;br /&gt;
3. Escherichia coli strain 214-III elt operon, complete sequence&lt;br /&gt;
&lt;br /&gt;
4. Vibrio cholerae strain JS9803 prophage Vibrio phage CTX Zot (zot)&lt;br /&gt;
&lt;br /&gt;
5. Vibrio cholera O395 chromosome II, complete sequence&lt;br /&gt;
&lt;br /&gt;
6. Vibrio cholera O1 str. 2010EL-1786 chromosome 1, complete&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Reference ==&lt;br /&gt;
[1] Ryan KJ; Ray CG (editors) (2004). Sherris Medical Microbiology (4th ed.). McGraw Hill. p. 375. ISBN 0838585299.&lt;br /&gt;
&lt;br /&gt;
[2] Faruque SM; Nair GB (editors). (2008). Vibrio cholerae: Genomics and Molecular Biology. Caister Academic Press. ISBN 978-1-904455-33-2 .&lt;br /&gt;
&lt;br /&gt;
[3] Jennifer McDowall, Cholera Toxin, EMBL-EMI, Interpro&lt;br /&gt;
&lt;br /&gt;
[4] Davis B, Waldor M (2003). &amp;quot;Filamentous phages linked to virulence of Vibrio cholerae&amp;quot;. Curr Opin Microbiol 6 (1): 35–42. doi:10.1016/S1369-5274(02)00005-X. PMID 12615217.&lt;br /&gt;
&lt;br /&gt;
[5] Luppi P.H.. &amp;quot;The Discovery of Cholera-Toxin as a Powerful Neuroanatomical Tool&amp;quot;. Retrieved 2011-03-23.&lt;br /&gt;
&lt;br /&gt;
[6] Luppi P.H., Fort P., Jouvet M. Iontophoretic application of unconjugated cholera toxin B subunit (CTb) combined with immunohistochemistry of neurochemical substances: a method for transmitter identification of retrogradely labeled neurons. Brain Res. 534 (1-2) pages : 209-224 (1990)&lt;br /&gt;
&lt;br /&gt;
== External Links ==&lt;br /&gt;
PDB ID: 1XTC [http://www.rcsb.org/pdb/101/motm_disscussed_entry.do?id=1xtc]&lt;br /&gt;
               &lt;br /&gt;
MMDB ID: 52036 [http://www.ncbi.nlm.nih.gov/Structure/mmdb/mmdbsrv.cgi?uid=52036]&lt;br /&gt;
&lt;br /&gt;
PubMed[http://www.ncbi.nlm.nih.gov/pubmed/7658473?dopt=Abstract]&lt;br /&gt;
&lt;br /&gt;
[[Category:Topic Page]]&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Cholera_toxin&amp;diff=1388964</id>
		<title>Cholera toxin</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Cholera_toxin&amp;diff=1388964"/>
		<updated>2012-05-09T04:57:35Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_1xtc|  PDB=1xtc  | SIZE=420| SCENE=Cholera_toxin/Cv/1 |right|CAPTION=Cholera toxin [[1xtc]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Cholera toxin]] (CTX), secreted by bacterium [http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae],is an oligomeric complex of  enzymatic A and pentameric B subunits, which bind to the cell surface. CTX is the main cause of the diarrhea symptoms of cholera infection.  &lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;PDB ID&#039;&#039;&#039;: 1XTC                                         &lt;br /&gt;
&#039;&#039;&#039;MMDB ID:&#039;&#039;&#039; 52036&lt;br /&gt;
{{TOC limit|limit=2}}&lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
[[Image:CTX interaction.PNG|left|270px|thumb| Interaction of 7 chains of Cholera toxin[[1xtc]]. Cholera toxin contains 7 chains: A,C,D,E,F,G and H.Chains A and C belong to subunit A. Chains C,D,E,F,G and H belong to subunit B]] &lt;br /&gt;
Cholera toxin(CTX) has two types of subunits: subunit A and subunit B. A subunit contains A1 domain, which includes the enzymatic active site, and A2 domain, which has a α–helix tail. The B subunit contains five chains that form a pentameric ring around the central pore in structure; Subunit A and subunit B are assembled by the α–helix tail of A2 domain, which inserts into the central pore. CTX is the main virulence factor of the pathogen &#039;&#039;Vibrio cholerae&#039;&#039; and cause the major symptom of infection: extreme diarrhea, vomiting, cramps and even death [1][2][3].&lt;br /&gt;
The enzymatic subunit has a globular domain (CTA1) and a long helical domain (CTA2).  Once the CTX binds to the cell surface, it is internalized, and its CTA1 domain binds to ADP-ribosylation factor 6 (Arf6) enabling its catalytic activity. &lt;br /&gt;
&lt;br /&gt;
The image at the lower right  correspond to the crystal structure of cholera toxin ([[1xtc]]).  The image at left correspond to the annotated interaction of 7 chains of cholera toxins([[1xtc]]) in Proteopedia see [[Toxins]].&lt;br /&gt;
&lt;br /&gt;
[[Image:1xtc.png|right|280px|thumb|Crystal Structure of Cholera toxin [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
== mRNA Structure ==&lt;br /&gt;
[[Image:CTX_RNA.png|left|280px|thumb|mRNA structure of CTX. This is predicted by method using the minimum free energy, made by mRNA fold.The colors represent the propensity of each nucleotide to participate in base pairs and whether a predicted base pair is well predicted. The scale ranges from red (highest probability) to blue-violet (lower probability).]]&lt;br /&gt;
&lt;br /&gt;
RNA folding algorithm uses a method to minimize the free energy of the structure so that the RNA molecule is in the most stable form.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
Cholera toxin, after secreted from the &#039;&#039;Vibrio cholerae&#039;&#039;, binds to the enterocytes (intestinal cells) by the interaction between the subunit B and GM1 ganglioside receptor on enterocytes, which then promotes the toxin endocytosis. Next, A1 turns to an active enzyme after separating with the A2 domain. After A1 domain of subunit A of toxin enters the cytosol, it activates the adenylate cyclase to produce cAMP through G protein, which triggers the activation of cystic fibrosis transmembrane conductance regulator (CFTR), leading to watery diarrhea: the efflux of water and ions from cells [3].&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
CTXφ Bacteriophage that is carried by &#039;&#039;Vibrio cholerae&#039;&#039; produces Cholera toxin. Cholera toxin is encoded by the gene which developed into Vibrio cholera by horizontal transfer [4]. &lt;br /&gt;
&lt;br /&gt;
== Application ==&lt;br /&gt;
Subunit B of cholera toxin is designed to be applied as a neuronal tracer due to its non-toxic characteristic. It also used to identify lipid rafts as florescent tag on the cell surface since lipid rafts contains GM1 gangliosides, which will interact with subunit B during mechanism [5]. It is demonstrated that cholera toxin subunit B is a sensitive retrograde tracer for the central nervous system.[6]&lt;br /&gt;
&lt;br /&gt;
== 3D Structures of Cholera toxin ==&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;Updated November 2011&#039;&#039;&lt;br /&gt;
[[Image:Picture1.png|right|300px|thumb|Structure Notation of the RNA of CTX A, CLC RNA Workbench]]&lt;br /&gt;
[[Image:TREE - MAXIMUM LIKEHOOD.PNG|right|430px|thumb|Phylogenetic Tree of MSA of CTX, Statistic Method:Maximum Likelihood, made by MEGA 5.05]]&lt;br /&gt;
=== CTX ===&lt;br /&gt;
&lt;br /&gt;
[[1xtc]] - CTX&lt;br /&gt;
&lt;br /&gt;
=== CTX A subunit ===&lt;br /&gt;
&lt;br /&gt;
[[2a5d]], [[2a5g]] – CTX A subunit+hArf6+GTP – human&amp;lt;br /&amp;gt;&lt;br /&gt;
[[2a5f]] -  CTX A subunit+hArf6+GTP+NAD&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1s5b]], [[1s5c]], [[1s5d]], [[1s5e]], [[1s5f]] -  CTX A subunit (mutant)&lt;br /&gt;
&lt;br /&gt;
=== CTX B subunits ===&lt;br /&gt;
&lt;br /&gt;
[[1fgb]] - CTX B subunits&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1g8z]] , [[1chp]], [[1chq]] - CTX B subunits (mutant)&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1rcv]], [[1rd9]], [[1rdp]], [[1rf2]], [[1pzi]], [[1pzj]], [[1pzk]], [[1efi]], [[1eef]], [[1djr]], [[1eei]] – CTX B subunits+ galactoside derivatives&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1llr]], [[1jqy]], [[1jr0]], [[1fd7]], [[1md2]] -  CTX B subunits+BMSC derivatives&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1eef]] -  CTX B subunits+PEPG&amp;lt;br /&amp;gt;&lt;br /&gt;
[[3chb]], [[2chb]] - CTX B subunits+pentasaccharide&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1ct1]] - CTX B subunits (mutant)+pentasaccharide&amp;lt;br /&amp;gt;&lt;br /&gt;
[[3efx]] – CTX B/heat-labile enterotoxin B chain&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1tet]] – CTX peptide 3+FAB light and heavy chains - mouse&lt;br /&gt;
&lt;br /&gt;
== Multiple Sequence Alignment ==&lt;br /&gt;
[[Image:MSA1.jpg|left|260px|thumb|Multiple Sequence Alignment-TEXSHADE result.BlastP of CTX A subunit that contains six different species. This is made by Biology Workbench]]&lt;br /&gt;
&#039;&#039;&#039;Selected Sequences:&#039;&#039;&#039;&lt;br /&gt;
&lt;br /&gt;
1. Cholera toxin Subunit A&lt;br /&gt;
&lt;br /&gt;
2. Escherichia coli E24377A plasmid pETEC_80, complete sequence&lt;br /&gt;
&lt;br /&gt;
3. Escherichia coli strain 214-III elt operon, complete sequence&lt;br /&gt;
&lt;br /&gt;
4. Vibrio cholerae strain JS9803 prophage Vibrio phage CTX Zot (zot)&lt;br /&gt;
&lt;br /&gt;
5. Vibrio cholera O395 chromosome II, complete sequence&lt;br /&gt;
&lt;br /&gt;
6. Vibrio cholera O1 str. 2010EL-1786 chromosome 1, complete&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Reference ==&lt;br /&gt;
[1] Ryan KJ; Ray CG (editors) (2004). Sherris Medical Microbiology (4th ed.). McGraw Hill. p. 375. ISBN 0838585299.&lt;br /&gt;
&lt;br /&gt;
[2] Faruque SM; Nair GB (editors). (2008). Vibrio cholerae: Genomics and Molecular Biology. Caister Academic Press. ISBN 978-1-904455-33-2 .&lt;br /&gt;
&lt;br /&gt;
[3] Jennifer McDowall, Cholera Toxin, EMBL-EMI, Interpro&lt;br /&gt;
&lt;br /&gt;
[4] Davis B, Waldor M (2003). &amp;quot;Filamentous phages linked to virulence of Vibrio cholerae&amp;quot;. Curr Opin Microbiol 6 (1): 35–42. doi:10.1016/S1369-5274(02)00005-X. PMID 12615217.&lt;br /&gt;
&lt;br /&gt;
[5] Luppi P.H.. &amp;quot;The Discovery of Cholera-Toxin as a Powerful Neuroanatomical Tool&amp;quot;. Retrieved 2011-03-23.&lt;br /&gt;
&lt;br /&gt;
[6] Luppi P.H., Fort P., Jouvet M. Iontophoretic application of unconjugated cholera toxin B subunit (CTb) combined with immunohistochemistry of neurochemical substances: a method for transmitter identification of retrogradely labeled neurons. Brain Res. 534 (1-2) pages : 209-224 (1990)&lt;br /&gt;
&lt;br /&gt;
== External Links ==&lt;br /&gt;
PDB ID: 1XTC [http://www.rcsb.org/pdb/101/motm_disscussed_entry.do?id=1xtc]&lt;br /&gt;
               &lt;br /&gt;
MMDB ID: 52036 [http://www.ncbi.nlm.nih.gov/Structure/mmdb/mmdbsrv.cgi?uid=52036]&lt;br /&gt;
&lt;br /&gt;
PubMed[http://www.ncbi.nlm.nih.gov/pubmed/7658473?dopt=Abstract]&lt;br /&gt;
&lt;br /&gt;
[[Category:Topic Page]]&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Cholera_toxin&amp;diff=1388963</id>
		<title>Cholera toxin</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Cholera_toxin&amp;diff=1388963"/>
		<updated>2012-05-09T04:27:00Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_1xtc|  PDB=1xtc  | SIZE=420| SCENE=Cholera_toxin/Cv/1 |right|CAPTION=Cholera toxin [[1xtc]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Cholera toxin]] (CTX), secreted by bacterium [http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae],is an oligomeric complex of an enzymatic subunit (chain A) and 5 copies of chain B which bind to the cell surface. CTX is the main cause of the diarrhea symptoms of cholera infection.  &lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;PDB ID&#039;&#039;&#039;: 1XTC                                         &lt;br /&gt;
&#039;&#039;&#039;MMDB ID:&#039;&#039;&#039; 52036&lt;br /&gt;
{{TOC limit|limit=2}}&lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
[[Image:CTX interaction.PNG|left|270px|thumb| Interaction of 7 chains of Cholera toxin[[1xtc]]. Cholera toxin contains 7 chains: A,C,D,E,F,G and H.Chains A and C belong to subunit A. Chains C,D,E,F,G and H belong to subunit B]] &lt;br /&gt;
Cholera toxin(CTX) has two types of subunits: subunit A and subunit B. A subunit contains A1 domain, which includes the enzymatic active site, and A2 domain, which has a α–helix tail. The B subunit contains five chains that form a pentameric ring around the central pore in structure; Subunit A and subunit B are assembled by the α–helix tail of A2 domain, which inserts into the central pore. CTX is the main virulence factor of the pathogen &#039;&#039;Vibrio cholerae&#039;&#039; and cause the major symptom of infection: extreme diarrhea, vomiting, cramps and even death [1][2][3].&lt;br /&gt;
The enzymatic subunit has a globular domain (CTA1) and a long helical domain (CTA2).  Once the CTX binds to the cell surface, it is internalized, and its CTA1 domain binds to ADP-ribosylation factor 6 (Arf6) enabling its catalytic activity. &lt;br /&gt;
&lt;br /&gt;
The image at the lower right  correspond to the crystal structure of cholera toxin ([[1xtc]]).  The image at left correspond to the annotated interaction of 7 chains of cholera toxins([[1xtc]]) in Proteopedia see [[Toxins]].&lt;br /&gt;
&lt;br /&gt;
[[Image:1xtc.png|right|280px|thumb|Crystal Structure of Cholera toxin [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
== mRNA Structure ==&lt;br /&gt;
[[Image:CTX_RNA.png|left|280px|thumb|mRNA structure of CTX. This is predicted by method using the minimum free energy, made by mRNA fold.The colors represent the propensity of each nucleotide to participate in base pairs and whether a predicted base pair is well predicted. The scale ranges from red (highest probability) to blue-violet (lower probability).]]&lt;br /&gt;
&lt;br /&gt;
RNA folding algorithm uses a method to minimize the free energy of the structure so that the RNA molecule is in the most stable form.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
Cholera toxin, after secreted from the &#039;&#039;Vibrio cholerae&#039;&#039;, binds to the enterocytes (intestinal cells) by the interaction between the subunit B and GM1 ganglioside receptor on enterocytes, which then promotes the toxin endocytosis. Next, A1 turns to an active enzyme after separating with the A2 domain. After A1 domain of subunit A of toxin enters the cytosol, it activates the adenylate cyclase to produce cAMP through G protein, which triggers the activation of cystic fibrosis transmembrane conductance regulator (CFTR), leading to watery diarrhea: the efflux of water and ions from cells [3].&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
CTXφ Bacteriophage that is carried by &#039;&#039;Vibrio cholerae&#039;&#039; produces Cholera toxin. Cholera toxin is encoded by the gene which developed into Vibrio cholera by horizontal transfer [4]. &lt;br /&gt;
&lt;br /&gt;
== Application ==&lt;br /&gt;
Subunit B of cholera toxin is designed to be applied as a neuronal tracer due to its non-toxic characteristic. It also used to identify lipid rafts as florescent tag on the cell surface since lipid rafts contains GM1 gangliosides, which will interact with subunit B during mechanism [5]. It is demonstrated that cholera toxin subunit B is a sensitive retrograde tracer for the central nervous system.[6]&lt;br /&gt;
&lt;br /&gt;
== 3D Structures of Cholera toxin ==&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;Updated November 2011&#039;&#039;&lt;br /&gt;
[[Image:Picture1.png|right|300px|thumb|Structure Notation of the RNA of CTX A, CLC RNA Workbench]]&lt;br /&gt;
[[Image:TREE - MAXIMUM LIKEHOOD.PNG|right|430px|thumb|Phylogenetic Tree of MSA of CTX, Statistic Method:Maximum Likelihood, made by MEGA 5.05]]&lt;br /&gt;
=== CTX ===&lt;br /&gt;
&lt;br /&gt;
[[1xtc]] - CTX&lt;br /&gt;
&lt;br /&gt;
=== CTX A subunit ===&lt;br /&gt;
&lt;br /&gt;
[[2a5d]], [[2a5g]] – CTX A subunit+hArf6+GTP – human&amp;lt;br /&amp;gt;&lt;br /&gt;
[[2a5f]] -  CTX A subunit+hArf6+GTP+NAD&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1s5b]], [[1s5c]], [[1s5d]], [[1s5e]], [[1s5f]] -  CTX A subunit (mutant)&lt;br /&gt;
&lt;br /&gt;
=== CTX B subunits ===&lt;br /&gt;
&lt;br /&gt;
[[1fgb]] - CTX B subunits&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1g8z]] , [[1chp]], [[1chq]] - CTX B subunits (mutant)&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1rcv]], [[1rd9]], [[1rdp]], [[1rf2]], [[1pzi]], [[1pzj]], [[1pzk]], [[1efi]], [[1eef]], [[1djr]], [[1eei]] – CTX B subunits+ galactoside derivatives&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1llr]], [[1jqy]], [[1jr0]], [[1fd7]], [[1md2]] -  CTX B subunits+BMSC derivatives&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1eef]] -  CTX B subunits+PEPG&amp;lt;br /&amp;gt;&lt;br /&gt;
[[3chb]], [[2chb]] - CTX B subunits+pentasaccharide&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1ct1]] - CTX B subunits (mutant)+pentasaccharide&amp;lt;br /&amp;gt;&lt;br /&gt;
[[3efx]] – CTX B/heat-labile enterotoxin B chain&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1tet]] – CTX peptide 3+FAB light and heavy chains - mouse&lt;br /&gt;
&lt;br /&gt;
== Multiple Sequence Alignment ==&lt;br /&gt;
[[Image:MSA1.jpg|left|260px|thumb|Multiple Sequence Alignment-TEXSHADE result.BlastP of CTX A subunit that contains six different species. This is made by Biology Workbench]]&lt;br /&gt;
&#039;&#039;&#039;Selected Sequences:&#039;&#039;&#039;&lt;br /&gt;
&lt;br /&gt;
1. Cholera toxin Subunit A&lt;br /&gt;
&lt;br /&gt;
2. Escherichia coli E24377A plasmid pETEC_80, complete sequence&lt;br /&gt;
&lt;br /&gt;
3. Escherichia coli strain 214-III elt operon, complete sequence&lt;br /&gt;
&lt;br /&gt;
4. Vibrio cholerae strain JS9803 prophage Vibrio phage CTX Zot (zot)&lt;br /&gt;
&lt;br /&gt;
5. Vibrio cholera O395 chromosome II, complete sequence&lt;br /&gt;
&lt;br /&gt;
6. Vibrio cholera O1 str. 2010EL-1786 chromosome 1, complete&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Reference ==&lt;br /&gt;
[1] Ryan KJ; Ray CG (editors) (2004). Sherris Medical Microbiology (4th ed.). McGraw Hill. p. 375. ISBN 0838585299.&lt;br /&gt;
&lt;br /&gt;
[2] Faruque SM; Nair GB (editors). (2008). Vibrio cholerae: Genomics and Molecular Biology. Caister Academic Press. ISBN 978-1-904455-33-2 .&lt;br /&gt;
&lt;br /&gt;
[3] Jennifer McDowall, Cholera Toxin, EMBL-EMI, Interpro&lt;br /&gt;
&lt;br /&gt;
[4] Davis B, Waldor M (2003). &amp;quot;Filamentous phages linked to virulence of Vibrio cholerae&amp;quot;. Curr Opin Microbiol 6 (1): 35–42. doi:10.1016/S1369-5274(02)00005-X. PMID 12615217.&lt;br /&gt;
&lt;br /&gt;
[5] Luppi P.H.. &amp;quot;The Discovery of Cholera-Toxin as a Powerful Neuroanatomical Tool&amp;quot;. Retrieved 2011-03-23.&lt;br /&gt;
&lt;br /&gt;
[6] Luppi P.H., Fort P., Jouvet M. Iontophoretic application of unconjugated cholera toxin B subunit (CTb) combined with immunohistochemistry of neurochemical substances: a method for transmitter identification of retrogradely labeled neurons. Brain Res. 534 (1-2) pages : 209-224 (1990)&lt;br /&gt;
&lt;br /&gt;
== External Links ==&lt;br /&gt;
PDB ID: 1XTC [http://www.rcsb.org/pdb/101/motm_disscussed_entry.do?id=1xtc]&lt;br /&gt;
               &lt;br /&gt;
MMDB ID: 52036 [http://www.ncbi.nlm.nih.gov/Structure/mmdb/mmdbsrv.cgi?uid=52036]&lt;br /&gt;
&lt;br /&gt;
PubMed[http://www.ncbi.nlm.nih.gov/pubmed/7658473?dopt=Abstract]&lt;br /&gt;
&lt;br /&gt;
[[Category:Topic Page]]&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Cholera_toxin&amp;diff=1388962</id>
		<title>Cholera toxin</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Cholera_toxin&amp;diff=1388962"/>
		<updated>2012-05-09T03:56:13Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_1xtc|  PDB=1xtc  | SIZE=420| SCENE=Cholera_toxin/Cv/1 |right|CAPTION=Cholera toxin [[1xtc]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Cholera toxin]] (CTX), secreted by bacterium [http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae],is an oligomeric complex of an enzymatic subunit (chain A) and 5 copies of chain B which bind to the cell surface. CTX is the main cause of the diarrhea symptoms of cholera infection.  &lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;PDB ID&#039;&#039;&#039;: 1XTC                                         &lt;br /&gt;
&#039;&#039;&#039;MMDB ID:&#039;&#039;&#039; 52036&lt;br /&gt;
{{TOC limit|limit=2}}&lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
[[Image:CTX interaction.PNG|left|270px|thumb| Interaction of 7 chains of Cholera toxin.[[1xtc]]]] &lt;br /&gt;
Cholera toxin(CTX) has two types of subunits: subunit A and subunit B. A subunit contains A1 domain, which includes the enzymatic active site, and A2 domain, which has a α–helix tail. The B subunit contains five chains that form a pentameric ring around the central pore in structure; Subunit A and subunit B are assembled by the α–helix tail of A2 domain, which inserts into the central pore. CTX is the main virulence factor of the pathogen &#039;&#039;Vibrio cholerae&#039;&#039; and cause the major symptom of infection: extreme diarrhea, vomiting, cramps and even death [1][2][3].&lt;br /&gt;
The enzymatic subunit has a globular domain (CTA1) and a long helical domain (CTA2).  Once the CTX binds to the cell surface, it is internalized, and its CTA1 domain binds to ADP-ribosylation factor 6 (Arf6) enabling its catalytic activity. &lt;br /&gt;
&lt;br /&gt;
The image at the lower right  correspond to the crystal structure of cholera toxin ([[1xtc]]).  The image at left correspond to the annotated interaction of 7 chains of cholera toxins([[1xtc]]) in Proteopedia see [[Toxins]].&lt;br /&gt;
&lt;br /&gt;
[[Image:1xtc.png|right|280px|thumb|Crystal Structure of Cholera toxin [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
== mRNA Structure ==&lt;br /&gt;
[[Image:CTX_RNA.png|left|280px|thumb|mRNA fold of CTX. This model is using the minimum free energy model.The colors represent the propensity of each nucleotide to participate in base pairs and whether a predicted base pair is well predicted. The scale ranges from red (highest probability) to blue-violet (lower probability).]]&lt;br /&gt;
&lt;br /&gt;
RNA folding algorithm uses a method to minimize the free energy of the structure so that the RNA molecule is in the most stable form.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
Cholera toxin, after secreted from the &#039;&#039;Vibrio cholerae&#039;&#039;, binds to the enterocytes (intestinal cells) by the interaction between the subunit B and GM1 ganglioside receptor on enterocytes, which then promotes the toxin endocytosis. Next, A1 turns to an active enzyme after separating with the A2 domain. After A1 domain of subunit A of toxin enters the cytosol, it activates the adenylate cyclase to produce cAMP through G protein, which triggers the activation of cystic fibrosis transmembrane conductance regulator (CFTR), leading to watery diarrhea: the efflux of water and ions from cells [3].&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
CTXφ Bacteriophage that is carried by &#039;&#039;Vibrio cholerae&#039;&#039; produces Cholera toxin. Cholera toxin is encoded by the gene which developed into Vibrio cholera by horizontal transfer [4]. &lt;br /&gt;
&lt;br /&gt;
== Application ==&lt;br /&gt;
Subunit B of cholera toxin is designed to be applied as a neuronal tracer due to its non-toxic characteristic. It also used to identify lipid rafts as florescent tag on the cell surface since lipid rafts contains GM1 gangliosides, which will interact with subunit B during mechanism [5]. It is demonstrated that cholera toxin subunit B is a sensitive retrograde tracer for the central nervous system.[6]&lt;br /&gt;
&lt;br /&gt;
== 3D Structures of Cholera toxin ==&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;Updated November 2011&#039;&#039;&lt;br /&gt;
[[Image:Picture1.png|right|300px|thumb|Structure Notation of the RNA of CTX A, CLC RNA Workbench]]&lt;br /&gt;
[[Image:TREE - MAXIMUM LIKEHOOD.PNG|right|430px|thumb|Phylogenetic Tree of MSA of CTX, Statistic Method:Maximum Likelihood, made by MEGA 5.05]]&lt;br /&gt;
=== CTX ===&lt;br /&gt;
&lt;br /&gt;
[[1xtc]] - CTX&lt;br /&gt;
&lt;br /&gt;
=== CTX A subunit ===&lt;br /&gt;
&lt;br /&gt;
[[2a5d]], [[2a5g]] – CTX A subunit+hArf6+GTP – human&amp;lt;br /&amp;gt;&lt;br /&gt;
[[2a5f]] -  CTX A subunit+hArf6+GTP+NAD&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1s5b]], [[1s5c]], [[1s5d]], [[1s5e]], [[1s5f]] -  CTX A subunit (mutant)&lt;br /&gt;
&lt;br /&gt;
=== CTX B subunits ===&lt;br /&gt;
&lt;br /&gt;
[[1fgb]] - CTX B subunits&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1g8z]] , [[1chp]], [[1chq]] - CTX B subunits (mutant)&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1rcv]], [[1rd9]], [[1rdp]], [[1rf2]], [[1pzi]], [[1pzj]], [[1pzk]], [[1efi]], [[1eef]], [[1djr]], [[1eei]] – CTX B subunits+ galactoside derivatives&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1llr]], [[1jqy]], [[1jr0]], [[1fd7]], [[1md2]] -  CTX B subunits+BMSC derivatives&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1eef]] -  CTX B subunits+PEPG&amp;lt;br /&amp;gt;&lt;br /&gt;
[[3chb]], [[2chb]] - CTX B subunits+pentasaccharide&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1ct1]] - CTX B subunits (mutant)+pentasaccharide&amp;lt;br /&amp;gt;&lt;br /&gt;
[[3efx]] – CTX B/heat-labile enterotoxin B chain&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1tet]] – CTX peptide 3+FAB light and heavy chains - mouse&lt;br /&gt;
&lt;br /&gt;
== Multiple Sequence Alignment ==&lt;br /&gt;
[[Image:MSA1.jpg|left|280px|thumb|BlastP of CTX A subunit]]&lt;br /&gt;
&#039;&#039;&#039;Selected Sequences:&#039;&#039;&#039;&lt;br /&gt;
&lt;br /&gt;
1. Cholera toxin Subunit A&lt;br /&gt;
&lt;br /&gt;
2. Escherichia coli E24377A plasmid pETEC_80, complete sequence&lt;br /&gt;
&lt;br /&gt;
3. Escherichia coli strain 214-III elt operon, complete sequence&lt;br /&gt;
&lt;br /&gt;
4. Vibrio cholerae strain JS9803 prophage Vibrio phage CTX Zot (zot)&lt;br /&gt;
&lt;br /&gt;
5. Vibrio cholera O395 chromosome II, complete sequence&lt;br /&gt;
&lt;br /&gt;
6. Vibrio cholera O1 str. 2010EL-1786 chromosome 1, complete&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Reference ==&lt;br /&gt;
[1] Ryan KJ; Ray CG (editors) (2004). Sherris Medical Microbiology (4th ed.). McGraw Hill. p. 375. ISBN 0838585299.&lt;br /&gt;
&lt;br /&gt;
[2] Faruque SM; Nair GB (editors). (2008). Vibrio cholerae: Genomics and Molecular Biology. Caister Academic Press. ISBN 978-1-904455-33-2 .&lt;br /&gt;
&lt;br /&gt;
[3] Jennifer McDowall, Cholera Toxin, EMBL-EMI, Interpro&lt;br /&gt;
&lt;br /&gt;
[4] Davis B, Waldor M (2003). &amp;quot;Filamentous phages linked to virulence of Vibrio cholerae&amp;quot;. Curr Opin Microbiol 6 (1): 35–42. doi:10.1016/S1369-5274(02)00005-X. PMID 12615217.&lt;br /&gt;
&lt;br /&gt;
[5] Luppi P.H.. &amp;quot;The Discovery of Cholera-Toxin as a Powerful Neuroanatomical Tool&amp;quot;. Retrieved 2011-03-23.&lt;br /&gt;
&lt;br /&gt;
[6] Luppi P.H., Fort P., Jouvet M. Iontophoretic application of unconjugated cholera toxin B subunit (CTb) combined with immunohistochemistry of neurochemical substances: a method for transmitter identification of retrogradely labeled neurons. Brain Res. 534 (1-2) pages : 209-224 (1990)&lt;br /&gt;
&lt;br /&gt;
== External Links ==&lt;br /&gt;
PDB ID: 1XTC [http://www.rcsb.org/pdb/101/motm_disscussed_entry.do?id=1xtc]&lt;br /&gt;
               &lt;br /&gt;
MMDB ID: 52036 [http://www.ncbi.nlm.nih.gov/Structure/mmdb/mmdbsrv.cgi?uid=52036]&lt;br /&gt;
&lt;br /&gt;
PubMed[http://www.ncbi.nlm.nih.gov/pubmed/7658473?dopt=Abstract]&lt;br /&gt;
&lt;br /&gt;
[[Category:Topic Page]]&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Cholera_toxin&amp;diff=1388961</id>
		<title>Cholera toxin</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Cholera_toxin&amp;diff=1388961"/>
		<updated>2012-05-09T03:47:32Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_1xtc|  PDB=1xtc  | SIZE=420| SCENE=Cholera_toxin/Cv/1 |right|CAPTION=Cholera toxin [[1xtc]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Cholera toxin]] (CTX), secreted by bacterium [http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae],is an oligomeric complex of an enzymatic subunit (chain A) and 5 copies of chain B which bind to the cell surface. CTX is the main cause of the diarrhea symptoms of cholera infection.  &lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;PDB ID&#039;&#039;&#039;: 1XTC                                         &lt;br /&gt;
&#039;&#039;&#039;MMDB ID:&#039;&#039;&#039; 52036&lt;br /&gt;
{{TOC limit|limit=2}}&lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
[[Image:CTX interaction.PNG|left|270px|thumb| Interaction of 7 chains of Cholera toxin.[[1xtc]v]]] &lt;br /&gt;
Cholera toxin(CTX) has two types of subunits: subunit A and subunit B. A subunit contains A1 domain, which includes the enzymatic active site, and A2 domain, which has a α–helix tail. The B subunit contains five chains that form a pentameric ring around the central pore in structure; Subunit A and subunit B are assembled by the α–helix tail of A2 domain, which inserts into the central pore. CTX the main virulence factor of the pathogen Vibrio cholerae and cause the major symptom of infection: extreme diarrhea, vomiting, cramps and even death [1][2][3].&lt;br /&gt;
The enzymatic subunit has a globular domain (CTA1) and a long helical domain (CTA2).  Once the CTX binds to the cell surface, it is internalized, and its CTA1 domain binds to ADP-ribosylation factor 6 (Arf6) enabling its catalytic activity. &lt;br /&gt;
&lt;br /&gt;
The images at the lower right  correspond to the crystal structure of cholera toxin ([[1xtc]]).  The images at left correspond to the annotated interaction of 7 chains of cholera toxins([[1xtc]]) in Proteopedia see [[Toxins]].&lt;br /&gt;
&lt;br /&gt;
[[Image:1xtc.png|right|280px|thumb|Crystal Structure of Cholera toxin [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
== mRNA Structure ==&lt;br /&gt;
[[Image:CTX_RNA.png|left|280px|thumb|mRNA fold of CTX [[1xtc]]This model is using the minimum free energy model.The colors represent the propensity of each nucleotide to participate in base pairs and whether a predicted base pair is well predicted. The scale ranges from red (highest probability) to blue-violet (lower probability).]]&lt;br /&gt;
&lt;br /&gt;
RNA folding algorithm uses a method to minimize the free energy of the structure so that the RNA molecule is in the most stable form.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
Cholera toxin, after secreted from the Vibrio cholera, binds to the enterocytes (intestinal cells) by the interaction between the subunit B and GM1 ganglioside receptor on enterocytes, which then promotes the toxin endocytosis. Next, A1 turns to an active enzyme after separating with the A2 domain. After A1 domain of subunit A of toxin enters the cytosol, it activates the adenylate cyclase to produce cAMP through G protein, which triggers the activation of cystic fibrosis transmembrane conductance regulator (CFTR), leading to watery diarrhea: the efflux of water and ions from cells [3].&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
CTXφ Bacteriophage that is carried by Vibrio cholera produces Cholera toxin. Cholera toxin is encoded by the gene which developed into Vibrio cholera by horizontal transfer [4]. &lt;br /&gt;
&lt;br /&gt;
== Application ==&lt;br /&gt;
Subunit B of cholera toxin is designed to be applied as a neuronal tracer due to its non-toxic characteristic. It also used to identify lipid rafts as florescent tag on the cell surface since lipid rafts contains GM1 gangliosides, which will interact with subunit B during mechanism [5]. It is demonstrated that cholera toxin subunit B is a sensitive retrograde tracer for the central nervous system.[6]&lt;br /&gt;
&lt;br /&gt;
== 3D Structures of Cholera toxin ==&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;Updated November 2011&#039;&#039;&lt;br /&gt;
[[Image:Picture1.png|right|300px|thumb|Structure Notation of the RNA of CTX A, CLC RNA Workbench]]&lt;br /&gt;
[[Image:TREE - MAXIMUM LIKEHOOD.PNG|right|430px|thumb|Phylogenetic Tree of MSA of CTX, Statistic Method:Maximum Likelihood, made by MEGA 5.05]]&lt;br /&gt;
=== CTX ===&lt;br /&gt;
&lt;br /&gt;
[[1xtc]] - CTX&lt;br /&gt;
&lt;br /&gt;
=== CTX A subunit ===&lt;br /&gt;
&lt;br /&gt;
[[2a5d]], [[2a5g]] – CTX A subunit+hArf6+GTP – human&amp;lt;br /&amp;gt;&lt;br /&gt;
