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Nature-inspired dimerization as a strategy to modulate neuropeptide pharmacology exemplified with vasopressin and oxytocin

Vasopressin (VP) and oxytocin (OT) are cyclic neuropeptides that regulate fundamental physiological functions via four G protein-coupled receptors, V(1a)R, V(1b)R, V(2)R, and OTR. Ligand development remains challenging for these receptors due to complex structure–activity relationships. Here, we inv...

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Autores principales: Dekan, Zoltan, Kremsmayr, Thomas, Keov, Peter, Godin, Mathilde, Teakle, Ngari, Dürrauer, Leopold, Xiang, Huang, Gharib, Dalia, Bergmayr, Christian, Hellinger, Roland, Gay, Marina, Vilaseca, Marta, Kurzbach, Dennis, Albericio, Fernando, Alewood, Paul F., Gruber, Christian W., Muttenthaler, Markus
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8179488/
https://www.ncbi.nlm.nih.gov/pubmed/34163676
http://dx.doi.org/10.1039/d0sc05501h
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author Dekan, Zoltan
Kremsmayr, Thomas
Keov, Peter
Godin, Mathilde
Teakle, Ngari
Dürrauer, Leopold
Xiang, Huang
Gharib, Dalia
Bergmayr, Christian
Hellinger, Roland
Gay, Marina
Vilaseca, Marta
Kurzbach, Dennis
Albericio, Fernando
Alewood, Paul F.
Gruber, Christian W.
Muttenthaler, Markus
author_facet Dekan, Zoltan
Kremsmayr, Thomas
Keov, Peter
Godin, Mathilde
Teakle, Ngari
Dürrauer, Leopold
Xiang, Huang
Gharib, Dalia
Bergmayr, Christian
Hellinger, Roland
Gay, Marina
Vilaseca, Marta
Kurzbach, Dennis
Albericio, Fernando
Alewood, Paul F.
Gruber, Christian W.
Muttenthaler, Markus
author_sort Dekan, Zoltan
collection PubMed
description Vasopressin (VP) and oxytocin (OT) are cyclic neuropeptides that regulate fundamental physiological functions via four G protein-coupled receptors, V(1a)R, V(1b)R, V(2)R, and OTR. Ligand development remains challenging for these receptors due to complex structure–activity relationships. Here, we investigated dimerization as a strategy for developing ligands with novel pharmacology. We regioselectively synthesised and systematically studied parallel, antiparallel and N- to C-terminal cyclized homo- and heterodimer constructs of VP, OT and dVDAVP (1-deamino-4-valine-8-d-arginine-VP). All disulfide-linked dimers, except for the head-to-tail cyclized constructs, retained nanomolar potency despite the structural implications of dimerization. Our results support a single chain interaction for receptor activation. Dimer orientation had little impact on activity, except for the dVDAVP homodimers, where an antagonist to agonist switch was observed at the V(1a)R. This study provides novel insights into the structural requirements of VP/OT receptor activation and spotlights dimerization as a strategy to modulate pharmacology, a concept also frequently observed in nature.
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spelling pubmed-81794882021-06-22 Nature-inspired dimerization as a strategy to modulate neuropeptide pharmacology exemplified with vasopressin and oxytocin Dekan, Zoltan Kremsmayr, Thomas Keov, Peter Godin, Mathilde Teakle, Ngari Dürrauer, Leopold Xiang, Huang Gharib, Dalia Bergmayr, Christian Hellinger, Roland Gay, Marina Vilaseca, Marta Kurzbach, Dennis Albericio, Fernando Alewood, Paul F. Gruber, Christian W. Muttenthaler, Markus Chem Sci Chemistry Vasopressin (VP) and oxytocin (OT) are cyclic neuropeptides that regulate fundamental physiological functions via four G protein-coupled receptors, V(1a)R, V(1b)R, V(2)R, and OTR. Ligand development remains challenging for these receptors due to complex structure–activity relationships. Here, we investigated dimerization as a strategy for developing ligands with novel pharmacology. We regioselectively synthesised and systematically studied parallel, antiparallel and N- to C-terminal cyclized homo- and heterodimer constructs of VP, OT and dVDAVP (1-deamino-4-valine-8-d-arginine-VP). All disulfide-linked dimers, except for the head-to-tail cyclized constructs, retained nanomolar potency despite the structural implications of dimerization. Our results support a single chain interaction for receptor activation. Dimer orientation had little impact on activity, except for the dVDAVP homodimers, where an antagonist to agonist switch was observed at the V(1a)R. This study provides novel insights into the structural requirements of VP/OT receptor activation and spotlights dimerization as a strategy to modulate pharmacology, a concept also frequently observed in nature. The Royal Society of Chemistry 2021-02-04 /pmc/articles/PMC8179488/ /pubmed/34163676 http://dx.doi.org/10.1039/d0sc05501h Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Dekan, Zoltan
Kremsmayr, Thomas
Keov, Peter
Godin, Mathilde
Teakle, Ngari
Dürrauer, Leopold
Xiang, Huang
Gharib, Dalia
Bergmayr, Christian
Hellinger, Roland
Gay, Marina
Vilaseca, Marta
Kurzbach, Dennis
Albericio, Fernando
Alewood, Paul F.
Gruber, Christian W.
Muttenthaler, Markus
Nature-inspired dimerization as a strategy to modulate neuropeptide pharmacology exemplified with vasopressin and oxytocin
title Nature-inspired dimerization as a strategy to modulate neuropeptide pharmacology exemplified with vasopressin and oxytocin
title_full Nature-inspired dimerization as a strategy to modulate neuropeptide pharmacology exemplified with vasopressin and oxytocin
title_fullStr Nature-inspired dimerization as a strategy to modulate neuropeptide pharmacology exemplified with vasopressin and oxytocin
title_full_unstemmed Nature-inspired dimerization as a strategy to modulate neuropeptide pharmacology exemplified with vasopressin and oxytocin
title_short Nature-inspired dimerization as a strategy to modulate neuropeptide pharmacology exemplified with vasopressin and oxytocin
title_sort nature-inspired dimerization as a strategy to modulate neuropeptide pharmacology exemplified with vasopressin and oxytocin
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8179488/
https://www.ncbi.nlm.nih.gov/pubmed/34163676
http://dx.doi.org/10.1039/d0sc05501h
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