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A New Molecular Mechanism To Engineer Protean Agonism at a G Protein–Coupled Receptor

Authors :
Klaus Mohr
Evi Kostenis
Mathias Muth
Ramona Schrage
Jessica Kloeckner
Janine Holze
Anna De Min
Carlo Matera
Ulrike Holzgrabe
Terry P. Kenakin
Clelia Dallanoce
Andreas Bock
Marco De Amici
Christian Traenkle
Source :
Molecular Pharmacology. 91:348-356
Publication Year :
2017
Publisher :
American Society for Pharmacology & Experimental Therapeutics (ASPET), 2017.

Abstract

Protean agonists are of great pharmacological interest as their behavior may change in magnitude and direction depending on the constitutive activity of a receptor. Yet, this intriguing phenomenon has been poorly described and understood, due to the lack of stable experimental systems and design strategies. In this study, we overcome both limitations: First, we demonstrate that modulation of the ionic strength in a defined experimental set-up allows for analysis of G protein-coupled receptor activation in the absence and presence of a specific amount of spontaneous receptor activity using the muscarinic M2 acetylcholine receptor as a model. Second, we employ this assay system to show that a dualsteric design principle, that is, molecular probes, carrying two pharmacophores to simultaneously adopt orthosteric and allosteric topography within a G protein-coupled receptor, may represent a novel approach to achieve protean agonism. We pinpoint three molecular requirements within dualsteric compounds that elicit protean agonism at the muscarinic M2 acetylcholine receptor. Using radioligand-binding and functional assays, we posit that dynamic ligand binding may be the mechanism underlying protean agonism of dualsteric ligands. Our findings provide both new mechanistic insights into the still enigmatic phenomenon of protean agonism and a rationale for the design of such compounds for a G protein-coupled receptor.

Details

ISSN :
15210111 and 0026895X
Volume :
91
Database :
OpenAIRE
Journal :
Molecular Pharmacology
Accession number :
edsair.doi.dedup.....3a644b980d27e465166376ae3ab29feb
Full Text :
https://doi.org/10.1124/mol.116.107276