[[2a5f]] -  CTX A subunit+hArf6+GTP+NAD&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1s5b]], [[1s5c]], [[1s5d]], [[1s5e]], [[1s5f]] -  CTX A subunit (mutant)&lt;br /&gt;
&lt;br /&gt;
=== CTX B subunits ===&lt;br /&gt;
&lt;br /&gt;
[[1fgb]] - CTX B subunits&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1g8z]] , [[1chp]], [[1chq]] - CTX B subunits (mutant)&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1rcv]], [[1rd9]], [[1rdp]], [[1rf2]], [[1pzi]], [[1pzj]], [[1pzk]], [[1efi]], [[1eef]], [[1djr]], [[1eei]] – CTX B subunits+ galactoside derivatives&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1llr]], [[1jqy]], [[1jr0]], [[1fd7]], [[1md2]] -  CTX B subunits+BMSC derivatives&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1eef]] -  CTX B subunits+PEPG&amp;lt;br /&amp;gt;&lt;br /&gt;
[[3chb]], [[2chb]] - CTX B subunits+pentasaccharide&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1ct1]] - CTX B subunits (mutant)+pentasaccharide&amp;lt;br /&amp;gt;&lt;br /&gt;
[[3efx]] – CTX B/heat-labile enterotoxin B chain&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1tet]] – CTX peptide 3+FAB light and heavy chains - mouse&lt;br /&gt;
&lt;br /&gt;
== Multiple Sequence Alignment ==&lt;br /&gt;
[[Image:MSA1.jpg|left|280px|thumb|BlastP of CTX A subunit]]&lt;br /&gt;
&#039;&#039;&#039;Selected Sequences:&#039;&#039;&#039;&lt;br /&gt;
&lt;br /&gt;
1. Cholera toxin Subunit A&lt;br /&gt;
&lt;br /&gt;
2. Escherichia coli E24377A plasmid pETEC_80, complete sequence&lt;br /&gt;
&lt;br /&gt;
3. Escherichia coli strain 214-III elt operon, complete sequence&lt;br /&gt;
&lt;br /&gt;
4. Vibrio cholerae strain JS9803 prophage Vibrio phage CTX Zot (zot)&lt;br /&gt;
&lt;br /&gt;
5. Vibrio cholera O395 chromosome II, complete sequence&lt;br /&gt;
&lt;br /&gt;
6. Vibrio cholera O1 str. 2010EL-1786 chromosome 1, complete&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Reference ==&lt;br /&gt;
[1] Ryan KJ; Ray CG (editors) (2004). Sherris Medical Microbiology (4th ed.). McGraw Hill. p. 375. ISBN 0838585299.&lt;br /&gt;
&lt;br /&gt;
[2] Faruque SM; Nair GB (editors). (2008). Vibrio cholerae: Genomics and Molecular Biology. Caister Academic Press. ISBN 978-1-904455-33-2 .&lt;br /&gt;
&lt;br /&gt;
[3] Jennifer McDowall, Cholera Toxin, EMBL-EMI, Interpro&lt;br /&gt;
&lt;br /&gt;
[4] Davis B, Waldor M (2003). &amp;quot;Filamentous phages linked to virulence of Vibrio cholerae&amp;quot;. Curr Opin Microbiol 6 (1): 35–42. doi:10.1016/S1369-5274(02)00005-X. PMID 12615217.&lt;br /&gt;
&lt;br /&gt;
[5] Luppi P.H.. &amp;quot;The Discovery of Cholera-Toxin as a Powerful Neuroanatomical Tool&amp;quot;. Retrieved 2011-03-23.&lt;br /&gt;
&lt;br /&gt;
[6] Luppi P.H., Fort P., Jouvet M. Iontophoretic application of unconjugated cholera toxin B subunit (CTb) combined with immunohistochemistry of neurochemical substances: a method for transmitter identification of retrogradely labeled neurons. Brain Res. 534 (1-2) pages : 209-224 (1990)&lt;br /&gt;
&lt;br /&gt;
== External Links ==&lt;br /&gt;
PDB ID: 1XTC [http://www.rcsb.org/pdb/101/motm_disscussed_entry.do?id=1xtc]&lt;br /&gt;
               &lt;br /&gt;
MMDB ID: 52036 [http://www.ncbi.nlm.nih.gov/Structure/mmdb/mmdbsrv.cgi?uid=52036]&lt;br /&gt;
&lt;br /&gt;
PubMed[http://www.ncbi.nlm.nih.gov/pubmed/7658473?dopt=Abstract]&lt;br /&gt;
&lt;br /&gt;
[[Category:Topic Page]]&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Cholera_toxin&amp;diff=1388960</id>
		<title>Cholera toxin</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Cholera_toxin&amp;diff=1388960"/>
		<updated>2012-05-09T03:28:53Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_1xtc|  PDB=1xtc  | SIZE=420| SCENE=Cholera_toxin/Cv/1 |right|CAPTION=Cholera toxin [[1xtc]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Cholera toxin]] (CTX), secreted by bacterium [http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae],is an oligomeric complex of an enzymatic subunit (chain A) and 5 copies of chain B which bind to the cell surface. CTX is the main cause of the diarrhea symptoms of cholera infection.  &lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;PDB ID&#039;&#039;&#039;: 1XTC                                         &lt;br /&gt;
&#039;&#039;&#039;MMDB ID:&#039;&#039;&#039; 52036&lt;br /&gt;
{{TOC limit|limit=2}}&lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
[[Image:CTX interaction.PNG|left|270px|thumb| Interaction of chains of Cholera toxin [[1xtc]]]] &lt;br /&gt;
Cholera toxin(CTX) has two types of subunits: subunit A and subunit B. A subunit contains A1 domain, which includes the enzymatic active site, and A2 domain, which has a α–helix tail. The B subunit contains five chains that form a pentameric ring around the central pore in structure; Subunit A and subunit B are assembled by the α–helix tail of A2 domain, which inserts into the central pore. CTX the main virulence factor of the pathogen Vibrio cholerae and cause the major symptom of infection: extreme diarrhea, vomiting, cramps and even death [1][2][3].&lt;br /&gt;
The enzymatic subunit has a globular domain (CTA1) and a long helical domain (CTA2).  Once the CTX binds to the cell surface, it is internalized, and its CTA1 domain binds to ADP-ribosylation factor 6 (Arf6) enabling its catalytic activity. &lt;br /&gt;
&lt;br /&gt;
The images at the lower left  correspond to the crystal structure of cholera toxin ([[1xtc]]).  The images at right correspond to the annotated interaction of 7 chains of cholera toxins([[1xtc]]) in Proteopedia see [[Toxins]].&lt;br /&gt;
&lt;br /&gt;
[[Image:1xtc.png|right|280px|thumb|Crystal Structure of Cholera toxin [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
== mRNA Structure ==&lt;br /&gt;
[[Image:CTX_RNA.png|left|280px|thumb|mRNA fold of CTX [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
RNA folding algorithm uses a method to minimize the free energy of the structure so that the RNA molecule is in the most stable form.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
Cholera toxin, after secreted from the Vibrio cholera, binds to the enterocytes (intestinal cells) by the interaction between the subunit B and GM1 ganglioside receptor on enterocytes, which then promotes the toxin endocytosis. Next, A1 turns to an active enzyme after separating with the A2 domain. After A1 domain of subunit A of toxin enters the cytosol, it activates the adenylate cyclase to produce cAMP through G protein, which triggers the activation of cystic fibrosis transmembrane conductance regulator (CFTR), leading to watery diarrhea: the efflux of water and ions from cells [3].&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
CTXφ Bacteriophage that is carried by Vibrio cholera produces Cholera toxin. Cholera toxin is encoded by the gene which developed into Vibrio cholera by horizontal transfer [4]. &lt;br /&gt;
&lt;br /&gt;
== Application ==&lt;br /&gt;
Subunit B of cholera toxin is designed to be applied as a neuronal tracer due to its non-toxic characteristic. It also used to identify lipid rafts as florescent tag on the cell surface since lipid rafts contains GM1 gangliosides, which will interact with subunit B during mechanism [5]. It is demonstrated that cholera toxin subunit B is a sensitive retrograde tracer for the central nervous system.[6]&lt;br /&gt;
&lt;br /&gt;
== 3D Structures of Cholera toxin ==&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;Updated November 2011&#039;&#039;&lt;br /&gt;
[[Image:Picture1.png|right|300px|thumb|Structure Notation of the RNA of CTX A, CLC RNA Workbench]]&lt;br /&gt;
[[Image:TREE - MAXIMUM LIKEHOOD.PNG|right|430px|thumb|Phylogenetic Tree of MSA of CTX, Statistic Method:Maximum Likelihood, made by MEGA 5.05]]&lt;br /&gt;
=== CTX ===&lt;br /&gt;
&lt;br /&gt;
[[1xtc]] - CTX&lt;br /&gt;
&lt;br /&gt;
=== CTX A subunit ===&lt;br /&gt;
&lt;br /&gt;
[[2a5d]], [[2a5g]] – CTX A subunit+hArf6+GTP – human&amp;lt;br /&amp;gt;&lt;br /&gt;
[[2a5f]] -  CTX A subunit+hArf6+GTP+NAD&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1s5b]], [[1s5c]], [[1s5d]], [[1s5e]], [[1s5f]] -  CTX A subunit (mutant)&lt;br /&gt;
&lt;br /&gt;
=== CTX B subunits ===&lt;br /&gt;
&lt;br /&gt;
[[1fgb]] - CTX B subunits&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1g8z]] , [[1chp]], [[1chq]] - CTX B subunits (mutant)&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1rcv]], [[1rd9]], [[1rdp]], [[1rf2]], [[1pzi]], [[1pzj]], [[1pzk]], [[1efi]], [[1eef]], [[1djr]], [[1eei]] – CTX B subunits+ galactoside derivatives&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1llr]], [[1jqy]], [[1jr0]], [[1fd7]], [[1md2]] -  CTX B subunits+BMSC derivatives&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1eef]] -  CTX B subunits+PEPG&amp;lt;br /&amp;gt;&lt;br /&gt;
[[3chb]], [[2chb]] - CTX B subunits+pentasaccharide&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1ct1]] - CTX B subunits (mutant)+pentasaccharide&amp;lt;br /&amp;gt;&lt;br /&gt;
[[3efx]] – CTX B/heat-labile enterotoxin B chain&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1tet]] – CTX peptide 3+FAB light and heavy chains - mouse&lt;br /&gt;
&lt;br /&gt;
== Multiple Sequence Alignment ==&lt;br /&gt;
[[Image:MSA1.jpg|left|260px|thumb|BlastP of CTX A subunit]]&lt;br /&gt;
&#039;&#039;&#039;Selected Sequences:&#039;&#039;&#039;&lt;br /&gt;
&lt;br /&gt;
1. Cholera toxin Subunit A&lt;br /&gt;
&lt;br /&gt;
2. Escherichia coli E24377A plasmid pETEC_80, complete sequence&lt;br /&gt;
&lt;br /&gt;
3. Escherichia coli strain 214-III elt operon, complete sequence&lt;br /&gt;
&lt;br /&gt;
4. Vibrio cholerae strain JS9803 prophage Vibrio phage CTX Zot (zot)&lt;br /&gt;
&lt;br /&gt;
5. Vibrio cholera O395 chromosome II, complete sequence&lt;br /&gt;
&lt;br /&gt;
6. Vibrio cholera O1 str. 2010EL-1786 chromosome 1, complete&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Reference ==&lt;br /&gt;
[1] Ryan KJ; Ray CG (editors) (2004). Sherris Medical Microbiology (4th ed.). McGraw Hill. p. 375. ISBN 0838585299.&lt;br /&gt;
&lt;br /&gt;
[2] Faruque SM; Nair GB (editors). (2008). Vibrio cholerae: Genomics and Molecular Biology. Caister Academic Press. ISBN 978-1-904455-33-2 .&lt;br /&gt;
&lt;br /&gt;
[3] Jennifer McDowall, Cholera Toxin, EMBL-EMI, Interpro&lt;br /&gt;
&lt;br /&gt;
[4] Davis B, Waldor M (2003). &amp;quot;Filamentous phages linked to virulence of Vibrio cholerae&amp;quot;. Curr Opin Microbiol 6 (1): 35–42. doi:10.1016/S1369-5274(02)00005-X. PMID 12615217.&lt;br /&gt;
&lt;br /&gt;
[5] Luppi P.H.. &amp;quot;The Discovery of Cholera-Toxin as a Powerful Neuroanatomical Tool&amp;quot;. Retrieved 2011-03-23.&lt;br /&gt;
&lt;br /&gt;
[6] Luppi P.H., Fort P., Jouvet M. Iontophoretic application of unconjugated cholera toxin B subunit (CTb) combined with immunohistochemistry of neurochemical substances: a method for transmitter identification of retrogradely labeled neurons. Brain Res. 534 (1-2) pages : 209-224 (1990)&lt;br /&gt;
&lt;br /&gt;
== External Links ==&lt;br /&gt;
PDB ID: 1XTC [http://www.rcsb.org/pdb/101/motm_disscussed_entry.do?id=1xtc]&lt;br /&gt;
               &lt;br /&gt;
MMDB ID: 52036 [http://www.ncbi.nlm.nih.gov/Structure/mmdb/mmdbsrv.cgi?uid=52036]&lt;br /&gt;
&lt;br /&gt;
PubMed[http://www.ncbi.nlm.nih.gov/pubmed/7658473?dopt=Abstract]&lt;br /&gt;
&lt;br /&gt;
[[Category:Topic Page]]&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=File:TREE_-_MAXIMUM_LIKEHOOD.PNG&amp;diff=1388958</id>
		<title>File:TREE - MAXIMUM LIKEHOOD.PNG</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=File:TREE_-_MAXIMUM_LIKEHOOD.PNG&amp;diff=1388958"/>
		<updated>2012-05-09T03:22:06Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_repressor_protein_LuxO&amp;diff=1388941</id>
		<title>Vibrio cholerae repressor protein LuxO</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_repressor_protein_LuxO&amp;diff=1388941"/>
		<updated>2012-05-08T21:44:18Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3cfy|  PDB=3cfy  | SIZE=300| SCENE=Vibrio_cholerae_repressor_protein_LuxO/Rainbow/1 |right|CAPTION=Regulatory protein LuxO [[3cfy]] }}&lt;br /&gt;
&lt;br /&gt;
{{TOC limit|limit=2}}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
LuxO regulates quorum sensing. Quorum sensing is the adjustment of behavior in response to population size. As a regulator in quorum sensing pathways, LuxO can function as a “switch” and it is known to influence biofilm formation, toxin production, phosphorylation and bioluminescence.  &amp;lt;ref name=&amp;quot;ZhuJ&amp;quot;&amp;gt;PMID: 11854465&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== LuxO Protein Structure ==&lt;br /&gt;
[[Image:LuxO_Annotation.png|left|280px|thumb|Assumed Biological Structure of the signal receiver domain of the repressor protein LuxO [[3cfy]]]] &lt;br /&gt;
&lt;br /&gt;
The crystal structure of the whole amino acid sequence of the LuxO repressor protein is not yet available on the PDB website. The signal receiving domain of the LuxO protein in Vibrio parahaemolyticus has been successfully crystallized. However, since the paper is yet to be published, the details of the structure is not available at this time. The signal receiver domain is from residual 2 to 128. From the 3D structure, we find that this signal receiver domain consists of five &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Helixes/1&#039;&amp;gt;five α helixes&amp;lt;/scene&amp;gt; and five &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Beta_sheet/1&#039;&amp;gt;five β sheets&amp;lt;/scene&amp;gt;. The phosphorylation  of the aspartate at &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Aspartate47/1&#039;&amp;gt;residual 47&amp;lt;/scene&amp;gt; is considered to be the critical factor in the activation of LuxO regulatory protein. &amp;lt;ref name=&amp;quot;LuxO Structure&amp;quot;&amp;gt;PMID: 21292858&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== LuxO RNA Structure ==&lt;br /&gt;
[[Image:LuxO_RNA.png|right|300px|thumb|mRNA structure of LuxO. This model is using the minimum free energy model. Different colors refer to different free energy levels. [[3cfy]]]]&lt;br /&gt;
RNA folding algorithm uses a method to minimize the free energy of the structure so that the RNA molecule is in the most stable form.  &amp;lt;ref&amp;gt;PMID:22418849&amp;lt;/ref&amp;gt;The red regions have higher free energy and are less stable while the blue regions posses lower energy hence more stable. Regions without base pairing are more mutable and less likely to be conserved, so evolutionarily they are more likely to contain differences. Also there are other existing models that use different algorithm to calculate the RNA secondary structure and they may give different results from the minimum free energy model.&lt;br /&gt;
The total free energy of this LuxO RNA folding model is -476KJ/mol.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
[[Image:LuxO_Activates_other_genes_at_different_levels.png|left|400px|thumb|Weighted graph analysis of  activation levels of various proteins in the pathogenic pathway by LuxO. Thicker lines indicate more repression in presence of LuxO deficient mutant, and therefore a higher rate of expression regulated by LuxO. Line color indicates the same information. Produced using weighted analysis platform of BioGrapher(Not yet published). The data is from the table of &amp;quot;Quorum-sensing regulators control virulence gene expression in Vibrio cholerae&amp;quot; &amp;lt;ref name=&amp;quot;ZhuJ&amp;quot; /&amp;gt;]]&lt;br /&gt;
LuxO and HapR are tow regulators as the two proteins regulate quorum sensing, related luminous marine bacterium &#039;&#039;Vibrio harveyi&#039;&#039;. LuxO and HapR control a number of other cellular processes, such as motility, protease production, and biofilm formation. Studies showed that LuxO mutant is very defective in colonization of the small intestine under an infant mouse model. By investigating the mechanism that LuxO regulated V. choleae pathogenicity, studies found that the luxO mutant does not generate any detectable TcpA or CT. Hence, the luxO mutant cannot to colonize mice.  However, the LuxO effect on  the virulence regulation is mediated through TcpP which express its mechanism of repression.  In the evidence, luxO regulated the expression of HapR negatively. &amp;lt;ref name=&amp;quot;ZhuJ&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
In the bacterium Vibrio harveyi, there are two quorum-sensing systems that control the bioluminescence(lux) expression. An autoinducer (AI-1 or AI-2) and a cognate sensor (LuxN or LuxQ)are contained in each system. Sensory information of the quorum-sensing systems is transmitted by a phospho-transfer mechanism to LuxO, a shared integrator protein. In term of controlling luminescence, LuxO acts negatively, which is also a member of the signal transduction proteins. LuxN and LuxQ have activities on LuxO,which is suggested by the lux phenotypes of Vibrio harveyi strains that have single and double LuxN and LuxQ mutations.  &amp;lt;ref&amp;gt;PMID: 10027982&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
 {{STRUCTURE_3cfy|  PDB=3cfy  | SIZE=300| SCENE=Vibrio_cholerae_repressor_protein_LuxO/Consurf/3|right|CAPTION=Regulatory protein LuxO [[3cfy]]}}&lt;br /&gt;
[[Image:LuxO_Tshade1.png|left|300px|thumb|Multiple sequence alignment of seven different Vibrio species. The arrows point out the places that are highly variable between different species.[[3cfy]]]]&lt;br /&gt;
[[Image:LuxO_Tree.png|left|300px|thumb|Phylogenetic Tree of LuxO gene. This is made from the MSA data from above [[3cfy]]]]&lt;br /&gt;
&lt;br /&gt;
The first 180 amino acids are shown in the Multiple Sequence Alignment (MSA). The MSA shows that the LuxO protein among different species of Vibrio is highly conserved except the regions highlighted by the red arrows. This is visualized by the consurf 3D model of the signal receiver domain. The dark red regions are highly conserved while the dark blue regions are highly variable. As shown in the model, the majority of the signal receiver domain of the LuxO protein are highly conserved. This is consistent with the MSA data. Study has shown that the first 104 amino acids of the LuxO is the hotspot for mutations. &amp;lt;ref name=&amp;quot;LuxO Structure&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
 &amp;lt;references /&amp;gt;&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_repressor_protein_LuxO&amp;diff=1388940</id>
		<title>Vibrio cholerae repressor protein LuxO</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_repressor_protein_LuxO&amp;diff=1388940"/>
		<updated>2012-05-08T21:42:43Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3cfy|  PDB=3cfy  | SIZE=300| SCENE=Vibrio_cholerae_repressor_protein_LuxO/Rainbow/1 |right|CAPTION=Regulatory protein LuxO [[3cfy]] }}&lt;br /&gt;
&lt;br /&gt;
{{TOC limit|limit=2}}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
LuxO regulates quorum sensing. Quorum sensing is the adjustment of behavior in response to population size. As a regulator in quorum sensing pathways, LuxO can function as a “switch” and it is known to influence biofilm formation, toxin production, phosphorylation and bioluminescence.  &amp;lt;ref name=&amp;quot;ZhuJ&amp;quot;&amp;gt;PMID: 11854465&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== LuxO Protein Structure ==&lt;br /&gt;
[[Image:LuxO_Annotation.png|left|280px|thumb|Assumed Biological Structure of the signal receiver domain of the repressor protein LuxO [[3cfy]]]] &lt;br /&gt;
&lt;br /&gt;
The crystal structure of the whole amino acid sequence of the LuxO repressor protein is not yet available on the PDB website. The signal receiving domain of the LuxO protein in Vibrio parahaemolyticus has been successfully crystallized. However, since the paper is yet to be published, the details of the structure is not available at this time. The signal receiver domain is from residual 2 to 128. From the 3D structure, we find that this signal receiver domain consists of five &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Helixes/1&#039;&amp;gt;five α helixes&amp;lt;/scene&amp;gt; and five &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Beta_sheet/1&#039;&amp;gt;five β sheets&amp;lt;/scene&amp;gt;. The phosphorylation  of the aspartate at &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Aspartate47/1&#039;&amp;gt;residual 47&amp;lt;/scene&amp;gt; is considered to be the critical factor in the activation of LuxO regulatory protein. &amp;lt;ref name=&amp;quot;LuxO Structure&amp;quot;&amp;gt;PMID: 21292858&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== LuxO RNA Structure ==&lt;br /&gt;
[[Image:LuxO_RNA.png|right|300px|thumb|mRNA structure of LuxO. This model is using the minimum free energy model. Different colors refer to different free energy levels. [[3cfy]]]]&lt;br /&gt;
RNA folding algorithm uses a method to minimize the free energy of the structure so that the RNA molecule is in the most stable form.  &amp;lt;ref&amp;gt;PMID:22418849&amp;lt;/ref&amp;gt;The red regions have higher free energy and are less stable while the blue regions posses lower energy hence more stable. Regions without base pairing are more mutable and less likely to be conserved, so evolutionarily they are more likely to contain differences. Also there are other existing models that use different algorithm to calculate the RNA secondary structure and they may give different results from the minimum free energy model.&lt;br /&gt;
The total free energy of this LuxO RNA folding model is -476KJ/mol.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
[[Image:LuxO_Activates_other_genes_at_different_levels.png|left|400px|thumb|Weighted graph analysis of  activation levels of various proteins in the pathogenic pathway by LuxO. Thicker lines indicate more repression in presence of LuxO deficient mutant, and therefore a higher rate of expression regulated by LuxO. Line color indicates the same information. Produced using weighted analysis platform of BioGrapher(Not yet published). The data is from the table of &amp;quot;Quorum-sensing regulators control virulence gene expression in Vibrio cholerae&amp;quot; &amp;lt;ref name=&amp;quot;ZhuJ&amp;quot; /&amp;gt;]]&lt;br /&gt;
LuxO and HapR are tow regulators as the two proteins regulate quorum sensing, related luminous marine bacterium &#039;&#039;Vibrio harveyi&#039;&#039;. LuxO and HapR control a number of other cellular processes, such as motility, protease production, and biofilm formation. Studies showed that LuxO mutant is very defective in colonization of the small intestine under an infant mouse model. By investigating the mechanism that LuxO regulated V. choleae pathogenicity, studies found that the luxO mutant does not generate any detectable TcpA or CT. Hence, the luxO mutant cannot to colonize mice.  However, the LuxO effect on  the virulence regulation is mediated through TcpP which express its mechanism of repression.  In the evidence, luxO regulated the expression of HapR negatively. &amp;lt;ref name=&amp;quot;ZhuJ&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
In the bacterium Vibrio harveyi, there are two quorum-sensing systems that control the bioluminescence(lux) expression. An autoinducer (AI-1 or AI-2) and a cognate sensor (LuxN or LuxQ)are contained in each system. Sensory information of the quorum-sensing systems is transmitted by a phospho-transfer mechanism to LuxO, a shared integrator protein. In term of controlling luminescence, LuxO acts negatively, which is also a member of the signal transduction proteins. LuxN and LuxQ have activities on LuxO,which is suggested by the lux phenotypes of Vibrio harveyi strains that have single and double LuxN and LuxQ mutations.  &amp;lt;ref&amp;gt;PMID: 10027982&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
 {{STRUCTURE_3cfy|  PDB=3cfy  | SIZE=300| SCENE=Vibrio_cholerae_repressor_protein_LuxO/Consurf/1|right|CAPTION=Regulatory protein LuxO [[3cfy]]}}&lt;br /&gt;
[[Image:LuxO_Tshade1.png|left|300px|thumb|Multiple sequence alignment of seven different Vibrio species. The arrows point out the places that are highly variable between different species.[[3cfy]]]]&lt;br /&gt;
[[Image:LuxO_Tree.png|left|300px|thumb|Phylogenetic Tree of LuxO gene. This is made from the MSA data from above [[3cfy]]]]&lt;br /&gt;
&lt;br /&gt;
The first 180 amino acids are shown in the Multiple Sequence Alignment (MSA). The MSA shows that the LuxO protein among different species of Vibrio is highly conserved except the regions highlighted by the red arrows. This is visualized by the consurf 3D model of the signal receiver domain. The dark red regions are highly conserved while the dark blue regions are highly variable. As shown in the model, the majority of the signal receiver domain of the LuxO protein are highly conserved. This is consistent with the MSA data. Study has shown that the first 104 amino acids of the LuxO is the hotspot for mutations. &amp;lt;ref name=&amp;quot;LuxO Structure&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
 &amp;lt;references /&amp;gt;&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_repressor_protein_LuxO&amp;diff=1388937</id>
		<title>Vibrio cholerae repressor protein LuxO</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_repressor_protein_LuxO&amp;diff=1388937"/>
		<updated>2012-05-08T21:37:39Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3cfy|  PDB=3cfy  | SIZE=300| SCENE=Vibrio_cholerae_repressor_protein_LuxO/Rainbow/1 |right|CAPTION=Regulatory protein LuxO [[3cfy]] }}&lt;br /&gt;
&lt;br /&gt;
{{TOC limit|limit=2}}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
LuxO regulates quorum sensing. Quorum sensing is the adjustment of behavior in response to population size. As a regulator in quorum sensing pathways, LuxO can function as a “switch” and it is known to influence biofilm formation, toxin production, phosphorylation and bioluminescence.  &amp;lt;ref name=&amp;quot;ZhuJ&amp;quot;&amp;gt;PMID: 11854465&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== LuxO Protein Structure ==&lt;br /&gt;
[[Image:LuxO_Annotation.png|left|280px|thumb|Assumed Biological Structure of the signal receiver domain of the repressor protein LuxO [[3cfy]]]] &lt;br /&gt;
&lt;br /&gt;
The crystal structure of the whole amino acid sequence of the LuxO repressor protein is not yet available on the PDB website. The signal receiving domain of the LuxO protein in Vibrio parahaemolyticus has been successfully crystallized. However, since the paper is yet to be published, the details of the structure is not available at this time. The signal receiver domain is from residual 2 to 128. From the 3D structure, we find that this signal receiver domain consists of five &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Helixes/1&#039;&amp;gt;five α helixes&amp;lt;/scene&amp;gt; and five &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Beta_sheet/1&#039;&amp;gt;five β sheets&amp;lt;/scene&amp;gt;. The phosphorylation  of the aspartate at &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Aspartate47/1&#039;&amp;gt;residual 47&amp;lt;/scene&amp;gt; is considered to be the critical factor in the activation of LuxO regulatory protein. &amp;lt;ref name=&amp;quot;LuxO Structure&amp;quot;&amp;gt;PMID: 21292858&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== LuxO RNA Structure ==&lt;br /&gt;
[[Image:LuxO_RNA.png|right|300px|thumb|mRNA structure of LuxO [[3cfy]]]]&lt;br /&gt;
RNA folding algorithm uses a method to minimize the free energy of the structure so that the RNA molecule is in the most stable form.  &amp;lt;ref&amp;gt;PMID:22418849&amp;lt;/ref&amp;gt;The red regions have higher free energy and are less stable while the blue regions posses lower energy hence more stable. Regions without base pairing are more mutable and less likely to be conserved, so evolutionarily they are more likely to contain differences. Also there are other existing models that use different algorithm to calculate the RNA secondary structure and they may give different results from the minimum free energy model.&lt;br /&gt;
The total free energy of this LuxO RNA folding model is -476KJ/mol.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
[[Image:LuxO_Activates_other_genes_at_different_levels.png|left|400px|thumb|Weighted graph analysis of  activation levels of various proteins in the pathogenic pathway by LuxO. Thicker lines indicate more repression in presence of LuxO deficient mutant, and therefore a higher rate of expression regulated by LuxO. Line color indicates the same information. Produced using weighted analysis platform of BioGrapher(Not yet published). The data is from the table of &amp;quot;Quorum-sensing regulators control virulence gene expression in Vibrio cholerae&amp;quot; &amp;lt;ref name=&amp;quot;ZhuJ&amp;quot; /&amp;gt;]]&lt;br /&gt;
LuxO and HapR are tow regulators as the two proteins regulate quorum sensing, related luminous marine bacterium &#039;&#039;Vibrio harveyi&#039;&#039;. LuxO and HapR control a number of other cellular processes, such as motility, protease production, and biofilm formation. Studies showed that LuxO mutant is very defective in colonization of the small intestine under an infant mouse model. By investigating the mechanism that LuxO regulated V. choleae pathogenicity, studies found that the luxO mutant does not generate any detectable TcpA or CT. Hence, the luxO mutant cannot to colonize mice.  However, the LuxO effect on  the virulence regulation is mediated through TcpP which express its mechanism of repression.  In the evidence, luxO regulated the expression of HapR negatively. &amp;lt;ref name=&amp;quot;ZhuJ&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
In the bacterium Vibrio harveyi, there are two quorum-sensing systems that control the bioluminescence(lux) expression. An autoinducer (AI-1 or AI-2) and a cognate sensor (LuxN or LuxQ)are contained in each system. Sensory information of the quorum-sensing systems is transmitted by a phospho-transfer mechanism to LuxO, a shared integrator protein. In term of controlling luminescence, LuxO acts negatively, which is also a member of the signal transduction proteins. LuxN and LuxQ have activities on LuxO,which is suggested by the lux phenotypes of Vibrio harveyi strains that have single and double LuxN and LuxQ mutations.  &amp;lt;ref&amp;gt;PMID: 10027982&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
 {{STRUCTURE_3cfy|  PDB=3cfy  | SIZE=300| SCENE=Vibrio_cholerae_repressor_protein_LuxO/Consurf/1|right|CAPTION=Regulatory protein LuxO [[3cfy]]}}&lt;br /&gt;
[[Image:LuxO_Tshade1.png|left|300px|thumb|MSA [[3cfy]]]]&lt;br /&gt;
[[Image:LuxO_Tree.png|left|300px|thumb|Phylogenetic Tree LuxO [[3cfy]]]]&lt;br /&gt;
&lt;br /&gt;
The first 180 amino acids are shown in the Multiple Sequence Alignment (MSA). The MSA shows that the LuxO protein among different species of Vibrio is highly conserved except the regions highlighted by the red arrows. This is visualized by the consurf 3D model of the signal receiver domain. The dark red regions are highly conserved while the dark blue regions are highly variable. As shown in the model, the majority of the signal receiver domain of the LuxO protein are highly conserved. This is consistent with the MSA data. Study has shown that the first 104 amino acids of the LuxO is the hotspot for mutations. &amp;lt;ref name=&amp;quot;LuxO Structure&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
 &amp;lt;references /&amp;gt;&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_repressor_protein_LuxO&amp;diff=1388936</id>
		<title>Vibrio cholerae repressor protein LuxO</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_repressor_protein_LuxO&amp;diff=1388936"/>
		<updated>2012-05-08T21:36:10Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3cfy|  PDB=3cfy  | SIZE=300| SCENE=Vibrio_cholerae_repressor_protein_LuxO/Rainbow/1 |right|CAPTION=Regulatory protein LuxO [[3cfy]] }}&lt;br /&gt;
&lt;br /&gt;
{{TOC limit|limit=2}}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
