Lac repressor: Difference between revisions

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<table width='350' align='right' cellpadding='5'><tr><td rowspan='2'>&nbsp;</td><td bgcolor='#d0d0d0'><applet load='1osl_19_1l1m_9_morph.pdb' size='400' frame='true' align='right' scene='Morphs/1osl_19_1l1m_9_morph/2' /></td></tr><tr><td bgcolor='#d0d0d0'>[[Morphs|Morph]] of the lac repressor complexed with DNA showing the differences between non-specific binding (straight DNA) vs. specific recognition of the operator sequence (kinked DNA). Whether the binding kinks the DNA, or simply stabilizes a pre-existing kink, is unknown. [[#Specific Binding| Details Below]].</td></tr></table>
<StructureSection load='1osl_19_1l1m_9_morph.pdb' size='450' side='right' scene='Morphs/1osl_19_1l1m_9_morph/2' caption=''>
 
[[Morphs|Morph]] of the lac repressor complexed with DNA showing the differences between non-specific binding (straight DNA) vs. specific recognition of the operator sequence (kinked DNA). Whether the binding kinks the DNA, or simply stabilizes a pre-existing kink, is unknown. [[#Specific Binding| Details Below]].


==What is the lac repressor?==
==What is the lac repressor?==
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==Structure of the lac repressor==
==Structure of the lac repressor==
<applet load='1lbg' size='450' frame='true' align='right' scene='Lac_repressor/1lbg_lac_repressor_with_dna/9' />


The lac repressor protein (<scene name='Lac_repressor/1lbg_lac_repressor_with_dna/9'>initial labeled scene</scene> showing chain A in [[1lbg]], [[Resolution|resolution]] 4.8 &Aring;), starting at the N-terminus, begins with a <font color='red'><b>DNA-binding "headpiece"</b></font>, followed by a <font color='orange'><b>hinge region</b></font>, then an <font color='#00e080'><b>N-terminal ligand-binding subdomain</b></font> and a <font color='#20d0f0'><b>C-terminal ligand binding subdomain</b></font>, a <font color='#ff8080'><b>linker</b></font>, and a C-terminal <font color='#6060ff'><b>tetramerization helix</b></font><ref name='domaincolors'>This domain coloring scheme is adapted from Fig. 6 in the review by Lewis (''C. R. Biol.'' 328:521, 2005). Domains are <font color='red'><b>1-45</b></font>, <font color='orange'><b>46-62</b></font>, <font color='#00e080'><b>(63-162,291-320)</b></font>, <font color='#20d0f0'><b>(163-290,321-332)</b></font>, <font color='#ff8080'><b>330-339</b></font>, and <font color='#6060ff'><b>340-357</b></font>.</ref>. (<scene name='Lac_repressor/1lbg_lac_repressor_with_dna/10'>Hide labels</scene>.) In the absence of DNA, the <font color='orange'><b>hinge region</b></font> does not form the alpha helix shown here.
The lac repressor protein (<scene name='Lac_repressor/1lbg_lac_repressor_with_dna/9'>initial labeled scene</scene> showing chain A in [[1lbg]], [[Resolution|resolution]] 4.8 &Aring;), starting at the N-terminus, begins with a <font color='red'><b>DNA-binding "headpiece"</b></font>, followed by a <font color='orange'><b>hinge region</b></font>, then an <font color='#00e080'><b>N-terminal ligand-binding subdomain</b></font> and a <font color='#20d0f0'><b>C-terminal ligand binding subdomain</b></font>, a <font color='#ff8080'><b>linker</b></font>, and a C-terminal <font color='#6060ff'><b>tetramerization helix</b></font><ref name='domaincolors'>This domain coloring scheme is adapted from Fig. 6 in the review by Lewis (''C. R. Biol.'' 328:521, 2005). Domains are <font color='red'><b>1-45</b></font>, <font color='orange'><b>46-62</b></font>, <font color='#00e080'><b>(63-162,291-320)</b></font>, <font color='#20d0f0'><b>(163-290,321-332)</b></font>, <font color='#ff8080'><b>330-339</b></font>, and <font color='#6060ff'><b>340-357</b></font>.</ref>. (<scene name='Lac_repressor/1lbg_lac_repressor_with_dna/10'>Hide labels</scene>.) In the absence of DNA, the <font color='orange'><b>hinge region</b></font> does not form the alpha helix shown here.
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====Non-Specific Binding====
====Non-Specific Binding====
<!--
<table width='350' align='right' cellpadding='5'><tr><td rowspan='2'>&nbsp;</td><td bgcolor='#d0d0d0'>
-->
<applet load='Image:1osl_ca.pdb' size='450' frame='true' align='right' scene='Lac_repressor/1osl_ca_dot_pdb/2' />
<!--
</td></tr><tr><td bgcolor='#d0d0d0'>[[Morphs|Morph]] of the lac repressor bending DNA as binding changes from non-specific ([[1osl]]) to specific recognition of the operator sequence ([[1l1m]]).</td></tr></table>
-->


