Journal:JBSD:16

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Thus, the <scene name='Journal:JBSD:16/Cv/7'>extracellular region of the 5HT3 subunits A and B</scene> are modelled by homology with the 3D structure of the nAChR subunit A ([[2bg9]]-A) and are used to assemble receptor structures as pseudo-symmetric pentamers made either of <scene name='Journal:JBSD:16/Cv/9'>five identical subunits A (homomeric 5-HT3A-R)</scene> or of <scene name='Journal:JBSD:16/Cv/10'>both subunits A and B (heteromeric 5-HT3A/B-R in the BBABA arrangement)</scene> in a still debated arrangement.<ref>PMID:20724042 </ref> Subunits <font color='magenta'><b>A</b></font> and <font color='red'><b>B</b></font> are colored in <font color='magenta'><b>magenta</b></font> and <font color='red'><b>red</b></font>, respectively.
Thus, the <scene name='Journal:JBSD:16/Cv/7'>extracellular region of the 5HT3 subunits A and B</scene> are modelled by homology with the 3D structure of the nAChR subunit A ([[2bg9]]-A) and are used to assemble receptor structures as pseudo-symmetric pentamers made either of <scene name='Journal:JBSD:16/Cv/9'>five identical subunits A (homomeric 5-HT3A-R)</scene> or of <scene name='Journal:JBSD:16/Cv/10'>both subunits A and B (heteromeric 5-HT3A/B-R in the BBABA arrangement)</scene> in a still debated arrangement.<ref>PMID:20724042 </ref> Subunits <font color='magenta'><b>A</b></font> and <font color='red'><b>B</b></font> are colored in <font color='magenta'><b>magenta</b></font> and <font color='red'><b>red</b></font>, respectively.
A complete characterization of the extracellular moiety of the <scene name='Journal:JBSD:16/Cv/15'>dimer interface of the 5-HT3-R</scene> (AA dimer is shown, <span style="color:cyan;background-color:black;font-weight:bold;">principal subunit is colored in cyan</span> and <font color='blue'><b>complementary is in blue</b></font>, is obtained by the Computational Alanine Scanning Mutagenesis (CASM) approach <ref>PMID:17195156</ref>, which simulates the substitution, one by one, of all the amino acid residues at the subunit-subunit interfaces with an Ala, thus to assess the interface binding contribution of single residue side-chains. The <scene name='Journal:JBSD:16/Cv/16'>most relevant residues for interface stabilization</scene> are classified as “hot spots” that stabilize the interface by more than 4 kcal/mol and “warm spots” that contribute to interface stabilization by more than 2 kcal/mol. <scene name='Journal:JBSD:16/Cv/17'>Click here to see also the interface of complementary subunit.</scene> Interface residues are shown in spacefill representation, <font color='red'><b>hot spot residues are colored in red</b></font> and <span style="color:orange;background-color:black;font-weight:bold;">warm spots residues are are in orange</span>.
A complete characterization of the extracellular moiety of the <scene name='Journal:JBSD:16/Cv/15'>dimer interface of the 5-HT3-R</scene> (AA dimer is shown, <span style="color:cyan;background-color:black;font-weight:bold;">principal subunit is colored in cyan</span> and <font color='blue'><b>complementary is in blue</b></font>, is obtained by the Computational Alanine Scanning Mutagenesis (CASM) approach <ref>PMID:17195156</ref>, which simulates the substitution, one by one, of all the amino acid residues at the subunit-subunit interfaces with an Ala, thus to assess the interface binding contribution of single residue side-chains. The <scene name='Journal:JBSD:16/Cv/16'>most relevant residues for interface stabilization</scene> are classified as “hot spots” that stabilize the interface by more than 4 kcal/mol and “warm spots” that contribute to interface stabilization by more than 2 kcal/mol. <scene name='Journal:JBSD:16/Cv/17'>Click here to see also the interface of complementary subunit.</scene> Interface residues are shown in spacefill representation, <font color='red'><b>hot spot residues are colored in red</b></font> and <span style="color:orange;background-color:black;font-weight:bold;">warm spots residues are are in orange</span>.
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From this analysis the <scene name='Journal:JBSD:16/Cv/18'>important aromatic cluster</scene> located at the interface core and formed by residues W178 (principal subunit), Y68, Y83, W85 and Y148 (complementary subunit) is highlighted.<ref>DOI:10.1080/07391102.2012.680029</ref> In addition, two important groups of interface residues are probably involved in the coupling of <scene name='Journal:JBSD:16/Cv1/6'>agonist</scene> and <scene name='Journal:JBSD:16/Cv1/7'>antagonist</scene> binding to channel activation/inactivation: W116-H180-L179-W178-E124-F125 (principal subunit) and Y136-Y138-Y148-W85-(P150) (complementary subunit), where W178 and Y148 appear to be critical residues for the binding/activation mechanism. Finally, the <scene name='Journal:JBSD:16/Cv1/8'>comparison of the AA interface with the BB interface</scene> (<span style="color:cyan;background-color:black;font-weight:bold;">principal subunit of AA is colored in cyan</span>, <font color='darkmagenta'><b>principal subunit BB is colored in darkmagenta</b></font>, <font color='blue'><b>complementary subunit AA is in blue</b></font> and <font color='magenta'><b>complementary subunit BB is in magenta</b></font>) shows differences which could explain the reasons why the homopentamer 5-HT3B-R, if expressed, is not functional (see also image below).<ref>DOI: 10.1039/C2CP41028A</ref>
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From this analysis the <scene name='Journal:JBSD:16/Cv/18'>important aromatic cluster</scene> located at the interface core and formed by residues W178 (principal subunit), Y68, Y83, W85 and Y148 (complementary subunit) is highlighted.<ref>DOI:10.1080/07391102.2012.680029</ref> In addition, two important groups of interface residues are probably involved in the coupling of <scene name='Journal:JBSD:16/Cv1/6'>agonist</scene> and <scene name='Journal:JBSD:16/Cv1/10'>antagonist</scene> binding to channel activation/inactivation: W116-H180-L179-W178-E124-F125 (principal subunit) and Y136-Y138-Y148-W85-(P150) (complementary subunit), where W178 and Y148 appear to be critical residues for the binding/activation mechanism. Finally, the <scene name='Journal:JBSD:16/Cv1/8'>comparison of the AA interface with the BB interface</scene> (<span style="color:cyan;background-color:black;font-weight:bold;">principal subunit of AA is colored in cyan</span>, <font color='darkmagenta'><b>principal subunit BB is colored in darkmagenta</b></font>, <font color='blue'><b>complementary subunit AA is in blue</b></font> and <font color='magenta'><b>complementary subunit BB is in magenta</b></font>) shows differences which could explain the reasons why the homopentamer 5-HT3B-R, if expressed, is not functional (see also image below).<ref>DOI: 10.1039/C2CP41028A</ref>
[[Image:Fig 7.png|left|400px|thumb|]]
[[Image:Fig 7.png|left|400px|thumb|]]