LuxO regulates quorum sensing. Quorum sensing is the adjustment of behavior in response to population size. As a regulator in quorum sensing pathways, LuxO can function as a “switch” and it is known to influence biofilm formation, toxin production, phosphorylation and bioluminescence.  &amp;lt;ref name=&amp;quot;ZhuJ&amp;quot;&amp;gt;PMID: 11854465&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== LuxO Protein Structure ==&lt;br /&gt;
[[Image:LuxO_Annotation.png|left|280px|thumb|Assumed Biological Structure of the signal receiver domain of the repressor protein LuxO [[3cfy]]]] &lt;br /&gt;
&lt;br /&gt;
The crystal structure of the whole amino acid sequence of the LuxO repressor protein is not yet available on the PDB website. The signal receiving domain of the LuxO protein in Vibrio parahaemolyticus has been successfully crystallized. However, since the paper is yet to be published, the details of the structure is not available at this time. The signal receiver domain is from residual 2 to 128. From the 3D structure, we find that this signal receiver domain consists of five &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Helixes/1&#039;&amp;gt;five α helixes&amp;lt;/scene&amp;gt; and five &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Beta_sheet/1&#039;&amp;gt;five β sheets&amp;lt;/scene&amp;gt;. The phosphorylation  of the aspartate at &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Aspartate47/1&#039;&amp;gt;residual 47&amp;lt;/scene&amp;gt; is considered to be the critical factor in the activation of LuxO regulatory protein. &amp;lt;ref name=&amp;quot;LuxO Structure&amp;quot;&amp;gt;PMID: 21292858&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== LuxO RNA Structure ==&lt;br /&gt;
[[Image:LuxO_RNA.png|right|300px|thumb|mRNA structure of LuxO [[3cfy]]]]&lt;br /&gt;
RNA folding algorithm uses a method to minimize the free energy of the structure so that the RNA molecule is in the most stable form.  &amp;lt;ref&amp;gt;PMID:22418849&amp;lt;/ref&amp;gt;The red regions have higher free energy and are less stable while the blue regions posses lower energy hence more stable. Regions without base pairing are more mutable and less likely to be conserved, so evolutionarily they are more likely to contain differences.&lt;br /&gt;
The total free energy of this LuxO RNA folding model is -476KJ/mol.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
[[Image:LuxO_Activates_other_genes_at_different_levels.png|left|400px|thumb|Weighted graph analysis of  activation levels of various proteins in the pathogenic pathway by LuxO. Thicker lines indicate more repression in presence of LuxO deficient mutant, and therefore a higher rate of expression regulated by LuxO. Line color indicates the same information. Produced using weighted analysis platform of BioGrapher(Not yet published). The data is from the table of &amp;quot;Quorum-sensing regulators control virulence gene expression in Vibrio cholerae&amp;quot; &amp;lt;ref name=&amp;quot;ZhuJ&amp;quot; /&amp;gt;]]&lt;br /&gt;
LuxO and HapR are tow regulators as the two proteins regulate quorum sensing, related luminous marine bacterium &#039;&#039;Vibrio harveyi&#039;&#039;. LuxO and HapR control a number of other cellular processes, such as motility, protease production, and biofilm formation. Studies showed that LuxO mutant is very defective in colonization of the small intestine under an infant mouse model. By investigating the mechanism that LuxO regulated V. choleae pathogenicity, studies found that the luxO mutant does not generate any detectable TcpA or CT. Hence, the luxO mutant cannot to colonize mice.  However, the LuxO effect on  the virulence regulation is mediated through TcpP which express its mechanism of repression.  In the evidence, luxO regulated the expression of HapR negatively. &amp;lt;ref name=&amp;quot;ZhuJ&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
In the bacterium Vibrio harveyi, there are two quorum-sensing systems that control the bioluminescence(lux) expression. An autoinducer (AI-1 or AI-2) and a cognate sensor (LuxN or LuxQ)are contained in each system. Sensory information of the quorum-sensing systems is transmitted by a phospho-transfer mechanism to LuxO, a shared integrator protein. In term of controlling luminescence, LuxO acts negatively, which is also a member of the signal transduction proteins. LuxN and LuxQ have activities on LuxO,which is suggested by the lux phenotypes of Vibrio harveyi strains that have single and double LuxN and LuxQ mutations.  &amp;lt;ref&amp;gt;PMID: 10027982&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
 {{STRUCTURE_3cfy|  PDB=3cfy  | SIZE=300| SCENE=Vibrio_cholerae_repressor_protein_LuxO/Consurf/1|right|CAPTION=Regulatory protein LuxO [[3cfy]]}}&lt;br /&gt;
[[Image:LuxO_Tshade1.png|left|300px|thumb|MSA [[3cfy]]]]&lt;br /&gt;
[[Image:LuxO_Tree.png|left|300px|thumb|Phylogenetic Tree LuxO [[3cfy]]]]&lt;br /&gt;
&lt;br /&gt;
The first 180 amino acids are shown in the Multiple Sequence Alignment (MSA). The MSA shows that the LuxO protein among different species of Vibrio is highly conserved except the regions highlighted by the red arrows. This is visualized by the consurf 3D model of the signal receiver domain. The dark red regions are highly conserved while the dark blue regions are highly variable. As shown in the model, the majority of the signal receiver domain of the LuxO protein are highly conserved. This is consistent with the MSA data. Study has shown that the first 104 amino acids of the LuxO is the hotspot for mutations. &amp;lt;ref name=&amp;quot;LuxO Structure&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
 &amp;lt;references /&amp;gt;&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388920</id>
		<title>Vibrio cholerae colonization factor TcpF</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388920"/>
		<updated>2012-05-08T19:26:34Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=400| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Rainbow/1 |right|CAPTION=Cholera colonization factor [[3oc5]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Molecule:&#039;&#039;&#039;	 Toxin coregulated pilus biosynthesis protein F&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Type:&#039;&#039;&#039;protein  	&#039;&#039;&#039;Length:&#039;&#039;&#039;	318     &#039;&#039;&#039;Organism:&#039;&#039;&#039;[http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae]&lt;br /&gt;
&lt;br /&gt;
TcpF is a toxin-coregulated pilus that facilitates colonization of vibrio cholerae in the intestine. Vibrio cholerae relies on two main virulence factors: toxin-coregulated pilus (TCP) and [http://proteopedia.org/wiki/index.php/Cholera_toxin#External_Links cholera toxin (CT)] to cause the gastrointestinal disease cholera. TCP, encoded by the tcp operon, is a type [http://http://en.wikipedia.org/wiki/Pilus IV pilus] that mediates bacterial autoagglutination and colonization of the intestine.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Structuretcpf.png|left|300px|thumb|Secondary Structure of TcpF, generated by PDB [[1xtc]]]]&lt;br /&gt;
[[Image:RNA.png|left|300px|thumb| TcpF-RNA [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
The structure of TcpF is consisted with an &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/N_terminal_domain/1&#039;&amp;gt;N terminal domain (NTD;residues 1 to 185)&amp;lt;/scene&amp;gt; and a &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Ctd/1&#039;&amp;gt;C terminal domain (CTD; residues 190 to 318)&amp;lt;/scene&amp;gt; connected by an extended &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Linker_1/1&#039;&amp;gt; linker segment (residues 186 to 189)&amp;lt;/scene&amp;gt;. In detail, the NTD is composed of a short twisted β-sheet encapsulated by seven short α-helices with a second twisted β-sheet forming the floor of this domain. The NTD is connected with The CTD, which consists of two twisted antiparallel β-sheets.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt; TCP is a filamentous structure belongs. Studies showed that the regions, close to CTD  are important for mediating colonization. The architecture of TcpF, with discrete NTD and CTD joined by a linker, is flexible that allow to accommodate a larger substrate. &lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
&lt;br /&gt;
{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=300| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Consurf/1 |right|CAPTION=Consurf image [[3oc5]] }}&lt;br /&gt;
The function of many of Tcp genes and their associated proteins are largely unknown. TcpF is the only protein secreted by the TCP apparatus and it represents the first nonpilus protein identified that is specifically secreted outside the bacterial cell by a type IV pilus biogenesis apparatus.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt; Studies hypothesize that TcpF, identified in classical isolates of V. cholerae O1 is an essential factor for colonization in the infant mouse cholera model. Bacteria lacking tcpF are deficient in colonization, and anti-TcpF antibodies are protective in the infant mouse cholera model. TcpF is expressed in vivo during human infection and generates a substantial immune response in patients infected with V. cholera. By looking at the homology of TcpF, the NTD and the CTD together form a unique interface that interacts with partner proteins to function in V. cholerae colonization.&amp;lt;ref&amp;gt;TcpF Is a Soluble Colonization Factor and Protective Antigen Secreted by El Tor and Classical O1 and O139 Vibrio cholerae Serogroups  Thomas J. Kirn and Ronald K. Taylor [http://iai.asm.org/content/73/8/4461 DOI: 10.1128/​IAI.73.8.4461-4470.2005] Infect. Immun. August 2005 vol. 73 no. 8 4461-4470.&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Msatcpf.png|left|200px|thumb| Multiple Sequence Alignment, generated by Biology Workbench [[1xtc]]]]&lt;br /&gt;
[[Image:Phylogentic tree tcp.png|left|200px|thumb| Phylogenetic tree-Tcp, generated by Biology Workbench  [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The environmental TcpF proteins are important for secretion because they retained a high degree of identity in the region.  Each of the environmental TcpF proteins examined was secreted from the pathogenic strains. Now, TcpF genes from six pathogenic strains of V. cholerae have been sequenced, and all of these strains have nearly identical TcpF amino acid sequences.However, studies examined that environmental TcpF proteins cannot mediate colonization in the infant mouse cholera model.  By comparing the environmental strain, SCE4 and the pathogenic TcpF, O395 (See Multiple sequence alignment result ), it revealed that the regions, divergent from one another are located at the middle of the C terminal domain. Therefore, lack of colonization mediated by environmental TcpF proteins may suggest that the divergent regions between the pathogenic and environmental proteins are essential for TcpF function. &amp;lt;ref name=&amp;quot;map&amp;quot;&amp;gt;PMID: 21440558&amp;lt;/ref&amp;gt; &lt;br /&gt;
&lt;br /&gt;
==Application==&lt;br /&gt;
V.cholerae has a variety of proteins in the periplasm, but only a small part are known to be transported across the outer membrane into the extracellular space. The secretion systems (TCP system) is able to recognize their cognate substrates for export. The TCP apparatus is required by the secretion of TcpF. TcpF is absolutely necessary for colonization and V.cholerae pathogenesis. However, The mechanism for the action of TcpF remains to be elucidated.&amp;lt;ref&amp;gt;Genetic Mapping of Secretion and Functional Determinants of the Vibrio cholerae TcpF Colonization Factor  Shelly J. Krebs, Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
J. Bacteriol. 2009, 191(11):3665. DOI: 10.1128/JB.01724-08. Published Ahead of Print 20 March 2009.&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
&amp;lt;references /&amp;gt;&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388741</id>
		<title>Vibrio cholerae colonization factor TcpF</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388741"/>
		<updated>2012-05-08T05:00:54Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=400| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Rainbow/1 |right|CAPTION=Cholera colonization factor [[3oc5]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Molecule:&#039;&#039;&#039;	 Toxin coregulated pilus biosynthesis protein F&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Type:&#039;&#039;&#039;protein  	&#039;&#039;&#039;Length:&#039;&#039;&#039;	318     &#039;&#039;&#039;Organism:&#039;&#039;&#039;[http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae]&lt;br /&gt;
&lt;br /&gt;
TcpF is a toxin-coregulated pilus that facilitates colonization of vibrio cholerae in the intestine. Vibrio cholerae relies on two main virulence factors: toxin-coregulated pilus (TCP) and [http://proteopedia.org/wiki/index.php/Cholera_toxin#External_Links cholera toxin (CT)] to cause the gastrointestinal disease cholera. TCP, encoded by the tcp operon, is a type IV pilus that mediates bacterial autoagglutination and colonization of the intestine.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Structuretcpf.png|left|300px|thumb|Secondary Structure of TcpF, generated by PDB [[1xtc]]]]&lt;br /&gt;
[[Image:RNA.png|left|300px|thumb| TcpF-RNA [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
The structure of TcpF is consisted with an &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/N_terminal_domain/1&#039;&amp;gt;N terminal domain (NTD;residues 1 to 185)&amp;lt;/scene&amp;gt; and a &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Ctd/1&#039;&amp;gt;C terminal domain (CTD; residues 190 to 318)&amp;lt;/scene&amp;gt; connected by an extended &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Linker_1/1&#039;&amp;gt; linker segment (residues 186 to 189)&amp;lt;/scene&amp;gt;. In detail, the NTD is composed of a short twisted β-sheet encapsulated by seven short α-helices with a second twisted β-sheet forming the floor of this domain. The NTD is connected with The CTD, which consists of two twisted antiparallel β-sheets.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt; TCP is a filamentous structure belongs. Studies showed that the regions, close to CTD  are important for mediating colonization. The architecture of TcpF, with discrete NTD and CTD joined by a linker, is flexible that allow to accommodate a larger substrate. &lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
&lt;br /&gt;
{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=300| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Consurf/1 |right|CAPTION=Consurf image [[3oc5]] }}&lt;br /&gt;
The function of many of Tcp genes and their associated proteins are largely unknown. TcpF is the only protein secreted by the TCP apparatus and it represents the first nonpilus protein identified that is specifically secreted outside the bacterial cell by a type IV pilus biogenesis apparatus.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt; Studies hypothesize that TcpF, identified in classical isolates of V. cholerae O1 is an essential factor for colonization in the infant mouse cholera model. Bacteria lacking tcpF are deficient in colonization, and anti-TcpF antibodies are protective in the infant mouse cholera model. TcpF is expressed in vivo during human infection and generates a substantial immune response in patients infected with V. cholera. By looking at the homology of TcpF, the NTD and the CTD together form a unique interface that interacts with partner proteins to function in V. cholerae colonization.&amp;lt;ref&amp;gt;TcpF Is a Soluble Colonization Factor and Protective Antigen Secreted by El Tor and Classical O1 and O139 Vibrio cholerae Serogroups  Thomas J. Kirn and Ronald K. Taylor [http://iai.asm.org/content/73/8/4461 DOI: 10.1128/​IAI.73.8.4461-4470.2005] Infect. Immun. August 2005 vol. 73 no. 8 4461-4470.&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Msatcpf.png|left|200px|thumb| Multiple Sequence Alignment, generated by Biology Workbench [[1xtc]]]]&lt;br /&gt;
[[Image:Phylogentic tree tcp.png|left|200px|thumb| Phylogenetic tree-Tcp, generated by Biology Workbench  [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The environmental TcpF proteins are important for secretion because they retained a high degree of identity in the region.  Each of the environmental TcpF proteins examined was secreted from the pathogenic strains. Now, TcpF genes from six pathogenic strains of V. cholerae have been sequenced, and all of these strains have nearly identical TcpF amino acid sequences.However, studies examined that environmental TcpF proteins cannot mediate colonization in the infant mouse cholera model.  By comparing the environmental strain, SCE4 and the pathogenic TcpF, O395 (See Multiple sequence alignment result ), it revealed that the regions, divergent from one another are located at the middle of the C terminal domain. Therefore, lack of colonization mediated by environmental TcpF proteins may suggest that the divergent regions between the pathogenic and environmental proteins are essential for TcpF function. &amp;lt;ref name=&amp;quot;map&amp;quot;&amp;gt;PMID: 21440558&amp;lt;/ref&amp;gt; &lt;br /&gt;
&lt;br /&gt;
==Application==&lt;br /&gt;
V.cholerae has a variety of proteins in the periplasm, but only a small part are known to be transported across the outer membrane into the extracellular space. The secretion systems (TCP system) is able to recognize their cognate substrates for export. The TCP apparatus is required by the secretion of TcpF. TcpF is absolutely necessary for colonization and V.cholerae pathogenesis. However, The mechanism for the action of TcpF remains to be elucidated.&amp;lt;ref&amp;gt;Genetic Mapping of Secretion and Functional Determinants of the Vibrio cholerae TcpF Colonization Factor  Shelly J. Krebs, Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
J. Bacteriol. 2009, 191(11):3665. DOI: 10.1128/JB.01724-08. Published Ahead of Print 20 March 2009.&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
&amp;lt;references /&amp;gt;&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388736</id>
		<title>Vibrio cholerae colonization factor TcpF</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388736"/>
		<updated>2012-05-08T04:46:07Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=400| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Rainbow/1 |right|CAPTION=Cholera colonization factor [[3oc5]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Molecule:&#039;&#039;&#039;	 Toxin coregulated pilus biosynthesis protein F&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Type:&#039;&#039;&#039;protein  	&#039;&#039;&#039;Length:&#039;&#039;&#039;	318     &#039;&#039;&#039;Organism:&#039;&#039;&#039;[http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae]&lt;br /&gt;
&lt;br /&gt;
TcpF is a toxin-coregulated pilus that facilitates colonization of vibrio cholerae in the intestine. Vibrio cholerae relies on two main virulence factors: toxin-coregulated pilus (TCP) and [http://proteopedia.org/wiki/index.php/Cholera_toxin#External_Links cholera toxin (CT)] to cause the gastrointestinal disease cholera. TCP, encoded by the tcp operon, is a type IV pilus that mediates bacterial autoagglutination and colonization of the intestine.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Structuretcpf.png|left|300px|thumb]]&lt;br /&gt;
[[Image:RNA.png|left|300px|thumb| TcpF-RNA [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
The structure of TcpF is consisted with an &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/N_terminal_domain/1&#039;&amp;gt;N terminal domain (NTD;residues 1 to 185)&amp;lt;/scene&amp;gt; and a &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Ctd/1&#039;&amp;gt;C terminal domain (CTD; residues 190 to 318)&amp;lt;/scene&amp;gt; connected by an extended &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Linker_1/1&#039;&amp;gt; linker segment (residues 186 to 189)&amp;lt;/scene&amp;gt;. In detail, the NTD is composed of a short twisted β-sheet encapsulated by seven short α-helices with a second twisted β-sheet forming the floor of this domain. The NTD is connected with The CTD, which consists of two twisted antiparallel β-sheets.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt; TCP is a filamentous structure belongs. Studies showed that the regions, close to CTD  are important for mediating colonization. The architecture of TcpF, with discrete NTD and CTD joined by a linker, is flexible that allow to accommodate a larger substrate. &lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
&lt;br /&gt;
{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=300| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Consurf/1 |right|CAPTION=Consurf image [[3oc5]] }}&lt;br /&gt;
The function of many of Tcp genes and their associated proteins are largely unknown. TcpF is the only protein secreted by the TCP apparatus and it represents the first nonpilus protein identified that is specifically secreted outside the bacterial cell by a type IV pilus biogenesis apparatus.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt; Studies hypothesize that TcpF, identified in classical isolates of V. cholerae O1 is an essential factor for colonization in the infant mouse cholera model. Bacteria lacking tcpF are deficient in colonization, and anti-TcpF antibodies are protective in the infant mouse cholera model. TcpF is expressed in vivo during human infection and generates a substantial immune response in patients infected with V. cholera. By looking at the homology of TcpF, the NTD and the CTD together form a unique interface that interacts with partner proteins to function in V. cholerae colonization.&amp;lt;ref&amp;gt;TcpF Is a Soluble Colonization Factor and Protective Antigen Secreted by El Tor and Classical O1 and O139 Vibrio cholerae Serogroups  Thomas J. Kirn and Ronald K. Taylor [http://iai.asm.org/content/73/8/4461 DOI: 10.1128/​IAI.73.8.4461-4470.2005] Infect. Immun. August 2005 vol. 73 no. 8 4461-4470.&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Msatcpf.png|left|200px|thumb| Multiple Sequence Alignment, generated by Biology Workbench [[1xtc]]]]&lt;br /&gt;
[[Image:Phylogentic tree tcp.png|left|200px|thumb| Phylogenetic tree-Tcp, generated by Biology Workbench  [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The environmental TcpF proteins are important for secretion because they retained a high degree of identity in the region.  Each of the environmental TcpF proteins examined was secreted from the pathogenic strains. Now, TcpF genes from six pathogenic strains of V. cholerae have been sequenced, and all of these strains have nearly identical TcpF amino acid sequences.However, studies examined that environmental TcpF proteins cannot mediate colonization in the infant mouse cholera model.  By comparing the environmental strain, SCE4 and the pathogenic TcpF, O395 (See Multiple sequence alignment result ), it revealed that the regions, divergent from one another are located at the middle of the C terminal domain. Therefore, lack of colonization mediated by environmental TcpF proteins may suggest that the divergent regions between the pathogenic and environmental proteins are essential for TcpF function. &amp;lt;ref name=&amp;quot;map&amp;quot;&amp;gt;PMID: 21440558&amp;lt;/ref&amp;gt; &lt;br /&gt;
&lt;br /&gt;
==Application==&lt;br /&gt;
V.cholerae has a variety of proteins in the periplasm, but only a small part are known to be transported across the outer membrane into the extracellular space. The secretion systems (TCP system) is able to recognize their cognate substrates for export. The TCP apparatus is required by the secretion of TcpF. TcpF is absolutely necessary for colonization and V.cholerae pathogenesis. However, The mechanism for the action of TcpF remains to be elucidated.&amp;lt;ref&amp;gt;Genetic Mapping of Secretion and Functional Determinants of the Vibrio cholerae TcpF Colonization Factor  Shelly J. Krebs, Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
J. Bacteriol. 2009, 191(11):3665. DOI: 10.1128/JB.01724-08. Published Ahead of Print 20 March 2009.&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
&amp;lt;references /&amp;gt;&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388735</id>
		<title>Vibrio cholerae colonization factor TcpF</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388735"/>
		<updated>2012-05-08T04:44:18Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=400| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Rainbow/1 |right|CAPTION=Cholera colonization factor [[3oc5]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Molecule:&#039;&#039;&#039;	 Toxin coregulated pilus biosynthesis protein F&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Type:&#039;&#039;&#039;protein  	&#039;&#039;&#039;Length:&#039;&#039;&#039;	318     &#039;&#039;&#039;Organism:&#039;&#039;&#039;[http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae]&lt;br /&gt;
&lt;br /&gt;
TcpF is a toxin-coregulated pilus that facilitates colonization of vibrio cholerae in the intestine. Vibrio cholerae relies on two main virulence factors: toxin-coregulated pilus (TCP) and [http://proteopedia.org/wiki/index.php/Cholera_toxin#External_Links cholera toxin (CT)] to cause the gastrointestinal disease cholera. TCP, encoded by the tcp operon, is a type IV pilus that mediates bacterial autoagglutination and colonization of the intestine.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Structuretcpf.png|left|300px|thumb]]&lt;br /&gt;
[[Image:RNA.png|left|300px|thumb| TcpF-RNA [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
The structure of TcpF is consisted with an &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/N_terminal_domain/1&#039;&amp;gt;N terminal domain (NTD;residues 1 to 185)&amp;lt;/scene&amp;gt; and a &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Ctd/1&#039;&amp;gt;C terminal domain (CTD; residues 190 to 318)&amp;lt;/scene&amp;gt; connected by an extended &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Linker_1/1&#039;&amp;gt; linker segment (residues 186 to 189)&amp;lt;/scene&amp;gt;. In detail, the NTD is composed of a short twisted β-sheet encapsulated by seven short α-helices with a second twisted β-sheet forming the floor of this domain. The NTD is connected with The CTD, which consists of two twisted antiparallel β-sheets.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt; TCP is a filamentous structure belongs. Studies showed that the regions, close to CTD  are important for mediating colonization. The architecture of TcpF, with discrete NTD and CTD joined by a linker, is flexible that allow to accommodate a larger substrate. &lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
&lt;br /&gt;
{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=300| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Consurf/1 |right|CAPTION=Consurf image [[3oc5]] }}&lt;br /&gt;
The function of many of Tcp genes and their associated proteins are largely unknown. TcpF is the only protein secreted by the TCP apparatus and it represents the first nonpilus protein identified that is specifically secreted outside the bacterial cell by a type IV pilus biogenesis apparatus.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt; Studies hypothesize that TcpF, identified in classical isolates of V. cholerae O1 is an essential factor for colonization in the infant mouse cholera model. Bacteria lacking tcpF are deficient in colonization, and anti-TcpF antibodies are protective in the infant mouse cholera model. TcpF is expressed in vivo during human infection and generates a substantial immune response in patients infected with V. cholera. By looking at the homology of TcpF, the NTD and the CTD together form a unique interface that interacts with partner proteins to function in V. cholerae colonization.&amp;lt;ref&amp;gt;TcpF Is a Soluble Colonization Factor and Protective Antigen Secreted by El Tor and Classical O1 and O139 Vibrio cholerae Serogroups  Thomas J. Kirn and Ronald K. Taylor [http://iai.asm.org/content/73/8/4461 DOI: 10.1128/​IAI.73.8.4461-4470.2005] Infect. Immun. August 2005 vol. 73 no. 8 4461-4470.&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Msatcpf.png|left|200px|thumb| Multiple sequence Alignment [[1xtc]]]]&lt;br /&gt;
[[Image:Phylogentic tree tcp.png|left|200px|thumb| Distance Matrix [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The environmental TcpF proteins are important for secretion because they retained a high degree of identity in the region.  Each of the environmental TcpF proteins examined was secreted from the pathogenic strains. Now, TcpF genes from six pathogenic strains of V. cholerae have been sequenced, and all of these strains have nearly identical TcpF amino acid sequences.However, studies examined that environmental TcpF proteins cannot mediate colonization in the infant mouse cholera model.  By comparing the environmental strain, SCE4 and the pathogenic TcpF, O395 (See Multiple sequence alignment result ), it revealed that the regions, divergent from one another are located at the middle of the C terminal domain. Therefore, lack of colonization mediated by environmental TcpF proteins may suggest that the divergent regions between the pathogenic and environmental proteins are essential for TcpF function. &amp;lt;ref name=&amp;quot;map&amp;quot;&amp;gt;PMID: 21440558&amp;lt;/ref&amp;gt; &lt;br /&gt;
&lt;br /&gt;
==Application==&lt;br /&gt;
V.cholerae has a variety of proteins in the periplasm, but only a small part are known to be transported across the outer membrane into the extracellular space. The secretion systems (TCP system) is able to recognize their cognate substrates for export. The TCP apparatus is required by the secretion of TcpF. TcpF is absolutely necessary for colonization and V.cholerae pathogenesis. However, The mechanism for the action of TcpF remains to be elucidated.&amp;lt;ref&amp;gt;Genetic Mapping of Secretion and Functional Determinants of the Vibrio cholerae TcpF Colonization Factor  Shelly J. Krebs, Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
J. Bacteriol. 2009, 191(11):3665. DOI: 10.1128/JB.01724-08. Published Ahead of Print 20 March 2009.&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
&amp;lt;references /&amp;gt;&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=File:Phylogentic_tree_tcp.png&amp;diff=1388734</id>
		<title>File:Phylogentic tree tcp.png</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=File:Phylogentic_tree_tcp.png&amp;diff=1388734"/>
		<updated>2012-05-08T04:43:26Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;== Licensing ==&lt;br /&gt;
{{subst:Non-commercial from license selector}}&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388663</id>
		<title>Vibrio cholerae colonization factor TcpF</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388663"/>
		<updated>2012-05-07T17:45:26Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=400| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Rainbow/1 |right|CAPTION=Cholera colonization factor [[3oc5]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Molecule:&#039;&#039;&#039;	 Toxin coregulated pilus biosynthesis protein F&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Type:&#039;&#039;&#039;protein  	&#039;&#039;&#039;Length:&#039;&#039;&#039;	318     &#039;&#039;&#039;Organism:&#039;&#039;&#039;[http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae]&lt;br /&gt;
&lt;br /&gt;
TcpF is a toxin-coregulated pilus that facilitates colonization of vibrio cholerae in the intestine. Vibrio cholerae relies on two main virulence factors: toxin-coregulated pilus (TCP) and [http://proteopedia.org/wiki/index.php/Cholera_toxin#External_Links cholera toxin (CT)] to cause the gastrointestinal disease cholera. TCP, encoded by the tcp operon, is a type IV pilus that mediates bacterial autoagglutination and colonization of the intestine.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Structuretcpf.png|left|300px|thumb]]&lt;br /&gt;