Lac repressor binds to DNA non-specifically (<scene name='Lac_repressor/1osl_ca_dot_pdb/2'>initial scene</scene> derived <ref name='alphac'>For these scenes, the 20-model [[PDB file|PDB files]] for [[1osl]] and [[1l1m]] were reduced in size, to avoid exceeding the java memory available to the Jmol applet. All atoms except amino acid alpha carbons and DNA phosphorus atoms were removed using the free program ''alphac.exe'' from [http://www.umass.edu/microbio/rasmol/pdbtools.htm PDBTools]. Secondary structure HELIX records from the original PDB file header were retained. The results are [[Image:1osl_ca.pdb|1osl_ca.pdb]] and [[Image:1l1m_ca.pdb]].</ref> from [[1osl]], 20 [[NMR Ensembles of Models|NMR models]]), enabling it to slide rapidly along the DNA double helix until it encounters the lac operator sequence ("facilitated diffusion"<ref>PMID: 22723426</ref>). The DNA-binding domain employs a [[Helix-turn-helix motif|helix-turn-helix motif]] ({{Template:ColorKey_Helix}}, {{Template:ColorKey_Turn}}). During non-specific binding, the <font color='orange'><b>hinge region</b></font> is disordered (indicated by the range of positions of the 20 models). The <font color='#ae00ff'><b>DNA double helix</b></font> is depicted as straight in the model shown here (see [[Lac repressor morph methods|methods]]), but in actuality, straightness likely varies with sequence (see [[#DNA Kinks|below]]). The protein model shown at right ([[1osl]]) has two copies of the DNA-binding domain and <font color='orange'><b>hinge region</b></font> (<scene name='Lac_repressor/1osl_ca_dot_pdb/3'>Apply green color</scene> to distinguish the <font color='#00a060'><b>chain B hinge</b></font>). <scene name='Lac_repressor/1osl_ca_dot_pdb/8'>Animating</scene> these 20 [[NMR Ensembles of Models|NMR models]] simulates thermal motion of the disordered hinge regions. {{Template:Button Toggle Animation}}
Lac repressor binds to DNA non-specifically (<scene name='Lac_repressor/1osl_ca_dot_pdb/2'>initial scene</scene> derived <ref name='alphac'>For these scenes, the 20-model [[PDB file|PDB files]] for [[1osl]] and [[1l1m]] were reduced in size, to avoid exceeding the java memory available to the Jmol applet. All atoms except amino acid alpha carbons and DNA phosphorus atoms were removed using the free program ''alphac.exe'' from [http://www.umass.edu/microbio/rasmol/pdbtools.htm PDBTools]. Secondary structure HELIX records from the original PDB file header were retained. The results are [[Image:1osl_ca.pdb|1osl_ca.pdb]] and [[Image:1l1m_ca.pdb]].</ref> from [[1osl]], 20 [[NMR Ensembles of Models|NMR models]]), enabling it to slide rapidly along the DNA double helix until it encounters the lac operator sequence ("facilitated diffusion"<ref>PMID: 22723426</ref>). The DNA-binding domain employs a [[Helix-turn-helix motif|helix-turn-helix motif]] ({{Template:ColorKey_Helix}}, {{Template:ColorKey_Turn}}). During non-specific binding, the <font color='orange'><b>hinge region</b></font> is disordered (indicated by the range of positions of the 20 models). The <font color='#ae00ff'><b>DNA double helix</b></font> is depicted as straight in the model shown here (see [[Lac repressor morph methods|methods]]), but in actuality, straightness likely varies with sequence (see [[#DNA Kinks|below]]). The protein model shown at right ([[1osl]]) has two copies of the DNA-binding domain and <font color='orange'><b>hinge region</b></font> (<scene name='Lac_repressor/1osl_ca_dot_pdb/3'>Apply green color</scene> to distinguish the <font color='#00a060'><b>chain B hinge</b></font>). <scene name='Lac_repressor/1osl_ca_dot_pdb/8'>Animating</scene> these 20 [[NMR Ensembles of Models|NMR models]] simulates thermal motion of the disordered hinge regions. {{Template:Button Toggle Animation}}
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==Animation for Powerpoint&reg; Slides==
==Animation for Powerpoint&reg; Slides==
Here is an animated multi-gif [[Morphs#True_Movies|true movie]] of the above morph, ready to insert into a Powerpoint&reg;<ref>''Powerpoint'' is a registered trademark for a software package licensed by [http://microsoft.com Microsoft Corp.].</ref> slide. If the image below is not moving, reload this page (it stops after 50 cycles).
Here is an animated multi-gif [[Morphs#True_Movies|true movie]] of the above morph, ready to insert into a Powerpoint&reg;<ref>''Powerpoint'' is a registered trademark for a software package licensed by [http://microsoft.com Microsoft Corp.].</ref> slide. If the image below is not moving, reload this page (it stops after 50 cycles).
[[Image:Lacrep_anim_large.gif|center]]
[[Image:Lacrep_anim_large.gif|left]]


