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{{Sandbox_Reserved_ESBS_2015}}<!-- PLEASE ADD YOUR CONTENT BELOW HERE -->
{{Sandbox_Reserved_ESBS_2015}}<!-- PLEASE ADD YOUR CONTENT BELOW HERE -->
 
=SRY protein (AKA TDF protein)=
==SRY protein (AKA TDF protein)==
 
<StructureSection load='1hry' size='340' frame='true' side='right' caption='The SRY protein linked to DNA' scene='71/719861/Base/1'>
<StructureSection load='1hry' size='340' frame='true' side='right' caption='The SRY protein linked to DNA' scene='71/719861/Base/1'>


 
<table><tr><td colspan='2'>The SRY protein is a 204 residues-long monomeric polypeptide. It is encoded by the SRY gene and is involved in the sex determination in mammals by being responsible for the gonadogenesis and so the male sexual development. It is the HMG-box that gives to the protein its ability to bind DNA by its minor groove<ref name ="Tang">PMID: 9626701</ref>.</td></tr>
<table>
 
<tr><td colspan='2'>The SRY protein is a 204 residues-long monomeric polypeptide. It is encoded by the SRY gene and is involved in the sex determination in mammals by being responsible for the gonadogenesis and so the male sexual development. It is the HMG-box that gives to the protein its ability to bind DNA by its minor groove. <ref name ="Tang">PMID: 9626701</ref></td></tr>


<tr id='related'><td class="sblockLbl"><b>[[Related_structure|Related:]]</b></td><td class="sblockDat">[[1hrz|1hrz]]</td></tr>
<tr id='related'><td class="sblockLbl"><b>[[Related_structure|Related:]]</b></td><td class="sblockDat">[[1hrz|1hrz]]</td></tr>
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<tr id='Regulation'><td class="sblockLbl"><b>Regulation</b><td class="sblockDat">[https://en.wikipedia.org/wiki/Steroidogenic_factor_1 Sf1];[https://en.wikipedia.org/wiki/Sp1_transcription_factor Sp1] (binding site in the promoter of SRY : -150),[https://en.wikipedia.org/wiki/WT1 WT1] (binding site in the promoter of SRY : -87)
<tr id='Regulation'><td class="sblockLbl"><b>Regulation</b><td class="sblockDat">[https://en.wikipedia.org/wiki/Steroidogenic_factor_1 Sf1];[https://en.wikipedia.org/wiki/Sp1_transcription_factor Sp1] (binding site in the promoter of SRY : -150),[https://en.wikipedia.org/wiki/WT1 WT1] (binding site in the promoter of SRY : -87)
<tr id='Role'><td class="sblockLbl"><b>Role</b><td class="sblockDat">Transcription factor
<tr id='Role'><td class="sblockLbl"><b>Role</b><td class="sblockDat">Transcription factor
<tr id='Genes targeted'><td class="sblockLbl"><b>Genes targeted</b><td class="sblockDat">SOX9
<tr id='Genes targeted'><td class="sblockLbl"><b>Genes targeted</b><td class="sblockDat"><i>SOX9</i>, <i>TH</i>, <i>MAOA</i>


</span>
</span>
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===Regulation of the expression of the SRY gene===
===Regulation of the expression of the SRY gene===


In humans, the SRY promoter is located between −408 and −95 bp. Moreover, the SRY gene has enhancers at -727 pb. The linkage between regulatory proteins and these enhancers has the property to increase the production of SRY proteins. These regulatory proteins could be: SF1 (steroidogenic factor 1), SP1  and WT 1 (Wilms tumor). <ref name="Harley">Harley VR, Clarkson MJ, Argentaro A. The Molecular Action and Regulation of the Testis-Determining Factors, SRY (Sex-Determining Region on the Y Chromosome) and SOX9 [SRY-Related High-Mobility Group (HMG) Box 9]. Endocr Rev. 2003 Aug 1;24(4):466–87. [http://press.endocrine.org/doi/10.1210/er.2002-0025?url_ver=Z39.88-2003&rfr_id=ori%3Arid%3Acrossref.org&rfr_dat=cr_pub%3Dpubmed&]</ref>.
In humans, the SRY promoter is located between −408 and −95 bp. Moreover, the SRY gene has enhancers at -727 pb. The linkage between regulatory proteins and these enhancers has the property to increase the production of SRY proteins. These regulatory proteins could be: SF1 (steroidogenic factor 1), SP1  and WT 1 (Wilms tumor)<ref name="Harley">Harley VR, Clarkson MJ, Argentaro A. The Molecular Action and Regulation of the Testis-Determining Factors, SRY (Sex-Determining Region on the Y Chromosome) and SOX9 [SRY-Related High-Mobility Group (HMG) Box 9]. Endocr Rev. 2003 Aug 1;24(4):466–87. [http://press.endocrine.org/doi/10.1210/er.2002-0025?url_ver=Z39.88-2003&rfr_id=ori%3Arid%3Acrossref.org&rfr_dat=cr_pub%3Dpubmed&]</ref>.