[[Image:RNA.png|left|300px|thumb| TcpF-RNA [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
The structure of TcpF is consisted with an &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/N_terminal_domain/1&#039;&amp;gt;N terminal domain (NTD;residues 1 to 185)&amp;lt;/scene&amp;gt; and a &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Ctd/1&#039;&amp;gt;C terminal domain (CTD; residues 190 to 318)&amp;lt;/scene&amp;gt; connected by an extended &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Linker_1/1&#039;&amp;gt; linker segment (residues 186 to 189)&amp;lt;/scene&amp;gt;. In detail, the NTD is composed of a short twisted β-sheet encapsulated by seven short α-helices with a second twisted β-sheet forming the floor of this domain. The NTD is connected with The CTD, which consists of two twisted antiparallel β-sheets.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt; TCP is a filamentous structure belongs. Studies showed that the regions, close to CTD  are important for mediating colonization. The architecture of TcpF, with discrete NTD and CTD joined by a linker, is flexible that allow to accommodate a larger substrate. &lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
&lt;br /&gt;
{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=300| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Consurf/1 |right|CAPTION=Consurf image [[3oc5]] }}&lt;br /&gt;
The function of many of Tcp genes and their associated proteins are largely unknown. TcpF is the only protein secreted by the TCP apparatus and it represents the first nonpilus protein identified that is specifically secreted outside the bacterial cell by a type IV pilus biogenesis apparatus.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt; Studies hypothesize that TcpF, identified in classical isolates of V. cholerae O1 is an essential factor for colonization in the infant mouse cholera model. Bacteria lacking tcpF are deficient in colonization, and anti-TcpF antibodies are protective in the infant mouse cholera model. TcpF is expressed in vivo during human infection and generates a substantial immune response in patients infected with V. cholera. By looking at the homology of TcpF, the NTD and the CTD together form a unique interface that interacts with partner proteins to function in V. cholerae colonization.&amp;lt;ref&amp;gt;TcpF Is a Soluble Colonization Factor and Protective Antigen Secreted by El Tor and Classical O1 and O139 Vibrio cholerae Serogroups  Thomas J. Kirn and Ronald K. Taylor [http://iai.asm.org/content/73/8/4461 DOI: 10.1128/​IAI.73.8.4461-4470.2005] Infect. Immun. August 2005 vol. 73 no. 8 4461-4470.&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Msatcpf.png|left|200px|thumb| Multiple sequence Alignment [[1xtc]]]]&lt;br /&gt;
[[Image:Distancematrixtcpf.png|left|200px|thumb| Distance Matrix [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The environmental TcpF proteins are important for secretion because they retained a high degree of identity in the region.  Each of the environmental TcpF proteins examined was secreted from the pathogenic strains. Now, TcpF genes from six pathogenic strains of V. cholerae have been sequenced, and all of these strains have nearly identical TcpF amino acid sequences.However, studies examined that environmental TcpF proteins cannot mediate colonization in the infant mouse cholera model.  By comparing the environmental strain, SCE4 and the pathogenic TcpF, O395 (See Multiple sequence alignment result ), it revealed that the regions, divergent from one another are located at the middle of the C terminal domain. Therefore, lack of colonization mediated by environmental TcpF proteins may suggest that the divergent regions between the pathogenic and environmental proteins are essential for TcpF function. &amp;lt;ref name=&amp;quot;map&amp;quot;&amp;gt;PMID: 21440558&amp;lt;/ref&amp;gt; &lt;br /&gt;
&lt;br /&gt;
==Application==&lt;br /&gt;
V.cholerae has a variety of proteins in the periplasm, but only a small part are known to be transported across the outer membrane into the extracellular space. The secretion systems (TCP system) is able to recognize their cognate substrates for export. The TCP apparatus is required by the secretion of TcpF. TcpF is absolutely necessary for colonization and V.cholerae pathogenesis. However, The mechanism for the action of TcpF remains to be elucidated.&amp;lt;ref&amp;gt;Genetic Mapping of Secretion and Functional Determinants of the Vibrio cholerae TcpF Colonization Factor  Shelly J. Krebs, Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
J. Bacteriol. 2009, 191(11):3665. DOI: 10.1128/JB.01724-08. Published Ahead of Print 20 March 2009.&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
&amp;lt;references /&amp;gt;&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388662</id>
		<title>Vibrio cholerae colonization factor TcpF</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388662"/>
		<updated>2012-05-07T17:44:40Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=400| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Rainbow/1 |right|CAPTION=Cholera colonization factor [[3oc5]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Molecule:&#039;&#039;&#039;	 Toxin coregulated pilus biosynthesis protein F&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Type:&#039;&#039;&#039;protein  	&#039;&#039;&#039;Length:&#039;&#039;&#039;	318     &#039;&#039;&#039;Organism:&#039;&#039;&#039;[http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae]&lt;br /&gt;
&lt;br /&gt;
TcpF is a toxin-coregulated pilus that facilitates colonization of vibrio cholerae in the intestine. Vibrio cholerae relies on two main virulence factors: toxin-coregulated pilus (TCP) and [http://proteopedia.org/wiki/index.php/Cholera_toxin#External_Links cholera toxin (CT)] to cause the gastrointestinal disease cholera. TCP, encoded by the tcp operon, is a type IV pilus that mediates bacterial autoagglutination and colonization of the intestine.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Structuretcpf.png|left|300px|thumb]]&lt;br /&gt;
[[Image:RNA.png|left|300px|thumb| TcpF-RNA [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
The structure of TcpF is consisted with an &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/N_terminal_domain/1&#039;&amp;gt;N terminal domain (NTD;residues 1 to 185)&amp;lt;/scene&amp;gt; and a &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Ctd/1&#039;&amp;gt;C terminal domain (CTD; residues 190 to 318)&amp;lt;/scene&amp;gt; connected by an extended &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Linker_1/1&#039;&amp;gt; linker segment (residues 186 to 189)&amp;lt;/scene&amp;gt;. In detail, the NTD is composed of a short twisted β-sheet encapsulated by seven short α-helices with a second twisted β-sheet forming the floor of this domain. The NTD is connected with The CTD, which consists of two twisted antiparallel β-sheets.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt; TCP is a filamentous structure belongs. Studies showed that the regions, close to CTD  are important for mediating colonization. The architecture of TcpF, with discrete NTD and CTD joined by a linker, is flexible that allow to accommodate a larger substrate. &lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
&lt;br /&gt;
{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=300| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Consurf/1 |right|CAPTION=Consurf image [[3oc5]] }}&lt;br /&gt;
The function of many of Tcp genes and their associated proteins are largely unknown. TcpF is the only protein secreted by the TCP apparatus and it represents the first nonpilus protein identified that is specifically secreted outside the bacterial cell by a type IV pilus biogenesis apparatus.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt; Studies hypothesize that TcpF, identified in classical isolates of V. cholerae O1 is an essential factor for colonization in the infant mouse cholera model. Bacteria lacking tcpF are deficient in colonization, and anti-TcpF antibodies are protective in the infant mouse cholera model. TcpF is expressed in vivo during human infection and generates a substantial immune response in patients infected with V. cholera. By looking at the homology of TcpF, the NTD and the CTD together form a unique interface that interacts with partner proteins to function in V. cholerae colonization.&amp;lt;ref&amp;gt;TcpF Is a Soluble Colonization Factor and Protective Antigen Secreted by El Tor and Classical O1 and O139 Vibrio cholerae Serogroups  Thomas J. Kirn and Ronald K. Taylor [http://iai.asm.org/content/73/8/4461 DOI: 10.1128/​IAI.73.8.4461-4470.2005] Infect. Immun. August 2005 vol. 73 no. 8 4461-4470.&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Msatcpf.png|left|300px|thumb| Multiple sequence Alignment [[1xtc]]]]&lt;br /&gt;
[[Image:Distancematrixtcpf.png|left|300px|thumb| Distance Matrix [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The environmental TcpF proteins are important for secretion because they retained a high degree of identity in the region.  Each of the environmental TcpF proteins examined was secreted from the pathogenic strains. Now, TcpF genes from six pathogenic strains of V. cholerae have been sequenced, and all of these strains have nearly identical TcpF amino acid sequences.However, studies examined that environmental TcpF proteins cannot mediate colonization in the infant mouse cholera model.  By comparing the environmental strain, SCE4 and the pathogenic TcpF, O395 (See Multiple sequence alignment result ), it revealed that the regions, divergent from one another are located at the middle of the C terminal domain. Therefore, lack of colonization mediated by environmental TcpF proteins may suggest that the divergent regions between the pathogenic and environmental proteins are essential for TcpF function. &amp;lt;ref name=&amp;quot;map&amp;quot;&amp;gt;PMID: 21440558&amp;lt;/ref&amp;gt; &lt;br /&gt;
&lt;br /&gt;
==Application==&lt;br /&gt;
V.cholerae has a variety of proteins in the periplasm, but only a small part are known to be transported across the outer membrane into the extracellular space. The secretion systems (TCP system) is able to recognize their cognate substrates for export. The TCP apparatus is required by the secretion of TcpF. TcpF is absolutely necessary for colonization and V.cholerae pathogenesis. However, The mechanism for the action of TcpF remains to be elucidated.&amp;lt;ref&amp;gt;Genetic Mapping of Secretion and Functional Determinants of the Vibrio cholerae TcpF Colonization Factor  Shelly J. Krebs, Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
J. Bacteriol. 2009, 191(11):3665. DOI: 10.1128/JB.01724-08. Published Ahead of Print 20 March 2009.&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
&amp;lt;references /&amp;gt;&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388660</id>
		<title>Vibrio cholerae colonization factor TcpF</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388660"/>
		<updated>2012-05-07T17:31:58Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=400| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Rainbow/1 |right|CAPTION=Cholera colonization factor [[3oc5]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Molecule:&#039;&#039;&#039;	 Toxin coregulated pilus biosynthesis protein F&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Type:&#039;&#039;&#039;protein  	&#039;&#039;&#039;Length:&#039;&#039;&#039;	318     &#039;&#039;&#039;Organism:&#039;&#039;&#039;[http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae]&lt;br /&gt;
&lt;br /&gt;
TcpF is a toxin-coregulated pilus that facilitates colonization of vibrio cholerae in the intestine. Vibrio cholerae relies on two main virulence factors: toxin-coregulated pilus (TCP) and [http://proteopedia.org/wiki/index.php/Cholera_toxin#External_Links cholera toxin (CT)] to cause the gastrointestinal disease cholera. TCP, encoded by the tcp operon, is a type IV pilus that mediates bacterial autoagglutination and colonization of the intestine.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Structuretcpf.png|left|300px|thumb]]&lt;br /&gt;
[[Image:RNA.png|left|300px|thumb| TcpF-RNA [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
The structure of TcpF is consisted with an &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/N_terminal_domain/1&#039;&amp;gt;N terminal domain (NTD;residues 1 to 185)&amp;lt;/scene&amp;gt; and a &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Ctd/1&#039;&amp;gt;C terminal domain (CTD; residues 190 to 318)&amp;lt;/scene&amp;gt; connected by an extended &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Linker_1/1&#039;&amp;gt; linker segment (residues 186 to 189)&amp;lt;/scene&amp;gt;. In detail, the NTD is composed of a short twisted β-sheet encapsulated by seven short α-helices with a second twisted β-sheet forming the floor of this domain. The NTD is connected with The CTD, which consists of two twisted antiparallel β-sheets.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt; TCP is a filamentous structure belongs. Studies showed that the regions, close to CTD  are important for mediating colonization. The architecture of TcpF, with discrete NTD and CTD joined by a linker, is flexible that allow to accommodate a larger substrate. By looking at the homology of TcpF, the NTD and the CTD together form a unique interface that interacts with partner proteins to function in V. cholerae colonization.&amp;lt;ref&amp;gt;TcpF Is a Soluble Colonization Factor and Protective Antigen Secreted by El Tor and Classical O1 and O139 Vibrio cholerae Serogroups  Thomas J. Kirn and Ronald K. Taylor [http://iai.asm.org/content/73/8/4461 DOI: 10.1128/​IAI.73.8.4461-4470.2005] Infect. Immun. August 2005 vol. 73 no. 8 4461-4470.&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
&lt;br /&gt;
{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=300| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Consurf/1 |right|CAPTION=Consurf image [[3oc5]] }}&lt;br /&gt;
The function of many of Tcp genes and their associated proteins are largely unknown. TcpF is the only protein secreted by the TCP apparatus and it represents the first nonpilus protein identified that is specifically secreted outside the bacterial cell by a type IV pilus biogenesis apparatus.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt; Studies hypothesize that TcpF, identified in classical isolates of V. cholerae O1 is an essential factor for colonization in the infant mouse cholera model. Bacteria lacking tcpF are deficient in colonization, and anti-TcpF antibodies are protective in the infant mouse cholera model. TcpF is expressed in vivo during human infection and generates a substantial immune response in patients infected with V. cholera.&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Msatcpf.png|left|300px|thumb| Multiple sequence Alignment [[1xtc]]]]&lt;br /&gt;
[[Image:Distancematrixtcpf.png|left|300px|thumb| Distance Matrix [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The environmental TcpF proteins are important for secretion because they retained a high degree of identity in the region.  Each of the environmental TcpF proteins examined was secreted from the pathogenic strains. Now, TcpF genes from six pathogenic strains of V. cholerae have been sequenced, and all of these strains have nearly identical TcpF amino acid sequences.However, studies examined that environmental TcpF proteins cannot mediate colonization in the infant mouse cholera model.  By comparing the environmental strain, SCE4 and the pathogenic TcpF, O395 (See Multiple sequence alignment result ), it revealed that the regions, divergent from one another are located at the middle of the C terminal domain. Therefore, lack of colonization mediated by environmental TcpF proteins may suggest that the divergent regions between the pathogenic and environmental proteins are essential for TcpF function. &amp;lt;ref name=&amp;quot;map&amp;quot;&amp;gt;PMID: 21440558&amp;lt;/ref&amp;gt; &lt;br /&gt;
&lt;br /&gt;
==Application==&lt;br /&gt;
V.cholerae has a variety of proteins in the periplasm, but only a small part are known to be transported across the outer membrane into the extracellular space. The secretion systems (TCP system) is able to recognize their cognate substrates for export. The TCP apparatus is required by the secretion of TcpF. TcpF is absolutely necessary for colonization and V.cholerae pathogenesis. However, The mechanism for the action of TcpF remains to be elucidated.&amp;lt;ref&amp;gt;Genetic Mapping of Secretion and Functional Determinants of the Vibrio cholerae TcpF Colonization Factor  Shelly J. Krebs, Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
J. Bacteriol. 2009, 191(11):3665. DOI: 10.1128/JB.01724-08. Published Ahead of Print 20 March 2009.&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
&amp;lt;references /&amp;gt;&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388659</id>
		<title>Vibrio cholerae colonization factor TcpF</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388659"/>
		<updated>2012-05-07T17:30:02Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=400| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Rainbow/1 |right|CAPTION=Cholera colonization factor [[3oc5]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Molecule:&#039;&#039;&#039;	 Toxin coregulated pilus biosynthesis protein F&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Type:&#039;&#039;&#039;protein  	&#039;&#039;&#039;Length:&#039;&#039;&#039;	318     &#039;&#039;&#039;Organism:&#039;&#039;&#039;[http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae]&lt;br /&gt;
&lt;br /&gt;
TcpF is a toxin-coregulated pilus that facilitates colonization of vibrio cholerae in the intestine. Vibrio cholerae relies on two main virulence factors: toxin-coregulated pilus (TCP) and [http://proteopedia.org/wiki/index.php/Cholera_toxin#External_Links cholera toxin (CT)] to cause the gastrointestinal disease cholera. TCP, encoded by the tcp operon, is a type IV pilus that mediates bacterial autoagglutination and colonization of the intestine.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Structuretcpf.png|left|300px|thumb]]&lt;br /&gt;
[[Image:RNA.png|left|300px|thumb| TcpF-RNA [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
The structure of TcpF is consisted with an &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/N_terminal_domain/1&#039;&amp;gt;N terminal domain (NTD;residues 1 to 185)&amp;lt;/scene&amp;gt; and a &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Ctd/1&#039;&amp;gt;C terminal domain (CTD; residues 190 to 318)&amp;lt;/scene&amp;gt; connected by an extended &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Linker_1/1&#039;&amp;gt; linker segment (residues 186 to 189)&amp;lt;/scene&amp;gt;. In detail, the NTD is composed of a short twisted β-sheet encapsulated by seven short α-helices with a second twisted β-sheet forming the floor of this domain. The NTD is connected with The CTD, which consists of two twisted antiparallel β-sheets.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt; TCP is a filamentous structure belongs. Studies showed that the regions, close to CTD  are important for mediating colonization. The architecture of TcpF, with discrete NTD and CTD joined by a linker, is flexible that allow to accommodate a larger substrate. By looking at the homology of TcpF, the NTD and the CTD together form a unique interface that interacts with partner proteins to function in V. cholerae colonization.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
&lt;br /&gt;
{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=300| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Consurf/1 |right|CAPTION=Consurf image [[3oc5]] }}&lt;br /&gt;
The function of many of Tcp genes and their associated proteins are largely unknown. TcpF is the only protein secreted by the TCP apparatus and it represents the first nonpilus protein identified that is specifically secreted outside the bacterial cell by a type IV pilus biogenesis apparatus.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt; Studies hypothesize that TcpF, identified in classical isolates of V. cholerae O1 is an essential factor for colonization in the infant mouse cholera model. Bacteria lacking tcpF are deficient in colonization, and anti-TcpF antibodies are protective in the infant mouse cholera model. TcpF is expressed in vivo during human infection and generates a substantial immune response in patients infected with V. cholera.&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Msatcpf.png|left|300px|thumb| Multiple sequence Alignment [[1xtc]]]]&lt;br /&gt;
[[Image:Distancematrixtcpf.png|left|300px|thumb| Distance Matrix [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The environmental TcpF proteins are important for secretion because they retained a high degree of identity in the region.  Each of the environmental TcpF proteins examined was secreted from the pathogenic strains. Now, TcpF genes from six pathogenic strains of V. cholerae have been sequenced, and all of these strains have nearly identical TcpF amino acid sequences.However, studies examined that environmental TcpF proteins cannot mediate colonization in the infant mouse cholera model.  By comparing the environmental strain, SCE4 and the pathogenic TcpF, O395 (See Multiple sequence alignment result ), it revealed that the regions, divergent from one another are located at the middle of the C terminal domain. Therefore, lack of colonization mediated by environmental TcpF proteins may suggest that the divergent regions between the pathogenic and environmental proteins are essential for TcpF function. &amp;lt;ref name=&amp;quot;map&amp;quot;&amp;gt;PMID: 21440558&amp;lt;/ref&amp;gt; &lt;br /&gt;
&lt;br /&gt;
==Application==&lt;br /&gt;
V.cholerae has a variety of proteins in the periplasm, but only a small part are known to be transported across the outer membrane into the extracellular space. The secretion systems (TCP system) is able to recognize their cognate substrates for export. The TCP apparatus is required by the secretion of TcpF. TcpF is absolutely necessary for colonization and V.cholerae pathogenesis. However, The mechanism for the action of TcpF remains to be elucidated.&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
&amp;lt;references /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&amp;lt;ref&amp;gt;TcpF Is a Soluble Colonization Factor and Protective Antigen Secreted by El Tor and Classical O1 and O139 Vibrio cholerae Serogroups  Thomas J. Kirn and Ronald K. Taylor [http://iai.asm.org/content/73/8/4461 DOI: 10.1128/​IAI.73.8.4461-4470.2005] Infect. Immun. August 2005 vol. 73 no. 8 4461-4470.&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
&amp;lt;ref&amp;gt;Genetic Mapping of Secretion and Functional Determinants of the Vibrio cholerae TcpF Colonization Factor  Shelly J. Krebs, Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
J. Bacteriol. 2009, 191(11):3665. DOI: 10.1128/JB.01724-08. Published Ahead of Print 20 March 2009.&amp;lt;/ref&amp;gt;&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388657</id>
		<title>Vibrio cholerae colonization factor TcpF</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388657"/>
		<updated>2012-05-07T17:28:11Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=400| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Rainbow/1 |right|CAPTION=Cholera colonization factor [[3oc5]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Molecule:&#039;&#039;&#039;	 Toxin coregulated pilus biosynthesis protein F&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Type:&#039;&#039;&#039;protein  	&#039;&#039;&#039;Length:&#039;&#039;&#039;	318     &#039;&#039;&#039;Organism:&#039;&#039;&#039;[http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae]&lt;br /&gt;
&lt;br /&gt;
TcpF is a toxin-coregulated pilus that facilitates colonization of vibrio cholerae in the intestine. Vibrio cholerae relies on two main virulence factors: toxin-coregulated pilus (TCP) and [http://proteopedia.org/wiki/index.php/Cholera_toxin#External_Links cholera toxin (CT)] to cause the gastrointestinal disease cholera. TCP, encoded by the tcp operon, is a type IV pilus that mediates bacterial autoagglutination and colonization of the intestine.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Structuretcpf.png|left|300px|thumb]]&lt;br /&gt;
[[Image:RNA.png|left|300px|thumb| TcpF-RNA [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
The structure of TcpF is consisted with an &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/N_terminal_domain/1&#039;&amp;gt;N terminal domain (NTD;residues 1 to 185)&amp;lt;/scene&amp;gt; and a &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Ctd/1&#039;&amp;gt;C terminal domain (CTD; residues 190 to 318)&amp;lt;/scene&amp;gt; connected by an extended &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Linker_1/1&#039;&amp;gt; linker segment (residues 186 to 189)&amp;lt;/scene&amp;gt;. In detail, the NTD is composed of a short twisted β-sheet encapsulated by seven short α-helices with a second twisted β-sheet forming the floor of this domain. The NTD is connected with The CTD, which consists of two twisted antiparallel β-sheets.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt; TCP is a filamentous structure belongs. Studies showed that the regions, close to CTD  are important for mediating colonization. The architecture of TcpF, with discrete NTD and CTD joined by a linker, is flexible that allow to accommodate a larger substrate. By looking at the homology of TcpF, the NTD and the CTD together form a unique interface that interacts with partner proteins to function in V. cholerae colonization.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
&lt;br /&gt;
{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=300| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Consurf/1 |right|CAPTION=Consurf image [[3oc5]] }}&lt;br /&gt;
The function of many of Tcp genes and their associated proteins are largely unknown. TcpF is the only protein secreted by the TCP apparatus and it represents the first nonpilus protein identified that is specifically secreted outside the bacterial cell by a type IV pilus biogenesis apparatus.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt; Studies hypothesize that TcpF, identified in classical isolates of V. cholerae O1 is an essential factor for colonization in the infant mouse cholera model. Bacteria lacking tcpF are deficient in colonization, and anti-TcpF antibodies are protective in the infant mouse cholera model. TcpF is expressed in vivo during human infection and generates a substantial immune response in patients infected with V. cholera.&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Msatcpf.png|left|300px|thumb| Multiple sequence Alignment [[1xtc]]]]&lt;br /&gt;
[[Image:Distancematrixtcpf.png|left|300px|thumb| Distance Matrix [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The environmental TcpF proteins are important for secretion because they retained a high degree of identity in the region.  Each of the environmental TcpF proteins examined was secreted from the pathogenic strains. Now, TcpF genes from six pathogenic strains of V. cholerae have been sequenced, and all of these strains have nearly identical TcpF amino acid sequences.However, studies examined that environmental TcpF proteins cannot mediate colonization in the infant mouse cholera model.  By comparing the environmental strain, SCE4 and the pathogenic TcpF, O395 (See Multiple sequence alignment result ), it revealed that the regions, divergent from one another are located at the middle of the C terminal domain. Therefore, lack of colonization mediated by environmental TcpF proteins may suggest that the divergent regions between the pathogenic and environmental proteins are essential for TcpF function. &amp;lt;ref name=&amp;quot;map&amp;quot;&amp;gt;PMID: 21440558&amp;lt;/ref&amp;gt; &lt;br /&gt;
&lt;br /&gt;
==Application==&lt;br /&gt;
V.cholerae has a variety of proteins in the periplasm, but only a small part are known to be transported across the outer membrane into the extracellular space. The secretion systems (TCP system) is able to recognize their cognate substrates for export. The TCP apparatus is required by the secretion of TcpF. TcpF is absolutely necessary for colonization and V.cholerae pathogenesis. However, The mechanism for the action of TcpF remains to be elucidated.&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
&amp;lt;references /&amp;gt;&lt;br /&gt;
&amp;lt;ref&amp;gt;TcpF Is a Soluble Colonization Factor and Protective Antigen Secreted by El Tor and Classical O1 and O139 Vibrio cholerae Serogroups  Thomas J. Kirn and Ronald K. Taylor [http://iai.asm.org/content/73/8/4461 DOI: 10.1128/​IAI.73.8.4461-4470.2005] Infect. Immun. August 2005 vol. 73 no. 8 4461-4470.&amp;lt;/ref&amp;gt;&lt;br /&gt;
[1]. Genetic Mapping of Secretion and Functional Determinants of the Vibrio cholerae TcpF Colonization Factor  Shelly J. Krebs, Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
J. Bacteriol. 2009, 191(11):3665. DOI: 10.1128/JB.01724-08. Published Ahead of Print 20 March 2009.&lt;br /&gt;
&lt;br /&gt;
[2]. TcpF Is a Soluble Colonization Factor and Protective Antigen Secreted by El Tor and Classical O1 and O139 Vibrio cholerae Serogroups  Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
DOI: 10.1128/​IAI.73.8.4461-4470.2005 Infect. Immun. August 2005 vol. 73 no. 8 4461-4470.&lt;br /&gt;
&lt;br /&gt;
[3]. Crystal structure of the Vibrio cholerae colonization factor TcpF and identification of a functional immunogenic site. Megli CJ, Yuen AS, Kolappan S, Richardson MR, Dharmasena MN, Krebs SJ, Taylor RK, Craig L. J Mol Biol. 2011 Jun 3;409(2):146-58. Epub 2011 Apr 1.&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388656</id>
		<title>Vibrio cholerae colonization factor TcpF</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388656"/>
		<updated>2012-05-07T17:19:51Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=400| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Rainbow/1 |right|CAPTION=Cholera colonization factor [[3oc5]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Molecule:&#039;&#039;&#039;	 Toxin coregulated pilus biosynthesis protein F&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Type:&#039;&#039;&#039;protein  	&#039;&#039;&#039;Length:&#039;&#039;&#039;	318     &#039;&#039;&#039;Organism:&#039;&#039;&#039;[http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae]&lt;br /&gt;
&lt;br /&gt;
TcpF is a toxin-coregulated pilus that facilitates colonization of vibrio cholerae in the intestine. Vibrio cholerae relies on two main virulence factors: toxin-coregulated pilus (TCP) and [http://proteopedia.org/wiki/index.php/Cholera_toxin#External_Links cholera toxin (CT)] to cause the gastrointestinal disease cholera. TCP, encoded by the tcp operon, is a type IV pilus that mediates bacterial autoagglutination and colonization of the intestine.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Structuretcpf.png|left|300px|thumb]]&lt;br /&gt;
[[Image:RNA.png|left|300px|thumb| TcpF-RNA [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