* In Windows, simply drag the movie and drop it into the Powerpoint slide. You can then resize it and position it. The movie should play when you change the View to Slide Show ("project") the slide.
* In Windows, simply drag the movie and drop it into the Powerpoint slide. You can then resize it and position it. The movie should play when you change the View to Slide Show ("project") the slide.
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Answers are available on request to {{Template:Contact}}. If you would like us to make the answers publically available within Proteopedia, please let us know. When contacting us, please give your full name, your position, institution or school, and location.
Answers are available on request to {{Template:Contact}}. If you would like us to make the answers publically available within Proteopedia, please let us know. When contacting us, please give your full name, your position, institution or school, and location.
 
</StructureSection>
==Content Attribution & Acknowledgement==
==Content Attribution & Acknowledgement==



Revision as of 09:07, 4 May 2014

Drag the structure with the mouse to rotate

Content Attribution & Acknowledgement

The morphs displayed here were originally prepared by Eric Martz in 2004 for the page Lac Repressor Binding to DNA, within ProteinExplorer.Org.

Eric Martz thanks Remo Rohs for his kind and expert advice concerning the 2010-2011 updates to this article.

See Also


3D structures of Lac repressor

Updated on 04-May-2014

1lbi – EcLAC + hexanediol - Escherichia coli
1osl – EcLAC residues 2-331 (mutant) + effector
NMR models - EcLAC + effector
helix-turn-helix motif - EcLAC residues 62-330 + effector
methods - EcLAC residues 62-330 + anti-inducer
1osl – EcLAC
NMR models, 1l1m - EcLAC (mutant)
NMR models - EcLAC headpiece – NMR
Lac repressor morph methods - EcLAC residues 19-319
1jj2 – LAC coiled-coil - yeast

Lac repressor complex with DNA

morphing, Lac repressor morph methods – EcLAC DNA-binding domain (mutant) + O1 operator –NMR
hydrogen bonds - EcLAC DNA-binding domain (mutant) + O2 operator – NMR
Methods - EcLAC DNA-binding domain (mutant) + O3 operator – NMR
true movie - EcLAC DNA-binding domain (mutant) + GAL operator – NMR
1lbg - EcLAC DNA-binding domain (mutant) + DNA – NMR
1lbi, PDB files, 1osl - EcLAC headpiece + DNA – NMR
1l1m - EcLAC + O1 operator + effector
1lbg - EcLAC + DNA + inducer
1efa - EcLAC residues 1-333 (mutant) + DNA


References & Notes