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七跨膜受体的表面等离子体共振分析

Surface plasmon resonance analysis of seven-transmembrane receptors.

作者信息

Aristotelous Tonia, Hopkins Andrew L, Navratilova Iva

机构信息

Division of Biological Chemistry and Drug Discovery, College of Life Sciences, University of Dundee, Dundee, United Kingdom.

Division of Biological Chemistry and Drug Discovery, College of Life Sciences, University of Dundee, Dundee, United Kingdom.

出版信息

Methods Enzymol. 2015;556:499-525. doi: 10.1016/bs.mie.2015.01.016. Epub 2015 Mar 21.

Abstract

G-protein coupled receptors (GPCRs) are the primary target class of currently marketed drugs, accounting for around a third of all drug targets of approved medicines. However, almost all the screening efforts for novel ligand discovery rely exclusively on cellular systems overexpressing the receptors. Current receptor assay systems are based on measurement of either ligand displacement or downstream functional responses, rather than direct observation of ligand binding. Issues of allosteric modulation, probe dependence, and functional selectivity create challenges in selecting suitable assay formats. Therefore, a method that directly measures GPCR-ligand interactions, independent of binding site, probe, and signaling pathway would be a useful primary and orthogonal screening method. An alternative ligand discovery strategy would be the direct measurement of GPCR-ligand interactions by label-free technologies, such as surface plasmon resonance (SPR). In this chapter, we summarize overview of the SPR technology and development of applications for detection of ligand binding to GPCRs using wild-type and thermostabilized receptors. We discuss the utilization of SPR as a biophysical screening method for fragment-based drug discovery for GPCRs. In particular, we show how SPR screening can detect both orthosteric and allosteric ligands with the appropriate experimental design.

摘要

G蛋白偶联受体(GPCRs)是目前上市药物的主要靶点类别,约占获批药物所有靶点的三分之一。然而,几乎所有用于发现新型配体的筛选工作都仅依赖于过表达受体的细胞系统。当前的受体检测系统基于配体置换或下游功能反应的测量,而非直接观察配体结合。变构调节、探针依赖性和功能选择性等问题给选择合适的检测形式带来了挑战。因此,一种直接测量GPCR-配体相互作用且独立于结合位点、探针和信号通路的方法将是一种有用的一级和正交筛选方法。一种替代的配体发现策略是通过无标记技术(如表面等离子体共振(SPR))直接测量GPCR-配体相互作用。在本章中,我们总结了SPR技术的概述以及使用野生型和热稳定受体检测配体与GPCRs结合的应用发展。我们讨论了将SPR用作GPCRs基于片段药物发现的生物物理筛选方法。特别是,我们展示了SPR筛选如何通过适当的实验设计检测正构和变构配体。

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