The structure of TcpF is consisted with an &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/N_terminal_domain/1&#039;&amp;gt;N terminal domain (NTD;residues 1 to 185)&amp;lt;/scene&amp;gt; and a &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Ctd/1&#039;&amp;gt;C terminal domain (CTD; residues 190 to 318)&amp;lt;/scene&amp;gt; connected by an extended &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Linker_1/1&#039;&amp;gt; linker segment (residues 186 to 189)&amp;lt;/scene&amp;gt;. In detail, the NTD is composed of a short twisted β-sheet encapsulated by seven short α-helices with a second twisted β-sheet forming the floor of this domain. The NTD is connected with The CTD, which consists of two twisted antiparallel β-sheets.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt; TCP is a filamentous structure belongs. Studies showed that the regions, close to CTD  are important for mediating colonization. The architecture of TcpF, with discrete NTD and CTD joined by a linker, is flexible that allow to accommodate a larger substrate. By looking at the homology of TcpF, the NTD and the CTD together form a unique interface that interacts with partner proteins to function in V. cholerae colonization.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
&lt;br /&gt;
{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=300| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Consurf/1 |right|CAPTION=Consurf image [[3oc5]] }}&lt;br /&gt;
The function of many of Tcp genes and their associated proteins are largely unknown. TcpF is the only protein secreted by the TCP apparatus and it represents the first nonpilus protein identified that is specifically secreted outside the bacterial cell by a type IV pilus biogenesis apparatus.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt; Studies hypothesize that TcpF, identified in classical isolates of V. cholerae O1 is an essential factor for colonization in the infant mouse cholera model. Bacteria lacking tcpF are deficient in colonization, and anti-TcpF antibodies are protective in the infant mouse cholera model. TcpF is expressed in vivo during human infection and generates a substantial immune response in patients infected with V. cholera.&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Msatcpf.png|left|300px|thumb| Multiple sequence Alignment [[1xtc]]]]&lt;br /&gt;
[[Image:Distancematrixtcpf.png|left|300px|thumb| Distance Matrix [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The environmental TcpF proteins are important for secretion because they retained a high degree of identity in the region.  Each of the environmental TcpF proteins examined was secreted from the pathogenic strains. Now, TcpF genes from six pathogenic strains of V. cholerae have been sequenced, and all of these strains have nearly identical TcpF amino acid sequences.However, studies examined that environmental TcpF proteins cannot mediate colonization in the infant mouse cholera model.  By comparing the environmental strain, SCE4 and the pathogenic TcpF, O395 (See Multiple sequence alignment result ), it revealed that the regions, divergent from one another are located at the middle of the C terminal domain. Therefore, lack of colonization mediated by environmental TcpF proteins may suggest that the divergent regions between the pathogenic and environmental proteins are essential for TcpF function. &amp;lt;ref name=&amp;quot;map&amp;quot;&amp;gt;PMID: 21440558&amp;lt;/ref&amp;gt; &lt;br /&gt;
&lt;br /&gt;
==Application==&lt;br /&gt;
V.cholerae has a variety of proteins in the periplasm, but only a small part are known to be transported across the outer membrane into the extracellular space. The secretion systems (TCP system) is able to recognize their cognate substrates for export. The TCP apparatus is required by the secretion of TcpF. TcpF is absolutely necessary for colonization and V.cholerae pathogenesis. However, The mechanism for the action of TcpF remains to be elucidated.&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
&amp;lt;references /&amp;gt;&lt;br /&gt;
[1]. Genetic Mapping of Secretion and Functional Determinants of the Vibrio cholerae TcpF Colonization Factor  Shelly J. Krebs, Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
J. Bacteriol. 2009, 191(11):3665. DOI: 10.1128/JB.01724-08. Published Ahead of Print 20 March 2009.&lt;br /&gt;
&lt;br /&gt;
[2]. TcpF Is a Soluble Colonization Factor and Protective Antigen Secreted by El Tor and Classical O1 and O139 Vibrio cholerae Serogroups  Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
DOI: 10.1128/​IAI.73.8.4461-4470.2005 Infect. Immun. August 2005 vol. 73 no. 8 4461-4470.&lt;br /&gt;
&lt;br /&gt;
[3]. Crystal structure of the Vibrio cholerae colonization factor TcpF and identification of a functional immunogenic site. Megli CJ, Yuen AS, Kolappan S, Richardson MR, Dharmasena MN, Krebs SJ, Taylor RK, Craig L. J Mol Biol. 2011 Jun 3;409(2):146-58. Epub 2011 Apr 1.&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388655</id>
		<title>Vibrio cholerae colonization factor TcpF</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388655"/>
		<updated>2012-05-07T17:18:35Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: /* Function */&lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=400| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Rainbow/1 |right|CAPTION=Cholera colonization factor [[3oc5]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Molecule:&#039;&#039;&#039;	 Toxin coregulated pilus biosynthesis protein F&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Type:&#039;&#039;&#039;protein  	&#039;&#039;&#039;Length:&#039;&#039;&#039;	318     &#039;&#039;&#039;Organism:&#039;&#039;&#039;[http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae]&lt;br /&gt;
&lt;br /&gt;
TcpF is a toxin-coregulated pilus that facilitates colonization of vibrio cholerae in the intestine. Vibrio cholerae relies on two main virulence factors: toxin-coregulated pilus (TCP) and [http://proteopedia.org/wiki/index.php/Cholera_toxin#External_Links cholera toxin (CT)] to cause the gastrointestinal disease cholera. TCP, encoded by the tcp operon, is a type IV pilus that mediates bacterial autoagglutination and colonization of the intestine.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Structuretcpf.png|left|300px|thumb]]&lt;br /&gt;
[[Image:RNA.png|left|300px|thumb| TcpF-RNA [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
The structure of TcpF is consisted with an &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/N_terminal_domain/1&#039;&amp;gt;N terminal domain (NTD;residues 1 to 185)&amp;lt;/scene&amp;gt; and a &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Ctd/1&#039;&amp;gt;C terminal domain (CTD; residues 190 to 318)&amp;lt;/scene&amp;gt; connected by an extended &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Linker_1/1&#039;&amp;gt; linker segment (residues 186 to 189)&amp;lt;/scene&amp;gt;. In detail, the NTD is composed of a short twisted β-sheet encapsulated by seven short α-helices with a second twisted β-sheet forming the floor of this domain. The NTD is connected with The CTD, which consists of two twisted antiparallel β-sheets.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt; TCP is a filamentous structure belongs. Studies showed that the regions, close to CTD  are important for mediating colonization. The architecture of TcpF, with discrete NTD and CTD joined by a linker, is flexible that allow to accommodate a larger substrate. By looking at the homology of TcpF, the NTD and the CTD together form a unique interface that interacts with partner proteins to function in V. cholerae colonization.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
&lt;br /&gt;
{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=300| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Consurf/1 |right|CAPTION=Consurf image [[3oc5]] }}&lt;br /&gt;
The function of many of Tcp genes and their associated proteins are largely unknown. TcpF is the only protein secreted by the TCP apparatus and it represents the first nonpilus protein identified that is specifically secreted outside the bacterial cell by a type IV pilus biogenesis apparatus. Studies hypothesize that TcpF, identified in classical isolates of V. cholerae O1 is an essential factor for colonization in the infant mouse cholera model. Bacteria lacking tcpF are deficient in colonization, and anti-TcpF antibodies are protective in the infant mouse cholera model. TcpF is expressed in vivo during human infection and generates a substantial immune response in patients infected with V. cholera.&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Msatcpf.png|left|300px|thumb| Multiple sequence Alignment [[1xtc]]]]&lt;br /&gt;
[[Image:Distancematrixtcpf.png|left|300px|thumb| Distance Matrix [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The environmental TcpF proteins are important for secretion because they retained a high degree of identity in the region.  Each of the environmental TcpF proteins examined was secreted from the pathogenic strains. Now, TcpF genes from six pathogenic strains of V. cholerae have been sequenced, and all of these strains have nearly identical TcpF amino acid sequences.However, studies examined that environmental TcpF proteins cannot mediate colonization in the infant mouse cholera model.  By comparing the environmental strain, SCE4 and the pathogenic TcpF, O395 (See Multiple sequence alignment result ), it revealed that the regions, divergent from one another are located at the middle of the C terminal domain. Therefore, lack of colonization mediated by environmental TcpF proteins may suggest that the divergent regions between the pathogenic and environmental proteins are essential for TcpF function. &amp;lt;ref name=&amp;quot;map&amp;quot;&amp;gt;PMID: 21440558&amp;lt;/ref&amp;gt; &lt;br /&gt;
&lt;br /&gt;
==Application==&lt;br /&gt;
V.cholerae has a variety of proteins in the periplasm, but only a small part are known to be transported across the outer membrane into the extracellular space. The secretion systems (TCP system) is able to recognize their cognate substrates for export. The TCP apparatus is required by the secretion of TcpF. TcpF is absolutely necessary for colonization and V.cholerae pathogenesis. However, The mechanism for the action of TcpF remains to be elucidated.&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
&amp;lt;references /&amp;gt;&lt;br /&gt;
[1]. Genetic Mapping of Secretion and Functional Determinants of the Vibrio cholerae TcpF Colonization Factor  Shelly J. Krebs, Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
J. Bacteriol. 2009, 191(11):3665. DOI: 10.1128/JB.01724-08. Published Ahead of Print 20 March 2009.&lt;br /&gt;
&lt;br /&gt;
[2]. TcpF Is a Soluble Colonization Factor and Protective Antigen Secreted by El Tor and Classical O1 and O139 Vibrio cholerae Serogroups  Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
DOI: 10.1128/​IAI.73.8.4461-4470.2005 Infect. Immun. August 2005 vol. 73 no. 8 4461-4470.&lt;br /&gt;
&lt;br /&gt;
[3]. Crystal structure of the Vibrio cholerae colonization factor TcpF and identification of a functional immunogenic site. Megli CJ, Yuen AS, Kolappan S, Richardson MR, Dharmasena MN, Krebs SJ, Taylor RK, Craig L. J Mol Biol. 2011 Jun 3;409(2):146-58. Epub 2011 Apr 1.&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Toxt&amp;diff=1388653</id>
		<title>Toxt</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Toxt&amp;diff=1388653"/>
		<updated>2012-05-07T17:14:52Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: Redirecting to ToxT Transcriptional Regulator in Vibrio cholerae&lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;#REDIRECT [[ToxT_Transcriptional_Regulator_in_Vibrio_cholerae]]&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388652</id>
		<title>Vibrio cholerae colonization factor TcpF</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388652"/>
		<updated>2012-05-07T17:12:15Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=400| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Rainbow/1 |right|CAPTION=Cholera colonization factor [[3oc5]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Molecule:&#039;&#039;&#039;	 Toxin coregulated pilus biosynthesis protein F&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Type:&#039;&#039;&#039;protein  	&#039;&#039;&#039;Length:&#039;&#039;&#039;	318     &#039;&#039;&#039;Organism:&#039;&#039;&#039;[http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae]&lt;br /&gt;
&lt;br /&gt;
TcpF is a toxin-coregulated pilus that facilitates colonization of vibrio cholerae in the intestine. Vibrio cholerae relies on two main virulence factors: toxin-coregulated pilus (TCP) and [http://proteopedia.org/wiki/index.php/Cholera_toxin#External_Links cholera toxin (CT)] to cause the gastrointestinal disease cholera. TCP, encoded by the tcp operon, is a type IV pilus that mediates bacterial autoagglutination and colonization of the intestine.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Structuretcpf.png|left|300px|thumb]]&lt;br /&gt;
[[Image:RNA.png|left|300px|thumb| TcpF-RNA [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
The structure of TcpF is consisted with an &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/N_terminal_domain/1&#039;&amp;gt;N terminal domain (NTD;residues 1 to 185)&amp;lt;/scene&amp;gt; and a &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Ctd/1&#039;&amp;gt;C terminal domain (CTD; residues 190 to 318)&amp;lt;/scene&amp;gt; connected by an extended &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Linker_1/1&#039;&amp;gt; linker segment (residues 186 to 189)&amp;lt;/scene&amp;gt;. In detail, the NTD is composed of a short twisted β-sheet encapsulated by seven short α-helices with a second twisted β-sheet forming the floor of this domain. The NTD is connected with The CTD, which consists of two twisted antiparallel β-sheets.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt; TCP is a filamentous structure belongs. Studies showed that the regions, close to CTD  are important for mediating colonization. The architecture of TcpF, with discrete NTD and CTD joined by a linker, is flexible that allow to accommodate a larger substrate. By looking at the homology of TcpF, the NTD and the CTD together form a unique interface that interacts with partner proteins to function in V. cholerae colonization.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
&lt;br /&gt;
{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=300| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Consurf/1 |right|CAPTION=Consurf image [[3oc5]] }}&lt;br /&gt;
TcpF is the only protein secreted by the TCP apparatus and it represents the first nonpilus protein identified that is specifically secreted outside the bacterial cell by a type IV pilus biogenesis apparatus. Studies shows that TcpF, identified in classical isolates of V. cholerae O1 is an essential factor for colonization in the infant mouse cholera model. Bacteria lacking tcpF are deficient in colonization, and anti-TcpF antibodies are protective in the infant mouse cholera model. TcpF is expressed in vivo during human infection and generates a substantial immune response in patients infected with V. cholera. &lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Msatcpf.png|left|300px|thumb| Multiple sequence Alignment [[1xtc]]]]&lt;br /&gt;
[[Image:Distancematrixtcpf.png|left|300px|thumb| Distance Matrix [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The environmental TcpF proteins are important for secretion because they retained a high degree of identity in the region.  Each of the environmental TcpF proteins examined was secreted from the pathogenic strains. Now, TcpF genes from six pathogenic strains of V. cholerae have been sequenced, and all of these strains have nearly identical TcpF amino acid sequences.However, studies examined that environmental TcpF proteins cannot mediate colonization in the infant mouse cholera model.  By comparing the environmental strain, SCE4 and the pathogenic TcpF, O395 (See Multiple sequence alignment result ), it revealed that the regions, divergent from one another are located at the middle of the C terminal domain. Therefore, lack of colonization mediated by environmental TcpF proteins may suggest that the divergent regions between the pathogenic and environmental proteins are essential for TcpF function. &amp;lt;ref name=&amp;quot;map&amp;quot;&amp;gt;PMID: 21440558&amp;lt;/ref&amp;gt; &lt;br /&gt;
&lt;br /&gt;
==Application==&lt;br /&gt;
V.cholerae has a variety of proteins in the periplasm, but only a small part are known to be transported across the outer membrane into the extracellular space. The secretion systems (TCP system) is able to recognize their cognate substrates for export. The TCP apparatus is required by the secretion of TcpF. TcpF is absolutely necessary for colonization and V.cholerae pathogenesis. However, The mechanism for the action of TcpF remains to be elucidated.&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
&amp;lt;references /&amp;gt;&lt;br /&gt;
[1]. Genetic Mapping of Secretion and Functional Determinants of the Vibrio cholerae TcpF Colonization Factor  Shelly J. Krebs, Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
J. Bacteriol. 2009, 191(11):3665. DOI: 10.1128/JB.01724-08. Published Ahead of Print 20 March 2009.&lt;br /&gt;
&lt;br /&gt;
[2]. TcpF Is a Soluble Colonization Factor and Protective Antigen Secreted by El Tor and Classical O1 and O139 Vibrio cholerae Serogroups  Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
DOI: 10.1128/​IAI.73.8.4461-4470.2005 Infect. Immun. August 2005 vol. 73 no. 8 4461-4470.&lt;br /&gt;
&lt;br /&gt;
[3]. Crystal structure of the Vibrio cholerae colonization factor TcpF and identification of a functional immunogenic site. Megli CJ, Yuen AS, Kolappan S, Richardson MR, Dharmasena MN, Krebs SJ, Taylor RK, Craig L. J Mol Biol. 2011 Jun 3;409(2):146-58. Epub 2011 Apr 1.&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Luxo&amp;diff=1388651</id>
		<title>Luxo</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Luxo&amp;diff=1388651"/>
		<updated>2012-05-07T17:11:33Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: Redirecting to Vibrio cholerae repressor protein LuxO&lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;#REDIRECT [[Vibrio_cholerae_repressor_protein_LuxO]]&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388650</id>
		<title>Vibrio cholerae colonization factor TcpF</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388650"/>
		<updated>2012-05-07T17:10:38Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=400| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Rainbow/1 |right|CAPTION=Cholera colonization factor [[3oc5]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Molecule:&#039;&#039;&#039;	 Toxin coregulated pilus biosynthesis protein F&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Type:&#039;&#039;&#039;protein  	&#039;&#039;&#039;Length:&#039;&#039;&#039;	318     &#039;&#039;&#039;Organism:&#039;&#039;&#039;[http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae]&lt;br /&gt;
&lt;br /&gt;
TcpF is a toxin-coregulated pilus that facilitates colonization of vibrio cholerae in the intestine. Vibrio cholerae relies on two main virulence factors: toxin-coregulated pilus (TCP) and [http://proteopedia.org/wiki/index.php/Cholera_toxin#External_Links cholera toxin (CT)] to cause the gastrointestinal disease cholera. TCP, encoded by the tcp operon, is a type IV pilus that mediates bacterial autoagglutination and colonization of the intestine.&amp;lt;ref name=&amp;quot;map&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Structuretcpf.png|left|300px|thumb]]&lt;br /&gt;
[[Image:RNA.png|left|300px|thumb| TcpF-RNA [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
The structure of TcpF is consisted with an &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/N_terminal_domain/1&#039;&amp;gt;N terminal domain (NTD;residues 1 to 185)&amp;lt;/scene&amp;gt; and a &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Ctd/1&#039;&amp;gt;C terminal domain (CTD; residues 190 to 318)&amp;lt;/scene&amp;gt; connected by an extended &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Linker_1/1&#039;&amp;gt; linker segment (residues 186 to 189)&amp;lt;/scene&amp;gt;. In detail, the NTD is composed of a short twisted β-sheet encapsulated by seven short α-helices with a second twisted β-sheet forming the floor of this domain. The NTD is connected with The CTD, which consists of two twisted antiparallel β-sheets. TCP is a filamentous structure belongs. Studies showed that the regions, close to CTD  are important for mediating colonization. The architecture of TcpF, with discrete NTD and CTD joined by a linker, is flexible that allow to accommodate a larger substrate. By looking at the homology of TcpF, the NTD and the CTD together form a unique interface that interacts with partner proteins to function in V. cholerae colonization.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
&lt;br /&gt;
{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=300| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Consurf/1 |right|CAPTION=Consurf image [[3oc5]] }}&lt;br /&gt;
TcpF is the only protein secreted by the TCP apparatus and it represents the first nonpilus protein identified that is specifically secreted outside the bacterial cell by a type IV pilus biogenesis apparatus. Studies shows that TcpF, identified in classical isolates of V. cholerae O1 is an essential factor for colonization in the infant mouse cholera model. Bacteria lacking tcpF are deficient in colonization, and anti-TcpF antibodies are protective in the infant mouse cholera model. TcpF is expressed in vivo during human infection and generates a substantial immune response in patients infected with V. cholera. &lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Msatcpf.png|left|300px|thumb| Multiple sequence Alignment [[1xtc]]]]&lt;br /&gt;
[[Image:Distancematrixtcpf.png|left|300px|thumb| Distance Matrix [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The environmental TcpF proteins are important for secretion because they retained a high degree of identity in the region.  Each of the environmental TcpF proteins examined was secreted from the pathogenic strains. Now, TcpF genes from six pathogenic strains of V. cholerae have been sequenced, and all of these strains have nearly identical TcpF amino acid sequences.However, studies examined that environmental TcpF proteins cannot mediate colonization in the infant mouse cholera model.  By comparing the environmental strain, SCE4 and the pathogenic TcpF, O395 (See Multiple sequence alignment result ), it revealed that the regions, divergent from one another are located at the middle of the C terminal domain. Therefore, lack of colonization mediated by environmental TcpF proteins may suggest that the divergent regions between the pathogenic and environmental proteins are essential for TcpF function. &amp;lt;ref name=&amp;quot;map&amp;quot;&amp;gt;PMID: 21440558&amp;lt;/ref&amp;gt; &lt;br /&gt;
&lt;br /&gt;
==Application==&lt;br /&gt;
V.cholerae has a variety of proteins in the periplasm, but only a small part are known to be transported across the outer membrane into the extracellular space. The secretion systems (TCP system) is able to recognize their cognate substrates for export. The TCP apparatus is required by the secretion of TcpF. TcpF is absolutely necessary for colonization and V.cholerae pathogenesis. However, The mechanism for the action of TcpF remains to be elucidated.&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
&amp;lt;references /&amp;gt;&lt;br /&gt;
[1]. Genetic Mapping of Secretion and Functional Determinants of the Vibrio cholerae TcpF Colonization Factor  Shelly J. Krebs, Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
J. Bacteriol. 2009, 191(11):3665. DOI: 10.1128/JB.01724-08. Published Ahead of Print 20 March 2009.&lt;br /&gt;
&lt;br /&gt;
[2]. TcpF Is a Soluble Colonization Factor and Protective Antigen Secreted by El Tor and Classical O1 and O139 Vibrio cholerae Serogroups  Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
DOI: 10.1128/​IAI.73.8.4461-4470.2005 Infect. Immun. August 2005 vol. 73 no. 8 4461-4470.&lt;br /&gt;
&lt;br /&gt;
[3]. Crystal structure of the Vibrio cholerae colonization factor TcpF and identification of a functional immunogenic site. Megli CJ, Yuen AS, Kolappan S, Richardson MR, Dharmasena MN, Krebs SJ, Taylor RK, Craig L. J Mol Biol. 2011 Jun 3;409(2):146-58. Epub 2011 Apr 1.&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388649</id>
		<title>Vibrio cholerae colonization factor TcpF</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388649"/>
		<updated>2012-05-07T17:07:39Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=400| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Rainbow/1 |right|CAPTION=Cholera colonization factor [[3oc5]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Molecule:&#039;&#039;&#039;	 Toxin coregulated pilus biosynthesis protein F&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Type:&#039;&#039;&#039;protein  	&#039;&#039;&#039;Length:&#039;&#039;&#039;	318     &#039;&#039;&#039;Organism:&#039;&#039;&#039;[http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae]&lt;br /&gt;
&lt;br /&gt;
TcpF is a toxin-coregulated pilus that facilitates colonization of vibrio cholerae in the intestine. Vibrio cholerae relies on two main virulence factors: toxin-coregulated pilus (TCP) and [http://proteopedia.org/wiki/index.php/Cholera_toxin#External_Links cholera toxin (CT)] to cause the gastrointestinal disease cholera. TCP, encoded by the tcp operon, is a type IV pilus that mediates bacterial autoagglutination and colonization of the intestine. &lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Structuretcpf.png|left|300px|thumb]]&lt;br /&gt;
[[Image:RNA.png|left|300px|thumb| TcpF-RNA [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
The structure of TcpF is consisted with an &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/N_terminal_domain/1&#039;&amp;gt;N terminal domain (NTD;residues 1 to 185)&amp;lt;/scene&amp;gt; and a &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Ctd/1&#039;&amp;gt;C terminal domain (CTD; residues 190 to 318)&amp;lt;/scene&amp;gt; connected by an extended &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Linker_1/1&#039;&amp;gt; linker segment (residues 186 to 189)&amp;lt;/scene&amp;gt;. In detail, the NTD is composed of a short twisted β-sheet encapsulated by seven short α-helices with a second twisted β-sheet forming the floor of this domain. The NTD is connected with The CTD, which consists of two twisted antiparallel β-sheets. TCP is a filamentous structure belongs. Studies showed that the regions, close to CTD  are important for mediating colonization. The architecture of TcpF, with discrete NTD and CTD joined by a linker, is flexible that allow to accommodate a larger substrate. By looking at the homology of TcpF, the NTD and the CTD together form a unique interface that interacts with partner proteins to function in V. cholerae colonization.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
&lt;br /&gt;
{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=300| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Consurf/1 |right|CAPTION=Consurf image [[3oc5]] }}&lt;br /&gt;
TcpF is the only protein secreted by the TCP apparatus and it represents the first nonpilus protein identified that is specifically secreted outside the bacterial cell by a type IV pilus biogenesis apparatus. Studies shows that TcpF, identified in classical isolates of V. cholerae O1 is an essential factor for colonization in the infant mouse cholera model. Bacteria lacking tcpF are deficient in colonization, and anti-TcpF antibodies are protective in the infant mouse cholera model. TcpF is expressed in vivo during human infection and generates a substantial immune response in patients infected with V. cholera. &lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Msatcpf.png|left|300px|thumb| Multiple sequence Alignment [[1xtc]]]]&lt;br /&gt;
[[Image:Distancematrixtcpf.png|left|300px|thumb| Distance Matrix [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The environmental TcpF proteins are important for secretion because they retained a high degree of identity in the region.  Each of the environmental TcpF proteins examined was secreted from the pathogenic strains. Now, TcpF genes from six pathogenic strains of V. cholerae have been sequenced, and all of these strains have nearly identical TcpF amino acid sequences.However, studies examined that environmental TcpF proteins cannot mediate colonization in the infant mouse cholera model.  By comparing the environmental strain, SCE4 and the pathogenic TcpF, O395 (See Multiple sequence alignment result ), it revealed that the regions, divergent from one another are located at the middle of the C terminal domain. Therefore, lack of colonization mediated by environmental TcpF proteins may suggest that the divergent regions between the pathogenic and environmental proteins are essential for TcpF function. &amp;lt;ref name=&amp;quot;map&amp;quot;&amp;gt;PMID: 21440558&amp;lt;/ref&amp;gt; &lt;br /&gt;
&lt;br /&gt;
==Application==&lt;br /&gt;
V.cholerae has a variety of proteins in the periplasm, but only a small part are known to be transported across the outer membrane into the extracellular space. The secretion systems (TCP system) is able to recognize their cognate substrates for export. The TCP apparatus is required by the secretion of TcpF. TcpF is absolutely necessary for colonization and V.cholerae pathogenesis. However, The mechanism for the action of TcpF remains to be elucidated.&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
&amp;lt;references /&amp;gt;&lt;br /&gt;
[1]. Genetic Mapping of Secretion and Functional Determinants of the Vibrio cholerae TcpF Colonization Factor  Shelly J. Krebs, Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
J. Bacteriol. 2009, 191(11):3665. DOI: 10.1128/JB.01724-08. Published Ahead of Print 20 March 2009.&lt;br /&gt;
&lt;br /&gt;
[2]. TcpF Is a Soluble Colonization Factor and Protective Antigen Secreted by El Tor and Classical O1 and O139 Vibrio cholerae Serogroups  Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
DOI: 10.1128/​IAI.73.8.4461-4470.2005 Infect. Immun. August 2005 vol. 73 no. 8 4461-4470.&lt;br /&gt;
&lt;br /&gt;
[3]. Crystal structure of the Vibrio cholerae colonization factor TcpF and identification of a functional immunogenic site. Megli CJ, Yuen AS, Kolappan S, Richardson MR, Dharmasena MN, Krebs SJ, Taylor RK, Craig L. J Mol Biol. 2011 Jun 3;409(2):146-58. Epub 2011 Apr 1.&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388648</id>
		<title>Vibrio cholerae colonization factor TcpF</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388648"/>
		<updated>2012-05-07T17:04:52Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=400| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Rainbow/1 |right|CAPTION=Cholera colonization factor [[3oc5]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Molecule:&#039;&#039;&#039;	 Toxin coregulated pilus biosynthesis protein F&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Type:&#039;&#039;&#039;protein  	&#039;&#039;&#039;Length:&#039;&#039;&#039;	318     &#039;&#039;&#039;Organism:&#039;&#039;&#039;[http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae]&lt;br /&gt;
&lt;br /&gt;
TcpF is a toxin-coregulated pilus that facilitates colonization of vibrio cholerae in the intestine. Vibrio cholerae relies on two main virulence factors: toxin-coregulated pilus (TCP) and [http://proteopedia.org/wiki/index.php/Cholera_toxin#External_Links cholera toxin (CT)] to cause the gastrointestinal disease cholera. TCP, encoded by the tcp operon, is a type IV pilus that mediates bacterial autoagglutination and colonization of the intestine. &lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Structuretcpf.png|left|300px|thumb]]&lt;br /&gt;
[[Image:RNA.png|left|300px|thumb| TcpF-RNA [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