Current revision

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  1. De Rienzo F, Moura Barbosa AJ, Perez MA, Fernandes PA, Ramos MJ, Menziani MC. The extracellular subunit interface of the 5-HT(3) receptors: a computational alanine scanning mutagenesis study. J Biomol Struct Dyn. 2012 Jul;30(3):280-98. Epub 2012 Jun 12. PMID:22694192 doi:10.1080/07391102.2012.680029
  2. Moura Barbosa AJ, De Rienzo F, Ramos MJ, Menziani MC. Computational analysis of ligand recognition sites of homo- and heteropentameric 5-HT3 receptors. Eur J Med Chem. 2010 Nov;45(11):4746-60. Epub 2010 Jul 27. PMID:20724042 doi:10.1016/j.ejmech.2010.07.039
  3. Moreira IS, Fernandes PA, Ramos MJ. Computational alanine scanning mutagenesis--an improved methodological approach. J Comput Chem. 2007 Feb;28(3):644-54. PMID:17195156 doi:10.1002/jcc.20566
  4. De Rienzo F, Moura Barbosa AJ, Perez MA, Fernandes PA, Ramos MJ, Menziani MC. The extracellular subunit interface of the 5-HT(3) receptors: a computational alanine scanning mutagenesis study. J Biomol Struct Dyn. 2012 Jul;30(3):280-98. Epub 2012 Jun 12. PMID:22694192 doi:10.1080/07391102.2012.680029
  5. De Rienzo F, Del Cadia M, Menziani MC. A first step towards the understanding of the 5-HT(3) receptor subunit heterogeneity from a computational point of view. Phys Chem Chem Phys. 2012 Sep 28;14(36):12625-36. Epub 2012 Aug 9. PMID:22880201 doi:10.1039/c2cp41028a

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