*'''SF1''': this transcriptional factor belongs to the family of nuclear hormone receptors and contains a zinc finger. The activation of this protein requires a ligand (hormone).
*'''SF1''': this transcriptional factor belongs to the family of nuclear hormone receptors and contains a zinc finger. The activation of this protein requires a ligand (hormone).
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*'''SP1''': this transcriptional factor is an ubiquitous protein which binds rich GC-sites and is implicated in the transcription of many genes. Moreover, this protein contains a zinc finger.
*'''SP1''': this transcriptional factor is an ubiquitous protein which binds rich GC-sites and is implicated in the transcription of many genes. Moreover, this protein contains a zinc finger.


*'''WT1''' :this transcriptional factor transactivates the SRY gene. It contains a zinc finger. <ref>Larney C, Bailey TL, Koopman P. Switching on sex: transcriptional regulation of the testis-determining gene Sry. Dev Camb Engl. 2014 Jun;141(11):2195–205</ref>.  
*'''WT1''': this transcriptional factor transactivates the SRY gene. It contains a zinc finger<ref>Larney C, Bailey TL, Koopman P. Switching on sex: transcriptional regulation of the testis-determining gene Sry. Dev Camb Engl. 2014 Jun;141(11):2195–205</ref>.  


==Structure==
==Structure==
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===Cathecolamines regulation===
===Cathecolamines regulation===


It has been shown that SRY is present in brain regions and activates the Tyrosine-3-Hydroxylase expression. This enzyme catalyses the rate-limiting step of catecholamine synthesis (L-Tyrosine to L-DOPA). Furthermore, SRY also activates the expression of Monoamine Oxidase A which is responsible for the inactivation of catecholamines. Therefore, it regulates both positively and negatively the catecholamines concentration. <ref>PMID: 24604382</ref>
It has been shown that SRY is present in brain regions and activates the Tyrosine-3-Hydroxylase expression. This enzyme catalyses the rate-limiting step of catecholamine synthesis (L-Tyrosine to L-DOPA). Furthermore, SRY also activates the expression of Monoamine Oxidase A which is responsible for the inactivation of catecholamines. Therefore, it regulates both positively and negatively the catecholamines concentration<ref name="Veitia">PMID: 24604382</ref>.


===Other extra-testicular effects===
===Other extra-testicular effects===


Some knock-down experiments have shown that SRY may also be a major actor in the dopamine pathway. On the peripheral side, it seems to regulate noradrenaline levels and blood pressure.<ref>PMID: 24604382</ref> A researcher who contributed to discovering these effects says it might explain why "the aggressive fight-or-flight reaction is more dominant in men, while women predominantly adopt a less aggressive tend-and-befriend response".<ref>Cohen, Tamara. The 'macho' gene that makes men behave aggressively has been found. The Daily Mail (2012). [http://www.dailymail.co.uk/sciencetech/article-2111668/The-macho-gene-makes-men-aggressive-found.html#ixzz3yZC2BV4k]</ref>
Some knock-down experiments have shown that SRY may also be a major actor in the dopamine pathway. On the peripheral side, it seems to regulate noradrenaline levels and blood pressure<ref name="Veitia" />. A researcher who contributed to discovering these effects says it might explain why "the aggressive fight-or-flight reaction is more dominant in men, while women predominantly adopt a less aggressive tend-and-befriend response"<ref>Cohen, Tamara. The 'macho' gene that makes men behave aggressively has been found. The Daily Mail (2012). [http://www.dailymail.co.uk/sciencetech/article-2111668/The-macho-gene-makes-men-aggressive-found.html#ixzz3yZC2BV4k]</ref>.


It has been shown that SRY would be involved in the regulation of the renin-angiotensin system in mice. Indeed, sequence mutations of the protein lead to hypertension. Because the human's SRY organisation is very closed to he mouse's, it has been proposed that SRY would have the same function in human but it has not been studied directly.<ref>PMID:22315667</ref>
It has been shown that SRY may be involved in the regulation of the renin-angiotensin system in mice. Indeed, sequence mutations of the protein lead to hypertension. Because the human's SRY organisation is very closed to the mouse's, it has been proposed that SRY may have the same function in humans but it has not been studied directly<ref>PMID:22315667</ref>.