The structure of TcpF is consisted with an &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/N_terminal_domain/1&#039;&amp;gt;N terminal domain (NTD;residues 1 to 185)&amp;lt;/scene&amp;gt; and a &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Ctd/1&#039;&amp;gt;C terminal domain (CTD; residues 190 to 318)&amp;lt;/scene&amp;gt; connected by an extended &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Linker_1/1&#039;&amp;gt; linker segment (residues 186 to 189)&amp;lt;/scene&amp;gt;. In detail, the NTD is composed of a short twisted β-sheet encapsulated by seven short α-helices with a second twisted β-sheet forming the floor of this domain. The NTD is connected with The CTD, which consists of two twisted antiparallel β-sheets. TCP is a filamentous structure belongs. Studies showed that the regions, close to CTD  are important for mediating colonization. The architecture of TcpF, with discrete NTD and CTD joined by a linker, is flexible that allow to accommodate a larger substrate. By looking at the homology of TcpF, the NTD and the CTD together form a unique interface that interacts with partner proteins to function in V. cholerae colonization.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
&lt;br /&gt;
{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=300| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Consurf/1 |right|CAPTION=Consurf image [[3oc5]] }}&lt;br /&gt;
TcpF is the only protein secreted by the TCP apparatus and it represents the first nonpilus protein identified that is specifically secreted outside the bacterial cell by a type IV pilus biogenesis apparatus. Studies shows that TcpF, identified in classical isolates of V. cholerae O1 is an essential factor for colonization in the infant mouse cholera model. Bacteria lacking tcpF are deficient in colonization, and anti-TcpF antibodies are protective in the infant mouse cholera model. TcpF is expressed in vivo during human infection and generates a substantial immune response in patients infected with V. cholera. &lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Msatcpf.png|left|300px|thumb| Multiple sequence Alignment [[1xtc]]]]&lt;br /&gt;
[[Image:Distancematrixtcpf.png|left|300px|thumb| Distance Matrix [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The environmental TcpF proteins are important for secretion because they retained a high degree of identity in the region.  Each of the environmental TcpF proteins examined was secreted from the pathogenic strains. Now, TcpF genes from six pathogenic strains of V. cholerae have been sequenced, and all of these strains have nearly identical TcpF amino acid sequences.However, studies examined that environmental TcpF proteins cannot mediate colonization in the infant mouse cholera model.  By comparing the environmental strain, SCE4 and the pathogenic TcpF, O395 (See Multiple sequence alignment result ), it revealed that the regions, divergent from one another are located at the middle of the C terminal domain. Therefore, lack of colonization mediated by environmental TcpF proteins may suggest that the divergent regions between the pathogenic and environmental proteins are essential for TcpF function. &amp;lt;ref&amp;gt;PMID: 21440558&amp;lt;/ref&amp;gt; &lt;br /&gt;
&lt;br /&gt;
==Application==&lt;br /&gt;
V.cholerae has a variety of proteins in the periplasm, but only a small part are known to be transported across the outer membrane into the extracellular space. The secretion systems (TCP system) is able to recognize their cognate substrates for export. The TCP apparatus is required by the secretion of TcpF. TcpF is absolutely necessary for colonization and V.cholerae pathogenesis. However, The mechanism for the action of TcpF remains to be elucidated.&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
&amp;lt;references /&amp;gt;&lt;br /&gt;
[1]. Genetic Mapping of Secretion and Functional Determinants of the Vibrio cholerae TcpF Colonization Factor  Shelly J. Krebs, Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
J. Bacteriol. 2009, 191(11):3665. DOI: 10.1128/JB.01724-08. Published Ahead of Print 20 March 2009.&lt;br /&gt;
&lt;br /&gt;
[2]. TcpF Is a Soluble Colonization Factor and Protective Antigen Secreted by El Tor and Classical O1 and O139 Vibrio cholerae Serogroups  Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
DOI: 10.1128/​IAI.73.8.4461-4470.2005 Infect. Immun. August 2005 vol. 73 no. 8 4461-4470.&lt;br /&gt;
&lt;br /&gt;
[3]. Crystal structure of the Vibrio cholerae colonization factor TcpF and identification of a functional immunogenic site. Megli CJ, Yuen AS, Kolappan S, Richardson MR, Dharmasena MN, Krebs SJ, Taylor RK, Craig L. J Mol Biol. 2011 Jun 3;409(2):146-58. Epub 2011 Apr 1.&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_repressor_protein_LuxO&amp;diff=1388478</id>
		<title>Vibrio cholerae repressor protein LuxO</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_repressor_protein_LuxO&amp;diff=1388478"/>
		<updated>2012-05-05T16:52:06Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3cfy|  PDB=3cfy  | SIZE=300| SCENE=Vibrio_cholerae_repressor_protein_LuxO/Rainbow/1 |right|CAPTION=Regulatory protein LuxO [[3cfy]] }}&lt;br /&gt;
&lt;br /&gt;
{{TOC limit|limit=2}}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
LuxO regulates the quorum sensing. Quorum sensing is the adjustment of behavior in response to population size. As a regulator in quorum sensing pathways, LuxO can function as a “switch” and it is known to influence biofilm formation, toxin production, phosphorylation and bioluminescence.  &amp;lt;ref name=&amp;quot;ZhuJ&amp;quot;&amp;gt;PMID: 11854465&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== LuxO Protein Structure ==&lt;br /&gt;
[[Image:LuxO_Annotation.png|left|280px|thumb|Assumed Biological Structure of the signal receiver domain of the repressor protein LuxO [[3cfy]]]] &lt;br /&gt;
&lt;br /&gt;
The crystal structure of the whole amino acid sequence of the LuxO repressor protein is not yet available on the PDB website. The signal receiving domain of the LuxO protein in Vibrio parahaemolyticus has been successfully crystallized. However, since the paper is yet to be published, the details of the structure is not available at this time. The signal receiver domain is from residual 2 to 128. From the 3D structure, we find that this signal receiver domain consists of five &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Helixes/1&#039;&amp;gt;five α helixes&amp;lt;/scene&amp;gt; and five &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Beta_sheet/1&#039;&amp;gt;five β sheets&amp;lt;/scene&amp;gt;. The phosphorylation  of the aspartate at &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Aspartate47/1&#039;&amp;gt;residual 47&amp;lt;/scene&amp;gt; is considered to be the critical factor in the activation of LuxO regulatory protein. &amp;lt;ref name=&amp;quot;LuxO Structure&amp;quot;&amp;gt;PMID: 21292858&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== LuxO RNA Structure ==&lt;br /&gt;
[[Image:LuxO_RNA.png|right|300px|thumb|mRNA structure of LuxO [[3cfy]]]]&lt;br /&gt;
RNA folding algorithm uses a method to minimize the free energy of the structure so that the RNA molecule is in the most stable form.  &amp;lt;ref&amp;gt;PMID:22418849&amp;lt;/ref&amp;gt;The red regions have higher free energy and are less stable while the blue regions posses lower energy hence more stable. Regions without base pairing are more mutable and less likely to be conserved, so evolutionarily they are more likely to contain differences.&lt;br /&gt;
The total free energy of this LuxO RNA folding model is -476KJ/mol.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
[[Image:LuxO_Activates_other_genes_at_different_levels.png|left|400px|thumb|Weighted graph analysis of  activation levels of various proteins in the pathogenic pathway by LuxO. Thicker lines indicate more repression in presence of LuxO deficient mutant, and therefore a higher rate of expression regulated by LuxO. Line color indicates the same information. Produced using weighted analysis platform of BioGrapher(Not yet published). The data is from the table of &amp;quot;Quorum-sensing regulators control virulence gene expression in Vibrio cholerae&amp;quot; &amp;lt;ref name=&amp;quot;ZhuJ&amp;quot; /&amp;gt;]]&lt;br /&gt;
LuxO and HapR are tow regulators as the two proteins regulate quorum sensing, related luminous marine bacterium &#039;&#039;Vibrio harveyi&#039;&#039;. LuxO and HapR control a number of other cellular processes, such as motility, protease production, and biofilm formation. Studies showed that LuxO mutant is very defective in colonization of the small intestine under an infant mouse model. By investigating the mechanism that LuxO regulated V. choleae pathogenicity, studies found that the luxO mutant does not generate any detectable TcpA or CT. Hence, the luxO mutant cannot to colonize mice.  However, the LuxO effect on  the virulence regulation is mediated through TcpP which express its mechanism of repression.  In the evidence, luxO regulated the expression of HapR negatively. &amp;lt;ref name=&amp;quot;ZhuJ&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
In the bacterium Vibrio harveyi, there are two quorum-sensing systems that control the bioluminescence(lux) expression. An autoinducer (AI-1 or AI-2) and a cognate sensor (LuxN or LuxQ)are contained in each system. Sensory information of the quorum-sensing systems is transmitted by a phospho-transfer mechanism to LuxO, a shared integrator protein. In term of controlling luminescence, LuxO acts negatively, which is also a member of the signal transduction proteins. LuxN and LuxQ have activities on LuxO,which is suggested by the lux phenotypes of Vibrio harveyi strains that have single and double LuxN and LuxQ mutations.  &amp;lt;ref&amp;gt;PMID: 10027982&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
 {{STRUCTURE_3cfy|  PDB=3cfy  | SIZE=300| SCENE=Vibrio_cholerae_repressor_protein_LuxO/Consurf/1|right|CAPTION=Regulatory protein LuxO [[3cfy]]}}&lt;br /&gt;
[[Image:LuxO_Tshade1.png|left|300px|thumb|MSA [[3cfy]]]]&lt;br /&gt;
[[Image:LuxO_Tree.png|left|300px|thumb|Phylogenetic Tree LuxO [[3cfy]]]]&lt;br /&gt;
&lt;br /&gt;
The first 180 amino acids are shown in the Multiple Sequence Alignment (MSA). The MSA shows that the LuxO protein among different species of Vibrio is highly conserved except the regions highlighted by the red arrows. This is visualized by the consurf 3D model of the signal receiver domain. The dark red regions are highly conserved while the dark blue regions are highly variable. As shown in the model, the majority of the signal receiver domain of the LuxO protein are highly conserved. This is consistent with the MSA data. Study has shown that the first 104 amino acids of the LuxO is the hotspot for mutations. &amp;lt;ref name=&amp;quot;LuxO Structure&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
 &amp;lt;references /&amp;gt;&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_repressor_protein_LuxO&amp;diff=1388477</id>
		<title>Vibrio cholerae repressor protein LuxO</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_repressor_protein_LuxO&amp;diff=1388477"/>
		<updated>2012-05-05T16:50:35Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3cfy|  PDB=3cfy  | SIZE=300| SCENE=Vibrio_cholerae_repressor_protein_LuxO/Rainbow/1 |right|CAPTION=Regulatory protein LuxO [[3cfy]] }}&lt;br /&gt;
&lt;br /&gt;
{{TOC limit|limit=2}}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
LuxO regulates the quorum sensing. Quorum sensing is the adjustment of behavior in response to population size. As a regulator in quorum sensing pathways, LuxO can function as a “switch” and it is known to influence biofilm formation, toxin production, phosphorylation and bioluminescence.  &amp;lt;ref name=&amp;quot;ZhuJ&amp;quot;&amp;gt;PMID: 11854465&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== LuxO Protein Structure ==&lt;br /&gt;
[[Image:LuxO_Annotation.png|left|280px|thumb|Assumed Biological Structure of the signal receiver domain of the repressor protein LuxO [[3cfy]]]] &lt;br /&gt;
&lt;br /&gt;
The crystal structure of the whole amino acid sequence of the LuxO repressor protein is not yet available on the PDB website. The signal receiving domain of the LuxO protein in Vibrio parahaemolyticus has been successfully crystallized. However, since the paper is yet to be published, the details of the structure is not available at this time. The signal receiver domain is from residual 2 to 128. From the 3D structure, we find that this signal receiver domain consists of five &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Helixes/1&#039;&amp;gt;five α helixes&amp;lt;/scene&amp;gt; and five &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Beta_sheet/1&#039;&amp;gt;five β sheets&amp;lt;/scene&amp;gt;. The phosphorylation  of the aspartate at &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Aspartate47/1&#039;&amp;gt;residual 47&amp;lt;/scene&amp;gt; is considered to be the critical factor in the activation of LuxO regulatory protein. &amp;lt;ref name=&amp;quot;LuxO Structure&amp;quot;&amp;gt;PMID: 21292858&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== LuxO RNA Structure ==&lt;br /&gt;
[[Image:LuxO_RNA.png|right|300px|thumb|mRNA structure of LuxO [[3cfy]]]]&lt;br /&gt;
RNA folding algorithm uses a method to minimize the free energy of the structure so that the RNA molecule is in the most stable form.  &amp;lt;ref&amp;gt;PMID:22418849&amp;lt;/ref&amp;gt;The red regions have higher free energy and are less stable while the blue regions posses lower energy hence more stable. Regions without base pairing are more mutable and less likely to be conserved, so evolutionarily they are more likely to contain differences.&lt;br /&gt;
The total free energy of this LuxO RNA folding model is -476KJ/mol.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
[[Image:LuxO_Activates_other_genes_at_different_levels.png|left|400px|thumb|Heat map representation of the activation level of LuxO regulator on other genes. Thicker lines indicate more repression in presence of LuxO deficient mutant, and therefore a higher rate of expression regulated by LuxO. Line color indicates the same. Produced using weighted analysis platform of BioGrapher(Not yet published). The data is from the table of &amp;quot;Quorum-sensing regulators control virulence gene expression in Vibrio cholerae&amp;quot; &amp;lt;ref name=&amp;quot;ZhuJ&amp;quot; /&amp;gt;]]&lt;br /&gt;
LuxO and HapR are tow regulators as the two proteins regulate quorum sensing, related luminous marine bacterium &#039;&#039;Vibrio harveyi&#039;&#039;. LuxO and HapR control a number of other cellular processes, such as motility, protease production, and biofilm formation. Studies showed that LuxO mutant is very defective in colonization of the small intestine under an infant mouse model. By investigating the mechanism that LuxO regulated V. choleae pathogenicity, studies found that the luxO mutant does not generate any detectable TcpA or CT. Hence, the luxO mutant cannot to colonize mice.  However, the LuxO effect on  the virulence regulation is mediated through TcpP which express its mechanism of repression.  In the evidence, luxO regulated the expression of HapR negatively. &amp;lt;ref name=&amp;quot;ZhuJ&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
In the bacterium Vibrio harveyi, there are two quorum-sensing systems that control the bioluminescence(lux) expression. An autoinducer (AI-1 or AI-2) and a cognate sensor (LuxN or LuxQ)are contained in each system. Sensory information of the quorum-sensing systems is transmitted by a phospho-transfer mechanism to LuxO, a shared integrator protein. In term of controlling luminescence, LuxO acts negatively, which is also a member of the signal transduction proteins. LuxN and LuxQ have activities on LuxO,which is suggested by the lux phenotypes of Vibrio harveyi strains that have single and double LuxN and LuxQ mutations.  &amp;lt;ref&amp;gt;PMID: 10027982&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
 {{STRUCTURE_3cfy|  PDB=3cfy  | SIZE=300| SCENE=Vibrio_cholerae_repressor_protein_LuxO/Consurf/1|right|CAPTION=Regulatory protein LuxO [[3cfy]]}}&lt;br /&gt;
[[Image:LuxO_Tshade1.png|left|300px|thumb|MSA [[3cfy]]]]&lt;br /&gt;
[[Image:LuxO_Tree.png|left|300px|thumb|Phylogenetic Tree LuxO [[3cfy]]]]&lt;br /&gt;
&lt;br /&gt;
The first 180 amino acids are shown in the Multiple Sequence Alignment (MSA). The MSA shows that the LuxO protein among different species of Vibrio is highly conserved except the regions highlighted by the red arrows. This is visualized by the consurf 3D model of the signal receiver domain. The dark red regions are highly conserved while the dark blue regions are highly variable. As shown in the model, the majority of the signal receiver domain of the LuxO protein are highly conserved. This is consistent with the MSA data. Study has shown that the first 104 amino acids of the LuxO is the hotspot for mutations. &amp;lt;ref name=&amp;quot;LuxO Structure&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
 &amp;lt;references /&amp;gt;&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_repressor_protein_LuxO&amp;diff=1388476</id>
		<title>Vibrio cholerae repressor protein LuxO</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_repressor_protein_LuxO&amp;diff=1388476"/>
		<updated>2012-05-05T16:46:43Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3cfy|  PDB=3cfy  | SIZE=300| SCENE=Vibrio_cholerae_repressor_protein_LuxO/Rainbow/1 |right|CAPTION=Regulatory protein LuxO [[3cfy]] }}&lt;br /&gt;
&lt;br /&gt;
{{TOC limit|limit=2}}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
LuxO regulates the quorum sensing. Quorum sensing is the adjustment of behavior in response to population size. As a regulator in quorum sensing pathways, LuxO can function as a “switch” and it is known to influence biofilm formation, toxin production, phosphorylation and bioluminescence.  &amp;lt;ref name=&amp;quot;ZhuJ&amp;quot;&amp;gt;PMID: 11854465&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== LuxO Protein Structure ==&lt;br /&gt;
[[Image:LuxO_Annotation.png|left|280px|thumb|Assumed Biological Structure of the signal receiver domain of the repressor protein LuxO [[3cfy]]]] &lt;br /&gt;
&lt;br /&gt;
The crystal structure of the whole amino acid sequence of the LuxO repressor protein is not yet available on the PDB website. The signal receiving domain of the LuxO protein in Vibrio parahaemolyticus has been successfully crystallized. However, since the paper is yet to be published, the details of the structure is not available at this time. The signal receiver domain is from residual 2 to 128. From the 3D structure, we find that this signal receiver domain consists of five &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Helixes/1&#039;&amp;gt;five α helixes&amp;lt;/scene&amp;gt; and five &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Beta_sheet/1&#039;&amp;gt;five β sheets&amp;lt;/scene&amp;gt;. The phosphorylation  of the aspartate at &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Aspartate47/1&#039;&amp;gt;residual 47&amp;lt;/scene&amp;gt; is considered to be the critical factor in the activation of LuxO regulatory protein. &amp;lt;ref name=&amp;quot;LuxO Structure&amp;quot;&amp;gt;PMID: 21292858&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== LuxO RNA Structure ==&lt;br /&gt;
[[Image:LuxO_RNA.png|right|300px|thumb|mRNA structure of LuxO [[3cfy]]]]&lt;br /&gt;
RNA folding algorithm uses a method to minimize the free energy of the structure so that the RNA molecule is in the most stable form.  &amp;lt;ref&amp;gt;PMID:22418849&amp;lt;/ref&amp;gt;The red regions have higher free energy and are less stable while the blue regions posses lower energy hence more stable. Regions without base pairing are more mutable and less likely to be conserved, so evolutionarily they are more likely to contain differences.&lt;br /&gt;
The total free energy of this LuxO RNA folding model is -476KJ/mol.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
[[Image:LuxO_Activates_other_genes_at_different_levels.png|right|400px|thumb]]&lt;br /&gt;
LuxO and HapR are tow regulators as the two proteins regulate quorum sensing, related luminous marine bacterium &#039;&#039;Vibrio harveyi&#039;&#039;. LuxO and HapR control a number of other cellular processes, such as motility, protease production, and biofilm formation. Studies showed that LuxO mutant is very defective in colonization of the small intestine under an infant mouse model. By investigating the mechanism that LuxO regulated V. choleae pathogenicity, studies found that the luxO mutant does not generate any detectable TcpA or CT. Hence, the luxO mutant cannot to colonize mice.  However, the LuxO effect on  the virulence regulation is mediated through TcpP which express its mechanism of repression.  In the evidence, luxO regulated the expression of HapR negatively. &amp;lt;ref name=&amp;quot;ZhuJ&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
In the bacterium Vibrio harveyi, there are two quorum-sensing systems that control the bioluminescence(lux) expression. An autoinducer (AI-1 or AI-2) and a cognate sensor (LuxN or LuxQ)are contained in each system. Sensory information of the quorum-sensing systems is transmitted by a phospho-transfer mechanism to LuxO, a shared integrator protein. In term of controlling luminescence, LuxO acts negatively, which is also a member of the signal transduction proteins. LuxN and LuxQ have activities on LuxO,which is suggested by the lux phenotypes of Vibrio harveyi strains that have single and double LuxN and LuxQ mutations.  &amp;lt;ref&amp;gt;PMID: 10027982&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
 {{STRUCTURE_3cfy|  PDB=3cfy  | SIZE=300| SCENE=Vibrio_cholerae_repressor_protein_LuxO/Consurf/1|right|CAPTION=Regulatory protein LuxO [[3cfy]]}}&lt;br /&gt;
[[Image:LuxO_Tshade1.png|left|300px|thumb|MSA [[3cfy]]]]&lt;br /&gt;
[[Image:LuxO_Tree.png|left|300px|thumb|Phylogenetic Tree LuxO [[3cfy]]]]&lt;br /&gt;
&lt;br /&gt;
The first 180 amino acids are shown in the Multiple Sequence Alignment (MSA). The MSA shows that the LuxO protein among different species of Vibrio is highly conserved except the regions highlighted by the red arrows. This is visualized by the consurf 3D model of the signal receiver domain. The dark red regions are highly conserved while the dark blue regions are highly variable. As shown in the model, the majority of the signal receiver domain of the LuxO protein are highly conserved. This is consistent with the MSA data. Study has shown that the first 104 amino acids of the LuxO is the hotspot for mutations. &amp;lt;ref name=&amp;quot;LuxO Structure&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
 &amp;lt;references /&amp;gt;&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=File:LuxO_Activates_other_genes_at_different_levels.png&amp;diff=1388475</id>
		<title>File:LuxO Activates other genes at different levels.png</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=File:LuxO_Activates_other_genes_at_different_levels.png&amp;diff=1388475"/>
		<updated>2012-05-05T16:46:14Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;== Licensing ==&lt;br /&gt;
{{self|cc-by-sa-3.0|GFDL}}&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388474</id>
		<title>Vibrio cholerae colonization factor TcpF</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388474"/>
		<updated>2012-05-05T16:43:08Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=400| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Rainbow/1 |right|CAPTION=Cholera colonization factor [[3oc5]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Molecule:&#039;&#039;&#039;	 Toxin coregulated pilus biosynthesis protein F&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Type:&#039;&#039;&#039;protein  	&#039;&#039;&#039;Length:&#039;&#039;&#039;	318     &#039;&#039;&#039;Organism:&#039;&#039;&#039;[http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae]&lt;br /&gt;
&lt;br /&gt;
TcpF is a toxin-coregulated pilus that facilitates colonization of vibrio cholerae in the intestine. Vibrio cholerae relies on two main virulence factors: toxin-coregulated pilus (TCP) and [http://proteopedia.org/wiki/index.php/Cholera_toxin#External_Links cholera toxin (CT)] to cause the gastrointestinal disease cholera. TCP, encoded by the tcp operon, is a type IV pilus that mediates bacterial autoagglutination and colonization of the intestine. &lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Structuretcpf.png|left|300px|thumb]]&lt;br /&gt;
[[Image:RNA.png|left|300px|thumb| TcpF-RNA [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
The structure of TcpF is consisted with an &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/N_terminal_domain/1&#039;&amp;gt;N terminal domain (NTD;residues 1 to 185)&amp;lt;/scene&amp;gt; and a &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Ctd/1&#039;&amp;gt;C terminal domain (CTD; residues 190 to 318)&amp;lt;/scene&amp;gt; connected by an extended &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Linker_1/1&#039;&amp;gt; linker segment (residues 186 to 189)&amp;lt;/scene&amp;gt;. In detail, the NTD is composed of a short twisted β-sheet encapsulated by seven short α-helices with a second twisted β-sheet forming the floor of this domain. The NTD is connected with The CTD, which consists of two twisted antiparallel β-sheets. TCP is a filamentous structure belongs. Studies showed that the regions, close to CTD  are important for mediating colonization. The architecture of TcpF, with discrete NTD and CTD joined by a linker, is flexible that allow to accommodate a larger substrate. By looking at the homology of TcpF, the NTD and the CTD together form a unique interface that interacts with partner proteins to function in V. cholerae colonization.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
&lt;br /&gt;
{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=300| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Consurf/1 |right|CAPTION=Consurf image [[3oc5]] }}&lt;br /&gt;
TcpF is the only protein secreted by the TCP apparatus and it represents the first nonpilus protein identified that is specifically secreted outside the bacterial cell by a type IV pilus biogenesis apparatus. Studies shows that TcpF, identified in classical isolates of V. cholerae O1 is an essential factor for colonization in the infant mouse cholera model. Bacteria lacking tcpF are deficient in colonization, and anti-TcpF antibodies are protective in the infant mouse cholera model. TcpF is expressed in vivo during human infection and generates a substantial immune response in patients infected with V. cholera. &lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Msatcpf.png|left|300px|thumb| Multiple sequence Alignment [[1xtc]]]]&lt;br /&gt;
[[Image:Distancematrixtcpf.png|left|300px|thumb| Distance Matrix [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The environmental TcpF proteins are important for secretion because they retained a high degree of identity in the region.  Each of the environmental TcpF proteins examined was secreted from the pathogenic strains. Now, TcpF genes from six pathogenic strains of V. cholerae have been sequenced, and all of these strains have nearly identical TcpF amino acid sequences.However, studies examined that environmental TcpF proteins cannot mediate colonization in the infant mouse cholera model.  By comparing the environmental strain, SCE4 and the pathogenic TcpF, O395 (See Multiple sequence alignment result ), it revealed that the regions, divergent from one another are located at the middle of the C terminal domain. Therefore, lack of colonization mediated by environmental TcpF proteins may suggest that the divergent regions between the pathogenic and environmental proteins are essential for TcpF function.  &lt;br /&gt;
&lt;br /&gt;
==Application==&lt;br /&gt;
V.cholerae has a variety of proteins in the periplasm, but only a small part are known to be transported across the outer membrane into the extracellular space. The secretion systems (TCP system) is able to recognize their cognate substrates for export. The TCP apparatus is required by the secretion of TcpF. TcpF is absolutely necessary for colonization and V.cholerae pathogenesis. However, The mechanism for the action of TcpF remains to be elucidated.&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
[1]. Genetic Mapping of Secretion and Functional Determinants of the Vibrio cholerae TcpF Colonization Factor  Shelly J. Krebs, Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
J. Bacteriol. 2009, 191(11):3665. DOI: 10.1128/JB.01724-08. Published Ahead of Print 20 March 2009.&lt;br /&gt;
&lt;br /&gt;
[2]. TcpF Is a Soluble Colonization Factor and Protective Antigen Secreted by El Tor and Classical O1 and O139 Vibrio cholerae Serogroups  Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
DOI: 10.1128/​IAI.73.8.4461-4470.2005 Infect. Immun. August 2005 vol. 73 no. 8 4461-4470.&lt;br /&gt;
&lt;br /&gt;
[3]. Crystal structure of the Vibrio cholerae colonization factor TcpF and identification of a functional immunogenic site. Megli CJ, Yuen AS, Kolappan S, Richardson MR, Dharmasena MN, Krebs SJ, Taylor RK, Craig L. J Mol Biol. 2011 Jun 3;409(2):146-58. Epub 2011 Apr 1.&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388473</id>
		<title>Vibrio cholerae colonization factor TcpF</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388473"/>
		<updated>2012-05-05T16:36:10Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=400| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Rainbow/1 |right|CAPTION=Cholera colonization factor [[3oc5]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Molecule:&#039;&#039;&#039;	 Toxin coregulated pilus biosynthesis protein F&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Type:&#039;&#039;&#039;protein  	&#039;&#039;&#039;Length:&#039;&#039;&#039;	318     &#039;&#039;&#039;Organism:&#039;&#039;&#039;[http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae]&lt;br /&gt;
&lt;br /&gt;
TcpF is a toxin-coregulated pilus that facilitates colonization of vibrio cholerae in the intestine. Vibrio cholerae relies on two main virulence factors: toxin-coregulated pilus (TCP) and [http://proteopedia.org/wiki/index.php/Cholera_toxin#External_Links cholera toxin (CT)] to cause the gastrointestinal disease cholera. TCP, encoded by the tcp operon, is a type IV pilus that mediates bacterial autoagglutination and colonization of the intestine. &lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Structuretcpf.png|left|300px|thumb]]&lt;br /&gt;
[[Image:RNA.png|left|300px|thumb| TcpF-RNA [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
The structure of TcpF is consisted with an &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/N_terminal_domain/1&#039;&amp;gt;N terminal domain (NTD;residues 1 to 185)&amp;lt;/scene&amp;gt; and a &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Ctd/1&#039;&amp;gt;C terminal domain (CTD; residues 190 to 318)&amp;lt;/scene&amp;gt; connected by an extended &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Linker_1/1&#039;&amp;gt; linker segment (residues 186 to 189)&amp;lt;/scene&amp;gt;. In detail, the NTD is composed of a short twisted β-sheet encapsulated by seven short α-helices with a second twisted β-sheet forming the floor of this domain. The NTD is connected with The CTD, which consists of two twisted antiparallel β-sheets. TCP is a filamentous structure belongs. Studies showed that the regions, close to CTD  are important for mediating colonization. The architecture of TcpF, with discrete NTD and CTD joined by a linker, is flexible that allow to accommodate a larger substrate. By looking at the homology of TcpF, the NTD and the CTD together form a unique interface that interacts with partner proteins to function in V. cholerae colonization.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
