Literature DB >> 10866830

Conserved aromatic residues in the transmembrane region VI of the V1a vasopressin receptor differentiate agonist vs. antagonist ligand binding.

N Cotte1, M N Balestre, A Aumelas, E Mahé, S Phalipou, D Morin, M Hibert, M Manning, T Durroux, C Barberis, B Mouillac.   

Abstract

Despite their opposite effects on signal transduction, the nonapeptide hormone arginine-vasopressin (AVP) and its V1a receptor-selective cyclic peptide antagonist d(CH2)5[Tyr(Me)2]AVP display homologous primary structures, differing only at residues 1 and 2. These structural similarities led us to hypothesize that both ligands could interact with the same binding pocket in the V1a receptor. To determine receptor residues responsible for discriminating binding of agonist and antagonist ligands, we performed site-directed mutagenesis of conserved aromatic and hydrophilic residues as well as nonconserved residues, all located in the transmembrane binding pocket of the V1a receptor. Mutation of aromatic residues of transmembrane region VI (W304, F307, F308) reduced affinity for the d(CH2)5[Tyr(Me)2]AVP and markedly decreased affinity for the unrelated strongly hydrophobic V1a-selective nonpeptide antagonist SR 49059. Replacement of these aromatic residues had no effect on AVP binding, but increased AVP-induced coupling efficacy of the receptor for its G protein. Mutating hydrophilic residues Q108, K128 and Q185 in transmembrane regions II, III and IV, respectively, led to a decrease in affinity for both agonists and antagonists. Finally, the nonconserved residues T333 and A334 in transmembrane region VII, controlled the V1a/V2 binding selectivity for both nonpeptide and cyclic peptide antagonists. Thus, because conserved aromatic residues of the V1a receptor binding pocket seem essential for antagonists and do not contribute at all to the binding of agonists, we propose that these residues differentiate agonist vs. antagonist ligand binding.

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Year:  2000        PMID: 10866830     DOI: 10.1046/j.1432-1033.2000.01472.x

Source DB:  PubMed          Journal:  Eur J Biochem        ISSN: 0014-2956


  11 in total

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Authors:  A Giełdoń; R Kaźmierkiewicz; R Slusarz; J Ciarkowski
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2.  Identification of avian vasotocin receptor subtype-specific antagonists involved in the stress response of the chicken, Gallus gallus.

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3.  The Concise Guide to PHARMACOLOGY 2013/14: G protein-coupled receptors.

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4.  Prediction of molecular interactions and physicochemical properties relevant for vasopressin V2 receptor antagonism.

Authors:  Ania de la Nuez Veulens; Yoanna M Álvarez Ginarte; Rolando E Rodríguez Fernandez; Fabrice Leclerc; Luis A Montero Cabrera
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Review 5.  Fluorescent agonists and antagonists for vasopressin/oxytocin G protein-coupled receptors: usefulness in ligand screening assays and receptor studies.

Authors:  B Mouillac; M Manning; T Durroux
Journal:  Mini Rev Med Chem       Date:  2008-09       Impact factor: 3.862

6.  Identification of antagonists to the vasotocin receptor sub-type 4 (VT4R) involved in stress by molecular modelling and verification using anterior pituitary cells.

Authors:  Srinivas Jayanthi; Seong Wook Kang; Daniel Bingham; Brian A Tessaro; Thallapuranam K Suresh Kumar; Wayne J Kuenzel
Journal:  J Biomol Struct Dyn       Date:  2013-05-15

7.  Structural Elements in the Gαs and Gαq C Termini That Mediate Selective G Protein-coupled Receptor (GPCR) Signaling.

Authors:  Ansley Semack; Manbir Sandhu; Rabia U Malik; Nagarajan Vaidehi; Sivaraj Sivaramakrishnan
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8.  Cryo-electron microscopy structure of the antidiuretic hormone arginine-vasopressin V2 receptor signaling complex.

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Review 9.  The Biology of Vasopressin.

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Journal:  Biomedicines       Date:  2021-01-18

10.  Investigation of Elemental Mass Spectrometry in Pharmacology for Peptide Quantitation at Femtomolar Levels.

Authors:  Emmanuelle Cordeau; Carine Arnaudguilhem; Brice Bouyssiere; Agnès Hagège; Jean Martinez; Gilles Subra; Sonia Cantel; Christine Enjalbal
Journal:  PLoS One       Date:  2016-06-23       Impact factor: 3.240

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