== Diseases==
== Diseases==


=== Swyer syndrome (AKA XY gonadal dysgenis) :===
=== Swyer syndrome (AKA XY gonadal dysgenis)===


If the TDF protein is not able to bind its targeted DNA sequences, the genes responsible for the testis development are not expressed. The patient owning this defective protein will then develop female characters, even though he has a XY karyotype. This phenomenon is known as the "Swyer Syndrome".  
If the TDF protein is not able to bind its targeted DNA sequences, the genes responsible for the testis development are not expressed. The patient owning this defective protein will then develop female characters, even though he has a XY karyotype. This phenomenon is known as the "Swyer Syndrome".  
Different causes can explain this "XY gonadal dysgenis", as it is also called. About thirty mutations (named [http://www.uniprot.org/uniprot/Q05066#sequences "SRXY1"]) in the SRY gene have been shown to drive this phenotype development. It can also be due to crossovers during a meiosis. If a Y chromosome portion carrying the SRY gene is recombined into a X chromosome, a sperm cell will get this abnormal Y chromosome. If it then fecundates, a XY karyotype without any SRY gene will be formed.  
Different causes can explain this "XY gonadal dysgenis", as it is also called. About thirty mutations (named [http://www.uniprot.org/uniprot/Q05066#sequences "SRXY1"]) in the SRY gene have been shown to drive this phenotype development. It can also be due to crossovers during a meiosis. If a Y chromosome portion carrying the SRY gene is recombined into a X chromosome, a sperm cell will get this abnormal Y chromosome. If it then fecundates, a XY karyotype without any SRY gene will be formed.  


=== De La Chapelle syndrome (AKA XX male syndrome) :===
=== De La Chapelle syndrome (AKA XX male syndrome)===


From the meiosis just described would also result an abnormal X chromosome, carrying the SRY gene. If the sperm cell owning this chromosome fecundates an ovule, the resulting newborn will have a XX karyotype but a male phenotype. This is called the "De La Chapelle syndrome". In this case, the patient can either develop testis or both testis and ovarian tissues. As some epigenetic mechanisms can inactivate the X chromosome carrying SRY, this syndrome keeps most of the patients sterile<ref>PMID: 4622299</ref>.
From the meiosis just described would also result an abnormal X chromosome, carrying the SRY gene. If the sperm cell owning this chromosome fecundates an ovule, the resulting newborn will have a XX karyotype but a male phenotype. This is called the "De La Chapelle syndrome". In this case, the patient can either develop testis or both testis and ovarian tissues. As some epigenetic mechanisms can inactivate the X chromosome carrying SRY, this syndrome keeps most of the patients sterile<ref>PMID: 4622299</ref>.
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===Hepatocellular carcinoma===
===Hepatocellular carcinoma===
   
   
In the case on a hepatocellular carcinoma, it has been proved that high expression levels of SRY help cancer progression and poor patient survival. However, it still seems that hepatocellular carcinoma is not most likely to develop in men.<ref>PMID: 25274159</ref>  
In the case on a hepatocellular carcinoma, it has been proved that high expression levels of SRY help cancer progression and poor patient survival. However, it still seems that hepatocellular carcinoma is not most likely to develop in men<ref>PMID: 25274159</ref>.


== Structural highlights ==
== Structural highlights ==
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*<scene name='71/719861/Helix_2/2'>Helix 2</scene>
*<scene name='71/719861/Helix_2/2'>Helix 2</scene>
*<scene name='71/719861/Helix_3/1'>Helix 3</scene>
*<scene name='71/719861/Helix_3/1'>Helix 3</scene>
*<scene name='71/719861/Long_arm_28a/1'>Long arm (28A)</scene>
*<scene name='71/719861/Long_arm_28Å/1'>Long arm (28A)</scene>
*<scene name='71/719861/Short_arm_22a/1'>Short arm (22A)</scene>
*<scene name='71/719861/Short_arm_22Å/1'>Short arm (22A)</scene>
</StructureSection>
</StructureSection>


== References ==
== References ==
<references/>
<references/>

Latest revision as of 15:11, 30 January 2016

This Sandbox is Reserved from 15/12/2015, through 15/06/2016 for use in the course "Structural Biology" taught by Bruno Kieffer at the University of Strasbourg, ESBS. This reservation includes Sandbox Reserved 1120 through Sandbox Reserved 1159.
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SRY protein (AKA TDF protein)

The SRY protein linked to DNA

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References