&lt;br /&gt;
TcpF is the only protein secreted by the TCP apparatus and it represents the first nonpilus protein identified that is specifically secreted outside the bacterial cell by a type IV pilus biogenesis apparatus. Studies shows that TcpF, identified in classical isolates of V. cholerae O1 is an essential factor for colonization in the infant mouse cholera model. Bacteria lacking tcpF are deficient in colonization, and anti-TcpF antibodies are protective in the infant mouse cholera model. TcpF is expressed in vivo during human infection and generates a substantial immune response in patients infected with V. cholera. &lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=300| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Consurf/1 |right|CAPTION=Consurf image [[3oc5]] }}&lt;br /&gt;
[[Image:Msatcpf.png|left|300px|thumb| Multiple sequence Alignment [[1xtc]]]]&lt;br /&gt;
[[Image:Distancematrixtcpf.png|left|300px|thumb| Distance Matrix [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The environmental TcpF proteins are important for secretion because they retained a high degree of identity in the region.  Each of the environmental TcpF proteins examined was secreted from the pathogenic strains. Now, TcpF genes from six pathogenic strains of V. cholerae have been sequenced, and all of these strains have nearly identical TcpF amino acid sequences.However, studies examined that environmental TcpF proteins cannot mediate colonization in the infant mouse cholera model.  By comparing the environmental strain, SCE4 and the pathogenic TcpF, O395 (See Multiple sequence alignment result ), it revealed that the regions, divergent from one another are located at the middle of the C terminal domain. Therefore, lack of colonization mediated by environmental TcpF proteins may suggest that the divergent regions between the pathogenic and environmental proteins are essential for TcpF function.  &lt;br /&gt;
&lt;br /&gt;
==Application==&lt;br /&gt;
V.cholerae has a variety of proteins in the periplasm, but only a small part are known to be transported across the outer membrane into the extracellular space. The secretion systems (TCP system) is able to recognize their cognate substrates for export. The TCP apparatus is required by the secretion of TcpF. TcpF is absolutely necessary for colonization and V.cholerae pathogenesis. However, The mechanism for the action of TcpF remains to be elucidated.&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
[1]. Genetic Mapping of Secretion and Functional Determinants of the Vibrio cholerae TcpF Colonization Factor  Shelly J. Krebs, Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
J. Bacteriol. 2009, 191(11):3665. DOI: 10.1128/JB.01724-08. Published Ahead of Print 20 March 2009.&lt;br /&gt;
&lt;br /&gt;
[2]. TcpF Is a Soluble Colonization Factor and Protective Antigen Secreted by El Tor and Classical O1 and O139 Vibrio cholerae Serogroups  Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
DOI: 10.1128/​IAI.73.8.4461-4470.2005 Infect. Immun. August 2005 vol. 73 no. 8 4461-4470.&lt;br /&gt;
&lt;br /&gt;
[3]. Crystal structure of the Vibrio cholerae colonization factor TcpF and identification of a functional immunogenic site. Megli CJ, Yuen AS, Kolappan S, Richardson MR, Dharmasena MN, Krebs SJ, Taylor RK, Craig L. J Mol Biol. 2011 Jun 3;409(2):146-58. Epub 2011 Apr 1.&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388472</id>
		<title>Vibrio cholerae colonization factor TcpF</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388472"/>
		<updated>2012-05-05T16:14:50Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=400| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Rainbow/1 |right|CAPTION=Cholera colonization factor [[3oc5]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Molecule:&#039;&#039;&#039;	 Toxin coregulated pilus biosynthesis protein F&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Type:&#039;&#039;&#039;protein  	&#039;&#039;&#039;Length:&#039;&#039;&#039;	318     &#039;&#039;&#039;Organism:&#039;&#039;&#039;[http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae]&lt;br /&gt;
&lt;br /&gt;
TcpF is a toxin-coregulated pilus that facilitates colonization of vibrio cholerae in the intestine. Vibrio cholerae relies on two main virulence factors: toxin-coregulated pilus (TCP) and [http://proteopedia.org/wiki/index.php/Cholera_toxin#External_Links cholera toxin (CT)] to cause the gastrointestinal disease cholera. TCP, encoded by the tcp operon, is a type IV pilus that mediates bacterial autoagglutination and colonization of the intestine. &lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Structuretcpf.png|left|300px|thumb]]&lt;br /&gt;
[[Image:RNA.png|left|300px|thumb| TcpF-RNA [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
The structure of TcpF is consisted with an &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/N_terminal_domain/1&#039;&amp;gt;N terminal domain (NTD;residues 1 to 185)&amp;lt;/scene&amp;gt; and a &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Ctd/1&#039;&amp;gt;C terminal domain (CTD; residues 190 to 318)&amp;lt;/scene&amp;gt; connected by an extended &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Linker/1&#039;&amp;gt; linker segment (residues 186 to 189)&amp;lt;/scene&amp;gt;. In detail, the NTD is composed of a short twisted β-sheet encapsulated by seven short α-helices with a second twisted β-sheet forming the floor of this domain. The NTD is connected with The CTD, which consists of two twisted antiparallel β-sheets. TCP is a filamentous structure belongs. Studies showed that the regions, close to CTD  are important for mediating colonization. The architecture of TcpF, with discrete NTD and CTD joined by a linker, is flexible that allow to accommodate a larger substrate. By looking at the homology of TcpF, the NTD and the CTD together form a unique interface that interacts with partner proteins to function in V. cholerae colonization.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
&lt;br /&gt;
TcpF is the only protein secreted by the TCP apparatus and it represents the first nonpilus protein identified that is specifically secreted outside the bacterial cell by a type IV pilus biogenesis apparatus. Studies shows that TcpF, identified in classical isolates of V. cholerae O1 is an essential factor for colonization in the infant mouse cholera model. Bacteria lacking tcpF are deficient in colonization, and anti-TcpF antibodies are protective in the infant mouse cholera model. TcpF is expressed in vivo during human infection and generates a substantial immune response in patients infected with V. cholera. &lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=300| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Consurf/1 |right|CAPTION=Consurf image [[3oc5]] }}&lt;br /&gt;
[[Image:Msatcpf.png|left|300px|thumb| Multiple sequence Alignment [[1xtc]]]]&lt;br /&gt;
[[Image:Distancematrixtcpf.png|left|300px|thumb| Distance Matrix [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The environmental TcpF proteins are important for secretion because they retained a high degree of identity in the region.  Each of the environmental TcpF proteins examined was secreted from the pathogenic strains. Now, TcpF genes from six pathogenic strains of V. cholerae have been sequenced, and all of these strains have nearly identical TcpF amino acid sequences.However, studies examined that environmental TcpF proteins cannot mediate colonization in the infant mouse cholera model.  By comparing the environmental strain, SCE4 and the pathogenic TcpF, O395 (See Multiple sequence alignment result ), it revealed that the regions, divergent from one another are located at the middle of the C terminal domain. Therefore, lack of colonization mediated by environmental TcpF proteins may suggest that the divergent regions between the pathogenic and environmental proteins are essential for TcpF function.  &lt;br /&gt;
&lt;br /&gt;
==Application==&lt;br /&gt;
V.cholerae has a variety of proteins in the periplasm, but only a small part are known to be transported across the outer membrane into the extracellular space. The secretion systems (TCP system) is able to recognize their cognate substrates for export. The TCP apparatus is required by the secretion of TcpF. TcpF is absolutely necessary for colonization and V.cholerae pathogenesis. However, The mechanism for the action of TcpF remains to be elucidated.&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
[1]. Genetic Mapping of Secretion and Functional Determinants of the Vibrio cholerae TcpF Colonization Factor  Shelly J. Krebs, Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
J. Bacteriol. 2009, 191(11):3665. DOI: 10.1128/JB.01724-08. Published Ahead of Print 20 March 2009.&lt;br /&gt;
&lt;br /&gt;
[2]. TcpF Is a Soluble Colonization Factor and Protective Antigen Secreted by El Tor and Classical O1 and O139 Vibrio cholerae Serogroups  Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
DOI: 10.1128/​IAI.73.8.4461-4470.2005 Infect. Immun. August 2005 vol. 73 no. 8 4461-4470.&lt;br /&gt;
&lt;br /&gt;
[3]. Crystal structure of the Vibrio cholerae colonization factor TcpF and identification of a functional immunogenic site. Megli CJ, Yuen AS, Kolappan S, Richardson MR, Dharmasena MN, Krebs SJ, Taylor RK, Craig L. J Mol Biol. 2011 Jun 3;409(2):146-58. Epub 2011 Apr 1.&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388471</id>
		<title>Vibrio cholerae colonization factor TcpF</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388471"/>
		<updated>2012-05-05T15:50:22Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=400| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Rainbow/1 |right|CAPTION=Cholera colonization factor [[3oc5]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Molecule:&#039;&#039;&#039;	 Toxin coregulated pilus biosynthesis protein F&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Type:&#039;&#039;&#039;protein  	&#039;&#039;&#039;Length:&#039;&#039;&#039;	318     &#039;&#039;&#039;Organism:&#039;&#039;&#039;[http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae]&lt;br /&gt;
&lt;br /&gt;
TcpF is a toxin-coregulated pilus that facilitates colonization of vibrio cholerae in the intestine. Vibrio cholerae relies on two main virulence factors: toxin-coregulated pilus (TCP) and [http://proteopedia.org/wiki/index.php/Cholera_toxin#External_Links cholera toxin (CT)] to cause the gastrointestinal disease cholera. TCP, encoded by the tcp operon, is a type IV pilus that mediates bacterial autoagglutination and colonization of the intestine. &lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Structuretcpf.png|left|300px|thumb]]&lt;br /&gt;
[[Image:RNA.png|left|300px|thumb| TcpF-RNA [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
The structure of TcpF is consisted with an &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/N_terminal_domain/1&#039;&amp;gt;N terminal domain (NTD;residues 1 to 185)&amp;lt;/scene&amp;gt; and a &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Ctd/1&#039;&amp;gt;C terminal domain (CTD; residues 190 to 318)&amp;lt;/scene&amp;gt; connected by an extended &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Linker/1&#039;&amp;gt; linker segment (residues 186 to 189)&amp;lt;/scene&amp;gt;. In detail, the NTD is composed of a short twisted β-sheet encapsulated by seven short α-helices with a second twisted β-sheet forming the floor of this domain. The NTD is connected with The CTD, which consists of two twisted antiparallel β-sheets. TCP is a filamentous structure belongs. Studies showed that the regions, close to CTD  are important for mediating colonization. The architecture of TcpF, with discrete NTD and CTD joined by a linker, is flexible that allow to accommodate a larger substrate. By looking at the homology of TcpF, the NTD and the CTD together form a unique interface that interacts with partner proteins to function in V. cholerae colonization.&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
&lt;br /&gt;
TcpF is the only protein secreted by the TCP apparatus and it represents the first nonpilus protein identified that is specifically secreted outside the bacterial cell by a type IV pilus biogenesis apparatus. Studies shows that TcpF, identified in classical isolates of V. cholerae O1 is an essential factor for colonization in the infant mouse cholera model. Bacteria lacking tcpF are deficient in colonization, and anti-TcpF antibodies are protective in the infant mouse cholera model. TcpF is expressed in vivo during human infection and generates a substantial immune response in patients infected with V. cholera. &lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=300| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Consurf/1 |right|CAPTION=Consurf image [[3oc5]] }}&lt;br /&gt;
[[Image:Msatcpf.png|left|300px|thumb| Multiple sequence Alignment [[1xtc]]]]&lt;br /&gt;
[[Image:Distancematrixtcpf.png|left|300px|thumb| Distance Matrix [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
The environmental TcpF proteins are important for secretion because they retained a high degree of identity in the region.  Each of the environmental TcpF proteins examined was secreted from the pathogenic strains. Now, TcpF genes from six pathogenic strains of V. cholerae have been sequenced, and all of these strains have nearly identical TcpF amino acid sequences.However, studies examined that environmental TcpF proteins cannot mediate colonization in the infant mouse cholera model.  By comparing the environmental strain, SCE4 and the pathogenic TcpF, O395 (See Multiple sequence alignment result ), it revealed that the regions, divergent from one another are located at the middle of the C terminal domain. Therefore, lack of colonization mediated by environmental TcpF proteins may suggest that the divergent regions between the pathogenic and environmental proteins are essential for TcpF function.  &lt;br /&gt;
&lt;br /&gt;
==Application==&lt;br /&gt;
V.cholerae has a variety of proteins in the periplasm, but only a small part are known to be transported across the outer membrane into the extracellular space. The secretion systems (TCP system) is able to recognize their cognate substrates for export. The TCP apparatus is required by the secretion of TcpF. TcpF is absolutely necessary for colonization and V.cholerae pathogenesis. However, The mechanism for the action of TcpF remains to be elucidated.&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
[1]. Genetic Mapping of Secretion and Functional Determinants of the Vibrio cholerae TcpF Colonization Factor  Shelly J. Krebs, Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
J. Bacteriol. 2009, 191(11):3665. DOI: 10.1128/JB.01724-08. Published Ahead of Print 20 March 2009.&lt;br /&gt;
&lt;br /&gt;
[2]. TcpF Is a Soluble Colonization Factor and Protective Antigen Secreted by El Tor and Classical O1 and O139 Vibrio cholerae Serogroups  Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
DOI: 10.1128/​IAI.73.8.4461-4470.2005 Infect. Immun. August 2005 vol. 73 no. 8 4461-4470.&lt;br /&gt;
&lt;br /&gt;
[3]. Crystal structure of the Vibrio cholerae colonization factor TcpF and identification of a functional immunogenic site. Megli CJ, Yuen AS, Kolappan S, Richardson MR, Dharmasena MN, Krebs SJ, Taylor RK, Craig L. J Mol Biol. 2011 Jun 3;409(2):146-58. Epub 2011 Apr 1.&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388470</id>
		<title>Vibrio cholerae colonization factor TcpF</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388470"/>
		<updated>2012-05-05T15:48:18Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=400| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Rainbow/1 |right|CAPTION=Cholera colonization factor [[3oc5]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Molecule:&#039;&#039;&#039;	 Toxin coregulated pilus biosynthesis protein F&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Type:&#039;&#039;&#039;protein  	&#039;&#039;&#039;Length:&#039;&#039;&#039;	318     &#039;&#039;&#039;Organism:&#039;&#039;&#039;[http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae]&lt;br /&gt;
&lt;br /&gt;
TcpF is a toxin-coregulated pilus that facilitates colonization of vibrio cholerae in the intestine. Vibrio cholerae relies on two main virulence factors: toxin-coregulated pilus (TCP) and [http://proteopedia.org/wiki/index.php/Cholera_toxin#External_Links cholera toxin (CT)] to cause the gastrointestinal disease cholera. TCP, encoded by the tcp operon, is a type IV pilus that mediates bacterial autoagglutination and colonization of the intestine. &lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Structuretcpf.png|left|300px|thumb]]&lt;br /&gt;
[[Image:RNA.png|left|300px|thumb| TcpF-RNA [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
The structure of TcpF is consisted with an &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/N_terminal_domain/1&#039;&amp;gt;N terminal domain (NTD;residues 1 to 185)&amp;lt;/scene&amp;gt; and a &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Ctd/1&#039;&amp;gt;C terminal domain (CTD; residues 190 to 318)&amp;lt;/scene&amp;gt; connected by an extended &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Linker/1&#039;&amp;gt; linker segment (residues 186 to 189)&amp;lt;/scene&amp;gt;. In detail, the NTD is composed of a short twisted β-sheet encapsulated by seven short α-helices with a second twisted β-sheet forming the floor of this domain. The NTD is connected with The CTD, which consists of two twisted antiparallel β-sheets. TCP is a filamentous structure belongs. Studies showed that the regions, close to CTD  are important for mediating colonization. The architecture of TcpF, with discrete NTD and CTD joined by a linker, is flexible that allow to accommodate a larger substrate. By looking at the homology of TcpF, the NTD and the CTD together form a unique interface that interacts with partner proteins to function in V. cholerae colonization.&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
&lt;br /&gt;
TcpF is the only protein secreted by the TCP apparatus and it represents the first nonpilus protein identified that is specifically secreted outside the bacterial cell by a type IV pilus biogenesis apparatus. Studies shows that TcpF, identified in classical isolates of V. cholerae O1 is an essential factor for colonization in the infant mouse cholera model. Bacteria lacking tcpF are deficient in colonization, and anti-TcpF antibodies are protective in the infant mouse cholera model. TcpF is expressed in vivo during human infection and generates a substantial immune response in patients infected with V. cholera. &lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Msatcpf.png|left|300px|thumb| Multiple sequence Alignment [[1xtc]]]]&lt;br /&gt;
[[Image:Distancematrixtcpf.png|left|300px|thumb| Distance Matrix [[1xtc]]]]&lt;br /&gt;
{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=300| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Consurf/1 |right|CAPTION=Consurf image [[3oc5]] }}&lt;br /&gt;
&lt;br /&gt;
The environmental TcpF proteins are important for secretion because they retained a high degree of identity in the region.  Each of the environmental TcpF proteins examined was secreted from the pathogenic strains. Now, TcpF genes from six pathogenic strains of V. cholerae have been sequenced, and all of these strains have nearly identical TcpF amino acid sequences.However, studies examined that environmental TcpF proteins cannot mediate colonization in the infant mouse cholera model.  By comparing the environmental strain, SCE4 and the pathogenic TcpF, O395 (See Multiple sequence alignment result ), it revealed that the regions, divergent from one another are located at the middle of the C terminal domain. Therefore, lack of colonization mediated by environmental TcpF proteins may suggest that the divergent regions between the pathogenic and environmental proteins are essential for TcpF function.  &lt;br /&gt;
&lt;br /&gt;
==Application==&lt;br /&gt;
V.cholerae has a variety of proteins in the periplasm, but only a small part are known to be transported across the outer membrane into the extracellular space. The secretion systems (TCP system) is able to recognize their cognate substrates for export. The TCP apparatus is required by the secretion of TcpF. TcpF is absolutely necessary for colonization and V.cholerae pathogenesis. However, The mechanism for the action of TcpF remains to be elucidated.&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
[1]. Genetic Mapping of Secretion and Functional Determinants of the Vibrio cholerae TcpF Colonization Factor  Shelly J. Krebs, Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
J. Bacteriol. 2009, 191(11):3665. DOI: 10.1128/JB.01724-08. Published Ahead of Print 20 March 2009.&lt;br /&gt;
&lt;br /&gt;
[2]. TcpF Is a Soluble Colonization Factor and Protective Antigen Secreted by El Tor and Classical O1 and O139 Vibrio cholerae Serogroups  Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
DOI: 10.1128/​IAI.73.8.4461-4470.2005 Infect. Immun. August 2005 vol. 73 no. 8 4461-4470.&lt;br /&gt;
&lt;br /&gt;
[3]. Crystal structure of the Vibrio cholerae colonization factor TcpF and identification of a functional immunogenic site. Megli CJ, Yuen AS, Kolappan S, Richardson MR, Dharmasena MN, Krebs SJ, Taylor RK, Craig L. J Mol Biol. 2011 Jun 3;409(2):146-58. Epub 2011 Apr 1.&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388461</id>
		<title>Vibrio cholerae colonization factor TcpF</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388461"/>
		<updated>2012-05-05T15:13:11Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=400| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Rainbow/1 |right|CAPTION=Cholera colonization factor [[3oc5]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Molecule:&#039;&#039;&#039;	 Toxin coregulated pilus biosynthesis protein F&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Type:&#039;&#039;&#039;protein  	&#039;&#039;&#039;Length:&#039;&#039;&#039;	318     &#039;&#039;&#039;Organism:&#039;&#039;&#039;[http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae]&lt;br /&gt;
&lt;br /&gt;
TcpF is a toxin-coregulated pilus that facilitates colonization of vibrio cholerae in the intestine. Vibrio cholerae relies on two main virulence factors: toxin-coregulated pilus (TCP) and [http://proteopedia.org/wiki/index.php/Cholera_toxin#External_Links cholera toxin (CT)] to cause the gastrointestinal disease cholera. TCP, encoded by the tcp operon, is a type IV pilus that mediates bacterial autoagglutination and colonization of the intestine. &lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Structuretcpf.png|left|300px|thumb]]&lt;br /&gt;
[[Image:RNA.png|left|300px|thumb| TcpF-RNA [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
The structure of TcpF is consisted with an &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/N_terminal_domain/1&#039;&amp;gt;N terminal domain (NTD;residues 1 to 185)&amp;lt;/scene&amp;gt; and a &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Ctd/1&#039;&amp;gt;C terminal domain (CTD; residues 190 to 318)&amp;lt;/scene&amp;gt; connected by an extended &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Linker/1&#039;&amp;gt; linker segment (residues 186 to 189)&amp;lt;/scene&amp;gt;. In detail, the NTD is composed of a short twisted β-sheet encapsulated by seven short α-helices with a second twisted β-sheet forming the floor of this domain. The NTD is connected with The CTD, which consists of two twisted antiparallel β-sheets. TCP is a filamentous structure belongs. Studies showed that the regions, close to CTD  are important for mediating colonization. The architecture of TcpF, with discrete NTD and CTD joined by a linker, is flexible that allow to accommodate a larger substrate. By looking at the homology of TcpF, the NTD and the CTD together form a unique interface that interacts with partner proteins to function in V. cholerae colonization.&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
&lt;br /&gt;
TcpF is the only protein secreted by the TCP apparatus and it represents the first nonpilus protein identified that is specifically secreted outside the bacterial cell by a type IV pilus biogenesis apparatus. Studies shows that TcpF, identified in classical isolates of V. cholerae O1 is an essential factor for colonization in the infant mouse cholera model. Bacteria lacking tcpF are deficient in colonization, and anti-TcpF antibodies are protective in the infant mouse cholera model. TcpF is expressed in vivo during human infection and generates a substantial immune response in patients infected with V. cholera. &lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Msatcpf.png|left|300px|thumb| Multiply sequence Alignment [[1xtc]]]]&lt;br /&gt;
[[Image:Distancematrixtcpf.png|left|300px|thumb| Distance Matrix [[1xtc]]]]&lt;br /&gt;
{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=300| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Consurf/1 |right|CAPTION=Consurf image [[3oc5]] }}&lt;br /&gt;
&lt;br /&gt;
The environmental TcpF proteins are important for secretion because they retained a high degree of identity in the region.  Each of the environmental TcpF proteins examined was secreted from the pathogenic strains. Now, TcpF genes from six pathogenic strains of V. cholerae have been sequenced, and all of these strains have nearly identical TcpF amino acid sequences.However, studies examined that environmental TcpF proteins cannot mediate colonization in the infant mouse cholera model.  By comparing the environmental strain, SCE4 and the pathogenic TcpF, O395 (See Multiply sequence alignment result ), it revealed that the regions, divergent from one another are located at the middle of the C terminal domain. Therefore, lack of colonization mediated by environmental TcpF proteins may suggest that the divergent regions between the pathogenic and environmental proteins are essential for TcpF function.  &lt;br /&gt;
&lt;br /&gt;
==Application==&lt;br /&gt;
V.cholerae has a variety of proteins in the periplasm, but only a small part are known to be transported across the outer membrane into the extracellular space. The secretion systems (TCP system) is able to recognize their cognate substrates for export. The TCP apparatus is required by the secretion of TcpF. TcpF is absolutely necessary for colonization and V.cholerae pathogenesis. However, The mechanism for the action of TcpF remains to be elucidated.&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
[1]. Genetic Mapping of Secretion and Functional Determinants of the Vibrio cholerae TcpF Colonization Factor  Shelly J. Krebs, Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
J. Bacteriol. 2009, 191(11):3665. DOI: 10.1128/JB.01724-08. Published Ahead of Print 20 March 2009.&lt;br /&gt;
&lt;br /&gt;
[2]. TcpF Is a Soluble Colonization Factor and Protective Antigen Secreted by El Tor and Classical O1 and O139 Vibrio cholerae Serogroups  Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
DOI: 10.1128/​IAI.73.8.4461-4470.2005 Infect. Immun. August 2005 vol. 73 no. 8 4461-4470.&lt;br /&gt;
&lt;br /&gt;
[3]. Crystal structure of the Vibrio cholerae colonization factor TcpF and identification of a functional immunogenic site. Megli CJ, Yuen AS, Kolappan S, Richardson MR, Dharmasena MN, Krebs SJ, Taylor RK, Craig L. J Mol Biol. 2011 Jun 3;409(2):146-58. Epub 2011 Apr 1.&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388460</id>
		<title>Vibrio cholerae colonization factor TcpF</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_colonization_factor_TcpF&amp;diff=1388460"/>
		<updated>2012-05-05T15:12:22Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=400| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Rainbow/1 |right|CAPTION=Cholera colonization factor [[3oc5]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Molecule:&#039;&#039;&#039;	 Toxin coregulated pilus biosynthesis protein F&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;Type:&#039;&#039;&#039;protein  	&#039;&#039;&#039;Length:&#039;&#039;&#039;	318     &#039;&#039;&#039;Organism:&#039;&#039;&#039;[http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae]&lt;br /&gt;
&lt;br /&gt;
TcpF is a toxin-coregulated pilus that facilitates colonization of vibrio cholerae in the intestine. Vibrio cholerae relies on two main virulence factors: toxin-coregulated pilus (TCP) and [http://proteopedia.org/wiki/index.php/Cholera_toxin#External_Links cholera toxin (CT)] to cause the gastrointestinal disease cholera. TCP, encoded by the tcp operon, is a type IV pilus that mediates bacterial autoagglutination and colonization of the intestine. &lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Structuretcpf.png|left|300px|thumb]]&lt;br /&gt;
[[Image:RNA.png|left|300px|thumb| TcpF-RNA [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
The structure of TcpF is consisted with an &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/N_terminal_domain/1&#039;&amp;gt;N terminal domain (NTD;residues 1 to 185)&amp;lt;/scene&amp;gt; and a &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Ctd/1&#039;&amp;gt;C terminal domain (CTD; residues 190 to 318)&amp;lt;/scene&amp;gt; connected by an extended &amp;lt;scene name=&#039;Vibrio_cholerae_colonization_factor_TcpF/Linker/1&#039;&amp;gt; linker segment (residues 186 to 189)&amp;lt;/scene&amp;gt;. In detail, the NTD is composed of a short twisted β-sheet encapsulated by seven short α-helices with a second twisted β-sheet forming the floor of this domain. The NTD is connected with The CTD, which consists of two twisted antiparallel β-sheets. TCP is a filamentous structure belongs. Studies showed that the regions, close to CTD  are important for mediating colonization. The architecture of TcpF, with discrete NTD and CTD joined by a linker, is flexible that allow to accommodate a larger substrate. By looking at the homology of TcpF, the NTD and the CTD together form a unique interface that interacts with partner proteins to function in V. cholerae colonization.&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
&lt;br /&gt;
TcpF is the only protein secreted by the TCP apparatus and it represents the first nonpilus protein identified that is specifically secreted outside the bacterial cell by a type IV pilus biogenesis apparatus. Studies shows that TcpF, identified in classical isolates of V. cholerae O1 is an essential factor for colonization in the infant mouse cholera model. Bacteria lacking tcpF are deficient in colonization, and anti-TcpF antibodies are protective in the infant mouse cholera model. TcpF is expressed in vivo during human infection and generates a substantial immune response in patients infected with V. cholera. &lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
&lt;br /&gt;
[[Image:Msatcpf.png|left|300px|thumb| Multiply sequence Alignment [[1xtc]]]]&lt;br /&gt;
[[Image:Distancematrixtcpf.png|left|300px|thumb| Distance Matrix [[1xtc]]]]&lt;br /&gt;
{{STRUCTURE_3oc5|  PDB=3oc5  | SIZE=400| SCENE=Vibrio_cholerae_colonization_factor_TcpF/Consurf/1 |right|CAPTION=Consurf image [[3oc5]] }}&lt;br /&gt;
&lt;br /&gt;
The environmental TcpF proteins are important for secretion because they retained a high degree of identity in the region.  Each of the environmental TcpF proteins examined was secreted from the pathogenic strains. Now, TcpF genes from six pathogenic strains of V. cholerae have been sequenced, and all of these strains have nearly identical TcpF amino acid sequences.However, studies examined that environmental TcpF proteins cannot mediate colonization in the infant mouse cholera model.  By comparing the environmental strain, SCE4 and the pathogenic TcpF, O395 (See Multiply sequence alignment result ), it revealed that the regions, divergent from one another are located at the middle of the C terminal domain. Therefore, lack of colonization mediated by environmental TcpF proteins may suggest that the divergent regions between the pathogenic and environmental proteins are essential for TcpF function.  &lt;br /&gt;
