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Modelling and simulation of biased agonism dynamics at a G protein-coupled receptor

Bridge, Lloyd; Mead, Jack; Frattini, Eugenia; Winfield, Ian; Ladds, Graham

Modelling and simulation of biased agonism dynamics at a G protein-coupled receptor Thumbnail


Authors

Lloyd Bridge Lloyd.Bridge@uwe.ac.uk
Senior Lecturer in Mathematics

Jack Mead

Eugenia Frattini

Ian Winfield

Graham Ladds



Abstract

© 2018 The Authors Theoretical models of G protein-coupled receptor (GPCR) concentration-response relationships often assume an agonist producing a single functional response via a single active state of the receptor. These models have largely been analysed assuming steady-state conditions. There is now much experimental evidence to suggest that many GPCRs can exist in multiple receptor conformations and elicit numerous functional responses, with ligands having the potential to activate different signalling pathways to varying extents–a concept referred to as biased agonism, functional selectivity or pluri-dimensional efficacy. Moreover, recent experimental results indicate a clear possibility for time-dependent bias, whereby an agonist's bias with respect to different pathways may vary dynamically. Efforts towards understanding the implications of temporal bias by characterising and quantifying ligand effects on multiple pathways will clearly be aided by extending current equilibrium binding and biased activation models to include G protein activation dynamics. Here, we present a new model of time-dependent biased agonism, based on ordinary differential equations for multiple cubic ternary complex activation models with G protein cycle dynamics. This model allows simulation and analysis of multi-pathway activation bias dynamics at a single receptor for the first time, at the level of active G protein (α GTP ), towards the analysis of dynamic functional responses. The model is generally applicable to systems with N G G proteins and N* active receptor states. Numerical simulations for N G =N * =2 reveal new insights into the effects of system parameters (including cooperativities, and ligand and receptor concentrations) on bias dynamics, highlighting new phenomena including the dynamic inter-conversion of bias direction. Further, we fit this model to ‘wet’ experimental data for two competing G proteins (G i and G s ) that become activated upon stimulation of the adenosine A 1 receptor with adenosine derivative compounds. Finally, we show that our model can qualitatively describe the temporal dynamics of this competing G protein activation.

Journal Article Type Article
Acceptance Date Jan 11, 2018
Online Publication Date Jan 12, 2018
Publication Date Apr 7, 2018
Deposit Date Jan 23, 2018
Publicly Available Date Feb 23, 2018
Journal Journal of Theoretical Biology
Print ISSN 0022-5193
Publisher Elsevier
Peer Reviewed Peer Reviewed
Volume 442
Pages 44-65
DOI https://doi.org/10.1016/j.jtbi.2018.01.010
Keywords modelling, simulation, biased, agonism, dynamics, G protein-coupled receptor, mathematical pharmacology, receptor theory, biased signalling, ordinary differential equations
Public URL https://uwe-repository.worktribe.com/output/873322
Publisher URL http://dx.doi.org/10.1016/j.jtbi.2018.01.010
Contract Date Jan 23, 2018

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