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G蛋白偶联受体上偏向激动剂动力学的建模与模拟

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

作者信息

Bridge L J, Mead J, Frattini E, Winfield I, Ladds G

机构信息

Department of Mathematics, Swansea University, Singleton Park, Swansea SA2 8PP, UK; Department of Engineering Design and Mathematics, University of the West of England, Frenchay Campus, Bristol BS16 1QY, UK.

Department of Pharmacology, University of Cambridge, Tennis Court Road, Cambridge CB2 1PD, UK.

出版信息

J Theor Biol. 2018 Apr 7;442:44-65. doi: 10.1016/j.jtbi.2018.01.010. Epub 2018 Jan 12.

Abstract

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), towards the analysis of dynamic functional responses. The model is generally applicable to systems with N G proteins and N* active receptor states. Numerical simulations for N=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 and G) that become activated upon stimulation of the adenosine A receptor with adenosine derivative compounds. Finally, we show that our model can qualitatively describe the temporal dynamics of this competing G protein activation.

摘要

G蛋白偶联受体(GPCR)浓度-反应关系的理论模型通常假定激动剂通过受体的单一活性状态产生单一功能反应。这些模型在很大程度上是在稳态条件下进行分析的。现在有许多实验证据表明,许多GPCR可以以多种受体构象存在并引发多种功能反应,配体有可能不同程度地激活不同的信号通路——这一概念被称为偏向激动、功能选择性或多维度效能。此外,最近的实验结果表明存在时间依赖性偏向的明显可能性,即激动剂对不同通路的偏向可能会动态变化。通过将当前的平衡结合和偏向激活模型扩展到包括G蛋白激活动力学,来理解时间依赖性偏向对多条通路的影响,显然将有助于这方面的研究。在此,我们基于具有G蛋白循环动力学的多个三次三元复合物激活模型的常微分方程,提出了一种时间依赖性偏向激动的新模型。该模型首次允许在活性G蛋白(α)水平上对单个受体的多通路激活偏向动力学进行模拟和分析,以研究动态功能反应。该模型一般适用于具有N个G蛋白和N*个活性受体状态的系统。N = N = 2时的数值模拟揭示了系统参数(包括协同性、配体和受体浓度)对偏向动力学影响的新见解,突出了包括偏向方向动态相互转换在内的新现象。此外,我们将该模型与用腺苷衍生物化合物刺激腺苷A受体时被激活的两种竞争性G蛋白(G和G)的“湿”实验数据进行拟合。最后,我们表明我们的模型可以定性描述这种竞争性G蛋白激活的时间动态。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3f53/5811930/aea89f8d2882/gr1.jpg

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