&lt;br /&gt;
==Application==&lt;br /&gt;
V.cholerae has a variety of proteins in the periplasm, but only a small part are known to be transported across the outer membrane into the extracellular space. The secretion systems (TCP system) is able to recognize their cognate substrates for export. The TCP apparatus is required by the secretion of TcpF. TcpF is absolutely necessary for colonization and V.cholerae pathogenesis. However, The mechanism for the action of TcpF remains to be elucidated.&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
[1]. Genetic Mapping of Secretion and Functional Determinants of the Vibrio cholerae TcpF Colonization Factor  Shelly J. Krebs, Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
J. Bacteriol. 2009, 191(11):3665. DOI: 10.1128/JB.01724-08. Published Ahead of Print 20 March 2009.&lt;br /&gt;
&lt;br /&gt;
[2]. TcpF Is a Soluble Colonization Factor and Protective Antigen Secreted by El Tor and Classical O1 and O139 Vibrio cholerae Serogroups  Thomas J. Kirn and Ronald K. Taylor&lt;br /&gt;
DOI: 10.1128/​IAI.73.8.4461-4470.2005 Infect. Immun. August 2005 vol. 73 no. 8 4461-4470.&lt;br /&gt;
&lt;br /&gt;
[3]. Crystal structure of the Vibrio cholerae colonization factor TcpF and identification of a functional immunogenic site. Megli CJ, Yuen AS, Kolappan S, Richardson MR, Dharmasena MN, Krebs SJ, Taylor RK, Craig L. J Mol Biol. 2011 Jun 3;409(2):146-58. Epub 2011 Apr 1.&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_repressor_protein_LuxO&amp;diff=1388459</id>
		<title>Vibrio cholerae repressor protein LuxO</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_repressor_protein_LuxO&amp;diff=1388459"/>
		<updated>2012-05-05T15:04:20Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3cfy|  PDB=3cfy  | SIZE=300| SCENE=Vibrio_cholerae_repressor_protein_LuxO/Rainbow/1 |right|CAPTION=Regulatory protein LuxO [[3cfy]] }}&lt;br /&gt;
&lt;br /&gt;
{{TOC limit|limit=2}}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
LuxO regulates the quorum sensing. Quorum sensing is the adjustment of behavior in response to population size. As a regulator in quorum sensing pathways, LuxO can function as a “switch” and it is known to influence biofilm formation, toxin production, phosphorylation and bioluminescence.  &amp;lt;ref name=&amp;quot;ZhuJ&amp;quot;&amp;gt;PMID: 11854465&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== LuxO Protein Structure ==&lt;br /&gt;
[[Image:LuxO_Annotation.png|left|280px|thumb|Assumed Biological Structure of the signal receiver domain of the repressor protein LuxO [[3cfy]]]] &lt;br /&gt;
&lt;br /&gt;
The crystal structure of the whole amino acid sequence of the LuxO repressor protein is not yet available on the PDB website. The signal receiving domain of the LuxO protein in Vibrio parahaemolyticus has been successfully crystallized. However, since the paper is yet to be published, the details of the structure is not available at this time. The signal receiver domain is from residual 2 to 128. From the 3D structure, we find that this signal receiver domain consists of five &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Helixes/1&#039;&amp;gt;five α helixes&amp;lt;/scene&amp;gt; and five &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Beta_sheet/1&#039;&amp;gt;five β sheets&amp;lt;/scene&amp;gt;. The phosphorylation  of the aspartate at &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Aspartate47/1&#039;&amp;gt;residual 47&amp;lt;/scene&amp;gt; is considered to be the critical factor in the activation of LuxO regulatory protein. &amp;lt;ref name=&amp;quot;LuxO Structure&amp;quot;&amp;gt;PMID: 21292858&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== LuxO RNA Structure ==&lt;br /&gt;
[[Image:LuxO_RNA.png|right|300px|thumb|mRNA structure of LuxO [[3cfy]]]]&lt;br /&gt;
RNA folding algorithm uses a method to minimize the free energy of the structure so that the RNA molecule is in the most stable form.  &amp;lt;ref&amp;gt;PMID:22418849&amp;lt;/ref&amp;gt;The red regions have higher free energy and are less stable while the blue regions posses lower energy hence more stable. Regions without base pairing are more mutable and less likely to be conserved, so evolutionarily they are more likely to contain differences.&lt;br /&gt;
The total free energy of this LuxO RNA folding model is -476KJ/mol.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
LuxO and HapR are tow regulators as the two proteins regulate quorum sensing, related luminous marine bacterium &#039;&#039;Vibrio harveyi&#039;&#039;. LuxO and HapR control a number of other cellular processes, such as motility, protease production, and biofilm formation. Studies showed that LuxO mutant is very defective in colonization of the small intestine under an infant mouse model. By investigating the mechanism that LuxO regulated V. choleae pathogenicity, studies found that the luxO mutant does not generate any detectable TcpA or CT. Hence, the luxO mutant cannot to colonize mice.  However, the LuxO effect on  the virulence regulation is mediated through TcpP which express its mechanism of repression.  In the evidence, luxO regulated the expression of HapR negatively. &amp;lt;ref name=&amp;quot;ZhuJ&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
In the bacterium Vibrio harveyi, there are two quorum-sensing systems that control the bioluminescence(lux) expression. An autoinducer (AI-1 or AI-2) and a cognate sensor (LuxN or LuxQ)are contained in each system. Sensory information of the quorum-sensing systems is transmitted by a phospho-transfer mechanism to LuxO, a shared integrator protein. In term of controlling luminescence, LuxO acts negatively, which is also a member of the signal transduction proteins. LuxN and LuxQ have activities on LuxO,which is suggested by the lux phenotypes of Vibrio harveyi strains that have single and double LuxN and LuxQ mutations.  &amp;lt;ref&amp;gt;PMID: 10027982&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
 {{STRUCTURE_3cfy|  PDB=3cfy  | SIZE=300| SCENE=Vibrio_cholerae_repressor_protein_LuxO/Consurf/1|right|CAPTION=Regulatory protein LuxO [[3cfy]]}}&lt;br /&gt;
[[Image:LuxO_Tshade1.png|left|300px|thumb|MSA [[3cfy]]]]&lt;br /&gt;
[[Image:LuxO_Tree.png|left|300px|thumb|Phylogenetic Tree LuxO [[3cfy]]]]&lt;br /&gt;
&lt;br /&gt;
The first 180 amino acids are shown in the Multiple Sequence Alignment (MSA). The MSA shows that the LuxO protein among different species of Vibrio is highly conserved except the regions highlighted by the red arrows. This is visualized by the consurf 3D model of the signal receiver domain. The dark red regions are highly conserved while the dark blue regions are highly variable. As shown in the model, the majority of the signal receiver domain of the LuxO protein are highly conserved. This is consistent with the MSA data. Study has shown that the first 104 amino acids of the LuxO is the hotspot for mutations. &amp;lt;ref name=&amp;quot;LuxO Structure&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
 &amp;lt;references /&amp;gt;&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_repressor_protein_LuxO&amp;diff=1388458</id>
		<title>Vibrio cholerae repressor protein LuxO</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_repressor_protein_LuxO&amp;diff=1388458"/>
		<updated>2012-05-05T15:02:15Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3cfy|  PDB=3cfy  | SIZE=300| SCENE=Vibrio_cholerae_repressor_protein_LuxO/Rainbow/1 |right|CAPTION=Regulatory protein LuxO [[3cfy]] }}&lt;br /&gt;
&lt;br /&gt;
{{TOC limit|limit=2}}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
LuxO regulates the quorum sensing. Quorum sensing is the adjustment of behavior in response to population size. As a regulator in quorum sensing pathways, LuxO can function as a “switch” and it is known to influence biofilm formation, toxin production, phosphorylation and bioluminescence.  &amp;lt;ref name=&amp;quot;ZhuJ&amp;quot;&amp;gt;PMID: 11854465&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== LuxO Protein Structure ==&lt;br /&gt;
[[Image:LuxO_Annotation.png|left|280px|thumb|Assumed Biological Structure of the signal receiver domain of the repressor protein LuxO [[3cfy]]]] &lt;br /&gt;
&lt;br /&gt;
The crystal structure of the whole amino acid sequence of the LuxO repressor protein is not yet available on the PDB website. The signal receiving domain of the LuxO protein in Vibrio parahaemolyticus has been successfully crystallized. However, since the paper is yet to be published, the details of the structure is not available at this time. The signal receiver domain is from residual 2 to 128. From the 3D structure, we find that this signal receiver domain consists of five &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Helixes/1&#039;&amp;gt;five α helixes&amp;lt;/scene&amp;gt; and five &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Beta_sheet/1&#039;&amp;gt;five β sheets&amp;lt;/scene&amp;gt;. The phosphorylation  of the aspartate at residual 47 is considered to be the critical factor in the activation of LuxO regulatory protein. &amp;lt;ref name=&amp;quot;LuxO Structure&amp;quot;&amp;gt;PMID: 21292858&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== LuxO RNA Structure ==&lt;br /&gt;
[[Image:LuxO_RNA.png|right|300px|thumb|mRNA structure of LuxO [[3cfy]]]]&lt;br /&gt;
RNA folding algorithm uses a method to minimize the free energy of the structure so that the RNA molecule is in the most stable form.  &amp;lt;ref&amp;gt;PMID:22418849&amp;lt;/ref&amp;gt;The red regions have higher free energy and are less stable while the blue regions posses lower energy hence more stable. Regions without base pairing are more mutable and less likely to be conserved, so evolutionarily they are more likely to contain differences.&lt;br /&gt;
The total free energy of this LuxO RNA folding model is -476KJ/mol.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
LuxO and HapR are tow regulators as the two proteins regulate quorum sensing, related luminous marine bacterium &#039;&#039;Vibrio harveyi&#039;&#039;. LuxO and HapR control a number of other cellular processes, such as motility, protease production, and biofilm formation. Studies showed that LuxO mutant is very defective in colonization of the small intestine under an infant mouse model. By investigating the mechanism that LuxO regulated V. choleae pathogenicity, studies found that the luxO mutant does not generate any detectable TcpA or CT. Hence, the luxO mutant cannot to colonize mice.  However, the LuxO effect on  the virulence regulation is mediated through TcpP which express its mechanism of repression.  In the evidence, luxO regulated the expression of HapR negatively. &amp;lt;ref name=&amp;quot;ZhuJ&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
In the bacterium Vibrio harveyi, there are two quorum-sensing systems that control the bioluminescence(lux) expression. An autoinducer (AI-1 or AI-2) and a cognate sensor (LuxN or LuxQ)are contained in each system. Sensory information of the quorum-sensing systems is transmitted by a phospho-transfer mechanism to LuxO, a shared integrator protein. In term of controlling luminescence, LuxO acts negatively, which is also a member of the signal transduction proteins. LuxN and LuxQ have activities on LuxO,which is suggested by the lux phenotypes of Vibrio harveyi strains that have single and double LuxN and LuxQ mutations.  &amp;lt;ref&amp;gt;PMID: 10027982&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
 {{STRUCTURE_3cfy|  PDB=3cfy  | SIZE=300| SCENE=Vibrio_cholerae_repressor_protein_LuxO/Consurf/1|right|CAPTION=Regulatory protein LuxO [[3cfy]]}}&lt;br /&gt;
[[Image:LuxO_Tshade1.png|left|300px|thumb|MSA [[3cfy]]]]&lt;br /&gt;
[[Image:LuxO_Tree.png|left|300px|thumb|Phylogenetic Tree LuxO [[3cfy]]]]&lt;br /&gt;
&lt;br /&gt;
The first 180 amino acids are shown in the Multiple Sequence Alignment (MSA). The MSA shows that the LuxO protein among different species of Vibrio is highly conserved except the regions highlighted by the red arrows. This is visualized by the consurf 3D model of the signal receiver domain. The dark red regions are highly conserved while the dark blue regions are highly variable. As shown in the model, the majority of the signal receiver domain of the LuxO protein are highly conserved. This is consistent with the MSA data. Study has shown that the first 104 amino acids of the LuxO is the hotspot for mutations. &amp;lt;ref name=&amp;quot;LuxO Structure&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
 &amp;lt;references /&amp;gt;&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=File:LuxO_Annotation.png&amp;diff=1388457</id>
		<title>File:LuxO Annotation.png</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=File:LuxO_Annotation.png&amp;diff=1388457"/>
		<updated>2012-05-05T15:01:35Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;== Licensing ==&lt;br /&gt;
{{subst:Non-commercial from license selector}}&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Cholera_toxin&amp;diff=1388456</id>
		<title>Cholera toxin</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Cholera_toxin&amp;diff=1388456"/>
		<updated>2012-05-05T15:00:20Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: /* Reference */&lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_1xtc|  PDB=1xtc  | SIZE=420| SCENE=Cholera_toxin/Cv/1 |right|CAPTION=Cholera toxin [[1xtc]] }}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
[[Cholera toxin]] (CTX), secreted by bacterium [http://en.wikipedia.org/wiki/Vibrio_cholerae Vibrio Cholerae],is an oligomeric complex of an enzymatic subunit (chain A) and 5 copies of chain B which bind to the cell surface. CTX is the main cause of the diarrhea symptoms of cholera infection.  &lt;br /&gt;
&lt;br /&gt;
&#039;&#039;&#039;PDB ID&#039;&#039;&#039;: 1XTC                                         &lt;br /&gt;
&#039;&#039;&#039;MMDB ID:&#039;&#039;&#039; 52036&lt;br /&gt;
{{TOC limit|limit=2}}&lt;br /&gt;
&lt;br /&gt;
== Structure ==&lt;br /&gt;
[[Image:CTX interaction.PNG|left|270px|thumb| Interaction of chains of Cholera toxin [[1xtc]]]] &lt;br /&gt;
Cholera toxin(CTX) has two types of subunits: subunit A and subunit B. A subunit contains A1 domain, which includes the enzymatic active site, and A2 domain, which has a α–helix tail. The B subunit contains five chains that form a pentameric ring around the central pore in structure; Subunit A and subunit B are assembled by the α–helix tail of A2 domain, which inserts into the central pore. CTX the main virulence factor of the pathogen Vibrio cholerae and cause the major symptom of infection: extreme diarrhea, vomiting, cramps and even death [1][2][3].&lt;br /&gt;
The enzymatic subunit has a globular domain (CTA1) and a long helical domain (CTA2).  Once the CTX binds to the cell surface, it is internalized, and its CTA1 domain binds to ADP-ribosylation factor 6 (Arf6) enabling its catalytic activity. &lt;br /&gt;
&lt;br /&gt;
The images at the lower left  correspond to the crystal structure of cholera toxin ([[1xtc]]).  The images at right correspond to the annotated interaction of 7 chains of cholera toxins([[1xtc]]) in Proteopedia see [[Toxins]].&lt;br /&gt;
&lt;br /&gt;
[[Image:1xtc.png|right|280px|thumb|Crystal Structure of Cholera toxin [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
== mRNA Structure ==&lt;br /&gt;
[[Image:CTX_RNA.png|left|280px|thumb|mRNA fold of CTX [[1xtc]]]]&lt;br /&gt;
&lt;br /&gt;
RNA folding algorithm uses a method to minimize the free energy of the structure so that the RNA molecule is in the most stable form.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
Cholera toxin, after secreted from the Vibrio cholera, binds to the enterocytes (intestinal cells) by the interaction between the subunit B and GM1 ganglioside receptor on enterocytes, which then promotes the toxin endocytosis. Next, A1 turns to an active enzyme after separating with the A2 domain. After A1 domain of subunit A of toxin enters the cytosol, it activates the adenylate cyclase to produce cAMP through G protein, which triggers the activation of cystic fibrosis transmembrane conductance regulator (CFTR), leading to watery diarrhea: the efflux of water and ions from cells [3].&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
CTXφ Bacteriophage that is carried by Vibrio cholera produces Cholera toxin. Cholera toxin is encoded by the gene which developed into Vibrio cholera by horizontal transfer [4]. &lt;br /&gt;
&lt;br /&gt;
== Application ==&lt;br /&gt;
Subunit B of cholera toxin is designed to be applied as a neuronal tracer due to its non-toxic characteristic. It also used to identify lipid rafts as florescent tag on the cell surface since lipid rafts contains GM1 gangliosides, which will interact with subunit B during mechanism [5]. It is demonstrated that cholera toxin subunit B is a sensitive retrograde tracer for the central nervous system.[6]&lt;br /&gt;
&lt;br /&gt;
== 3D Structures of Cholera toxin ==&lt;br /&gt;
&lt;br /&gt;
&#039;&#039;Updated November 2011&#039;&#039;&lt;br /&gt;
[[Image:Picture1.png|right|400px|thumb|Structure Notation of the RNA of CTX A, CLC RNA Workbench]]&lt;br /&gt;
=== CTX ===&lt;br /&gt;
&lt;br /&gt;
[[1xtc]] - CTX&lt;br /&gt;
&lt;br /&gt;
=== CTX A subunit ===&lt;br /&gt;
&lt;br /&gt;
[[2a5d]], [[2a5g]] – CTX A subunit+hArf6+GTP – human&amp;lt;br /&amp;gt;&lt;br /&gt;
[[2a5f]] -  CTX A subunit+hArf6+GTP+NAD&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1s5b]], [[1s5c]], [[1s5d]], [[1s5e]], [[1s5f]] -  CTX A subunit (mutant)&lt;br /&gt;
&lt;br /&gt;
=== CTX B subunits ===&lt;br /&gt;
&lt;br /&gt;
[[1fgb]] - CTX B subunits&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1g8z]] , [[1chp]], [[1chq]] - CTX B subunits (mutant)&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1rcv]], [[1rd9]], [[1rdp]], [[1rf2]], [[1pzi]], [[1pzj]], [[1pzk]], [[1efi]], [[1eef]], [[1djr]], [[1eei]] – CTX B subunits+ galactoside derivatives&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1llr]], [[1jqy]], [[1jr0]], [[1fd7]], [[1md2]] -  CTX B subunits+BMSC derivatives&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1eef]] -  CTX B subunits+PEPG&amp;lt;br /&amp;gt;&lt;br /&gt;
[[3chb]], [[2chb]] - CTX B subunits+pentasaccharide&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1ct1]] - CTX B subunits (mutant)+pentasaccharide&amp;lt;br /&amp;gt;&lt;br /&gt;
[[3efx]] – CTX B/heat-labile enterotoxin B chain&amp;lt;br /&amp;gt;&lt;br /&gt;
[[1tet]] – CTX peptide 3+FAB light and heavy chains - mouse&lt;br /&gt;
&lt;br /&gt;
== Multiple Sequence Alignment ==&lt;br /&gt;
[[Image:MSA1.jpg|left|260px|thumb|BlastP of CTX A subunit]]&lt;br /&gt;
&#039;&#039;&#039;Selected Sequences:&#039;&#039;&#039;&lt;br /&gt;
&lt;br /&gt;
1. Cholera toxin Subunit A&lt;br /&gt;
&lt;br /&gt;
2. Escherichia coli E24377A plasmid pETEC_80, complete sequence&lt;br /&gt;
&lt;br /&gt;
3. Escherichia coli strain 214-III elt operon, complete sequence&lt;br /&gt;
&lt;br /&gt;
4. Vibrio cholerae strain JS9803 prophage Vibrio phage CTX Zot (zot)&lt;br /&gt;
&lt;br /&gt;
5. Vibrio cholera O395 chromosome II, complete sequence&lt;br /&gt;
&lt;br /&gt;
6. Vibrio cholera O1 str. 2010EL-1786 chromosome 1, complete&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Reference ==&lt;br /&gt;
[1] Ryan KJ; Ray CG (editors) (2004). Sherris Medical Microbiology (4th ed.). McGraw Hill. p. 375. ISBN 0838585299.&lt;br /&gt;
&lt;br /&gt;
[2] Faruque SM; Nair GB (editors). (2008). Vibrio cholerae: Genomics and Molecular Biology. Caister Academic Press. ISBN 978-1-904455-33-2 .&lt;br /&gt;
&lt;br /&gt;
[3] Jennifer McDowall, Cholera Toxin, EMBL-EMI, Interpro&lt;br /&gt;
&lt;br /&gt;
[4] Davis B, Waldor M (2003). &amp;quot;Filamentous phages linked to virulence of Vibrio cholerae&amp;quot;. Curr Opin Microbiol 6 (1): 35–42. doi:10.1016/S1369-5274(02)00005-X. PMID 12615217.&lt;br /&gt;
&lt;br /&gt;
[5] Luppi P.H.. &amp;quot;The Discovery of Cholera-Toxin as a Powerful Neuroanatomical Tool&amp;quot;. Retrieved 2011-03-23.&lt;br /&gt;
&lt;br /&gt;
[6] Luppi P.H., Fort P., Jouvet M. Iontophoretic application of unconjugated cholera toxin B subunit (CTb) combined with immunohistochemistry of neurochemical substances: a method for transmitter identification of retrogradely labeled neurons. Brain Res. 534 (1-2) pages : 209-224 (1990)&lt;br /&gt;
&lt;br /&gt;
== External Links ==&lt;br /&gt;
PDB ID: 1XTC [http://www.rcsb.org/pdb/101/motm_disscussed_entry.do?id=1xtc]&lt;br /&gt;
               &lt;br /&gt;
MMDB ID: 52036 [http://www.ncbi.nlm.nih.gov/Structure/mmdb/mmdbsrv.cgi?uid=52036]&lt;br /&gt;
&lt;br /&gt;
PubMed[http://www.ncbi.nlm.nih.gov/pubmed/7658473?dopt=Abstract]&lt;br /&gt;
&lt;br /&gt;
[[Category:Topic Page]]&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_repressor_protein_LuxO&amp;diff=1388455</id>
		<title>Vibrio cholerae repressor protein LuxO</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_repressor_protein_LuxO&amp;diff=1388455"/>
		<updated>2012-05-05T14:58:45Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3cfy|  PDB=3cfy  | SIZE=300| SCENE=Vibrio_cholerae_repressor_protein_LuxO/Rainbow/1 |right|CAPTION=Regulatory protein LuxO [[3cfy]] }}&lt;br /&gt;
&lt;br /&gt;
{{TOC limit|limit=2}}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
LuxO regulates the quorum sensing. Quorum sensing is the adjustment of behavior in response to population size. As a regulator in quorum sensing pathways, LuxO can function as a “switch” and it is known to influence biofilm formation, toxin production, phosphorylation and bioluminescence.  &amp;lt;ref name=&amp;quot;ZhuJ&amp;quot;&amp;gt;PMID: 11854465&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== LuxO Protein Structure ==&lt;br /&gt;
[[Image:3cfy_bio_r_500.jpg|left|280px|thumb|Assumed Biological Structure of the signal receiver domain of the repressor protein LuxO [[3cfy]]]] &lt;br /&gt;
&lt;br /&gt;
The crystal structure of the whole amino acid sequence of the LuxO repressor protein is not yet available on the PDB website. The signal receiving domain of the LuxO protein in Vibrio parahaemolyticus has been successfully crystallized. However, since the paper is yet to be published, the details of the structure is not available at this time. The signal receiver domain is from residual 2 to 128. From the 3D structure, we find that this signal receiver domain consists of five &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Helixes/1&#039;&amp;gt;five α helixes&amp;lt;/scene&amp;gt; and five &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Beta_sheet/1&#039;&amp;gt;five β sheets&amp;lt;/scene&amp;gt;. The phosphorylation  of the aspartate at residual 47 is considered to be the critical factor in the activation of LuxO regulatory protein. &amp;lt;ref name=&amp;quot;LuxO Structure&amp;quot;&amp;gt;PMID: 21292858&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== LuxO RNA Structure ==&lt;br /&gt;
[[Image:LuxO_RNA.png|right|300px|thumb|mRNA structure of LuxO [[3cfy]]]]&lt;br /&gt;
RNA folding algorithm uses a method to minimize the free energy of the structure so that the RNA molecule is in the most stable form.  &amp;lt;ref&amp;gt;PMID:22418849&amp;lt;/ref&amp;gt;The red regions have higher free energy and are less stable while the blue regions posses lower energy hence more stable. Regions without base pairing are more mutable and less likely to be conserved, so evolutionarily they are more likely to contain differences.&lt;br /&gt;
The total free energy of this LuxO RNA folding model is -476KJ/mol.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
LuxO and HapR are tow regulators as the two proteins regulate quorum sensing, related luminous marine bacterium &#039;&#039;Vibrio harveyi&#039;&#039;. LuxO and HapR control a number of other cellular processes, such as motility, protease production, and biofilm formation. Studies showed that LuxO mutant is very defective in colonization of the small intestine under an infant mouse model. By investigating the mechanism that LuxO regulated V. choleae pathogenicity, studies found that the luxO mutant does not generate any detectable TcpA or CT. Hence, the luxO mutant cannot to colonize mice.  However, the LuxO effect on  the virulence regulation is mediated through TcpP which express its mechanism of repression.  In the evidence, luxO regulated the expression of HapR negatively. &amp;lt;ref name=&amp;quot;ZhuJ&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
In the bacterium Vibrio harveyi, there are two quorum-sensing systems that control the bioluminescence(lux) expression. An autoinducer (AI-1 or AI-2) and a cognate sensor (LuxN or LuxQ)are contained in each system. Sensory information of the quorum-sensing systems is transmitted by a phospho-transfer mechanism to LuxO, a shared integrator protein. In term of controlling luminescence, LuxO acts negatively, which is also a member of the signal transduction proteins. LuxN and LuxQ have activities on LuxO,which is suggested by the lux phenotypes of Vibrio harveyi strains that have single and double LuxN and LuxQ mutations.  &amp;lt;ref&amp;gt;PMID: 10027982&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
 {{STRUCTURE_3cfy|  PDB=3cfy  | SIZE=300| SCENE=Vibrio_cholerae_repressor_protein_LuxO/Consurf/1|right|CAPTION=Regulatory protein LuxO [[3cfy]]}}&lt;br /&gt;
[[Image:LuxO_Tshade1.png|left|300px|thumb|MSA [[3cfy]]]]&lt;br /&gt;
[[Image:LuxO_Tree.png|left|300px|thumb|Phylogenetic Tree LuxO [[3cfy]]]]&lt;br /&gt;
&lt;br /&gt;
The first 180 amino acids are shown in the Multiple Sequence Alignment (MSA). The MSA shows that the LuxO protein among different species of Vibrio is highly conserved except the regions highlighted by the red arrows. This is visualized by the consurf 3D model of the signal receiver domain. The dark red regions are highly conserved while the dark blue regions are highly variable. As shown in the model, the majority of the signal receiver domain of the LuxO protein are highly conserved. This is consistent with the MSA data. Study has shown that the first 104 amino acids of the LuxO is the hotspot for mutations. &amp;lt;ref name=&amp;quot;LuxO Structure&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
 &amp;lt;references /&amp;gt;&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=File:LuxO_Tshade1.png&amp;diff=1388454</id>
		<title>File:LuxO Tshade1.png</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=File:LuxO_Tshade1.png&amp;diff=1388454"/>
		<updated>2012-05-05T14:49:54Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: &lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Vibrio_cholerae_repressor_protein_LuxO&amp;diff=1388452</id>
		<title>Vibrio cholerae repressor protein LuxO</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Vibrio_cholerae_repressor_protein_LuxO&amp;diff=1388452"/>
		<updated>2012-05-05T14:43:56Z</updated>

		<summary type="html">&lt;p&gt;Yang Yang: /* Evolution */&lt;/p&gt;
&lt;hr /&gt;
&lt;div&gt;{{STRUCTURE_3cfy|  PDB=3cfy  | SIZE=300| SCENE=Vibrio_cholerae_repressor_protein_LuxO/Rainbow/1 |right|CAPTION=Regulatory protein LuxO [[3cfy]] }}&lt;br /&gt;
&lt;br /&gt;
{{TOC limit|limit=2}}&lt;br /&gt;
&lt;br /&gt;
&lt;br /&gt;
== Introduction ==&lt;br /&gt;
LuxO regulates the quorum sensing. Quorum sensing is the adjustment of behavior in response to population size. As a regulator in quorum sensing pathways, LuxO can function as a “switch” and it is known to influence biofilm formation, toxin production, phosphorylation and bioluminescence.  &amp;lt;ref name=&amp;quot;ZhuJ&amp;quot;&amp;gt;PMID: 11854465&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== LuxO Protein Structure ==&lt;br /&gt;
[[Image:3cfy_bio_r_500.jpg|left|280px|thumb|Assumed Biological Structure of the signal receiver domain of the repressor protein LuxO [[3cfy]]]] &lt;br /&gt;
&lt;br /&gt;
The crystal structure of the whole amino acid sequence of the LuxO repressor protein is not yet available on the PDB website. The signal receiving domain of the LuxO protein in Vibrio parahaemolyticus has been successfully crystallized. However, since the paper is yet to be published, the details of the structure is not available at this time. The signal receiver domain is from residual 2 to 128. From the 3D structure, we find that this signal receiver domain consists of five &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Helixes/1&#039;&amp;gt;five α helixes&amp;lt;/scene&amp;gt; and five &amp;lt;scene name=&#039;Vibrio_cholerae_repressor_protein_LuxO/Beta_sheet/1&#039;&amp;gt;five β sheets&amp;lt;/scene&amp;gt;.&lt;br /&gt;
&lt;br /&gt;
== LuxO RNA Structure ==&lt;br /&gt;
[[Image:LuxO_RNA.png|right|300px|thumb|mRNA structure of LuxO [[3cfy]]]]&lt;br /&gt;
RNA folding algorithm uses a method to minimize the free energy of the structure so that the RNA molecule is in the most stable form.  &amp;lt;ref&amp;gt;PMID:22418849&amp;lt;/ref&amp;gt;The red regions have higher free energy and are less stable while the blue regions posses lower energy hence more stable. Regions without base pairing are more mutable and less likely to be conserved, so evolutionarily they are more likely to contain differences.&lt;br /&gt;
The total free energy of this LuxO RNA folding model is -476KJ/mol.&lt;br /&gt;
&lt;br /&gt;
== Function ==&lt;br /&gt;
LuxO and HapR are tow regulators as the two proteins regulate quorum sensing, related luminous marine bacterium &#039;&#039;Vibrio harveyi&#039;&#039;. LuxO and HapR control a number of other cellular processes, such as motility, protease production, and biofilm formation. Studies showed that LuxO mutant is very defective in colonization of the small intestine under an infant mouse model. By investigating the mechanism that LuxO regulated V. choleae pathogenicity, studies found that the luxO mutant does not generate any detectable TcpA or CT. Hence, the luxO mutant cannot to colonize mice.  However, the LuxO effect on  the virulence regulation is mediated through TcpP which express its mechanism of repression.  In the evidence, luxO regulated the expression of HapR negatively. &amp;lt;ref name=&amp;quot;ZhuJ&amp;quot; /&amp;gt;&lt;br /&gt;
&lt;br /&gt;
In the bacterium Vibrio harveyi, there are two quorum-sensing systems that control the bioluminescence(lux) expression. An autoinducer (AI-1 or AI-2) and a cognate sensor (LuxN or LuxQ)are contained in each system. Sensory information of the quorum-sensing systems is transmitted by a phospho-transfer mechanism to LuxO, a shared integrator protein. In term of controlling luminescence, LuxO acts negatively, which is also a member of the signal transduction proteins. LuxN and LuxQ have activities on LuxO,which is suggested by the lux phenotypes of Vibrio harveyi strains that have single and double LuxN and LuxQ mutations.  &amp;lt;ref&amp;gt;PMID: 10027982&amp;lt;/ref&amp;gt;&lt;br /&gt;
&lt;br /&gt;
== Evolution ==&lt;br /&gt;
 {{STRUCTURE_3cfy|  PDB=3cfy  | SIZE=300| SCENE=Vibrio_cholerae_repressor_protein_LuxO/Consurf/1|right|CAPTION=Regulatory protein LuxO [[3cfy]]}}&lt;br /&gt;
[[Image:LuxO_Tshade.png|left|300px|thumb|MSA [[3cfy]]]]&lt;br /&gt;
[[Image:LuxO_Tree.png|left|300px|thumb|Phylogenetic Tree LuxO [[3cfy]]]]&lt;br /&gt;
&lt;br /&gt;
The Multiple Sequence Alignment (MSA) shows that the LuxO protein among different species of Vibrio is highly conserved. This property is visualized by the consurf 3D model. The dark red regions are highly conserved while the dark blue regions are highly variable. As shown in the model, the majority of the signal receiver domain of the LuxO protein are highly conserved. This is consistent with the MSA data.&lt;br /&gt;
&lt;br /&gt;
== References ==&lt;br /&gt;
 &amp;lt;references /&amp;gt;&lt;/div&gt;</summary>
		<author><name>Yang Yang</name></author>
	</entry>
</feed>