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用于配体诱导的GPCR-β-抑制蛋白2相互作用的Tango检测法:在药物发现中的应用。

Tango assay for ligand-induced GPCR-β-arrestin2 interaction: Application in drug discovery.

作者信息

Dogra Shalini, Sona Chandan, Kumar Ajeet, Yadav Prem N

机构信息

Division of Pharmacology, CSIR-Central Drug Research Institute, Lucknow, Uttar Pradesh, India.

出版信息

Methods Cell Biol. 2016;132:233-54. doi: 10.1016/bs.mcb.2015.11.001. Epub 2015 Dec 24.

DOI:10.1016/bs.mcb.2015.11.001
PMID:26928547
Abstract

G protein-coupled receptors (GPCRs) are widely known to modulate almost all physiological functions and have been demonstrated over the time as therapeutic targets for wide gamut of diseases. The design and implementation of high-throughput GPCR-based assays that permit the efficient screening of large compound libraries to discover novel drug candidates are essential for a successful drug discovery endeavor. Usually, GPCR-based functional assays depend primarily on the measurement of G protein-mediated second messenger generation. However, with advent of advanced molecular biology tools and increased understanding of GPCR signal transduction, many G protein-independent pathways such as β-arrestin translocation are being utilized to detect the activity of GPCRs. These assays provide additional information on functional selectivity (also known as biased agonism) of compounds that could be harnessed to develop pathway-selective drug candidates to reduce the adverse effects associated with given GPCR target. In this chapter, we describe the basic principle, detailed methodologies and assay setup, result analysis and data interpretations of the β-arrestin2 Tango assay, and its comparison with cell-based G protein-dependent GPCR assays, which could be employed in a simple academic setup to facilitate GPCR-based drug discovery.

摘要

G蛋白偶联受体(GPCRs)广泛参与几乎所有的生理功能调节,长期以来一直被证明是多种疾病的治疗靶点。设计并实施基于GPCR的高通量检测方法,能够高效筛选大型化合物库以发现新型候选药物,这对于成功的药物研发至关重要。通常,基于GPCR的功能检测主要依赖于对G蛋白介导的第二信使生成的测量。然而,随着先进分子生物学工具的出现以及对GPCR信号转导理解的加深,许多不依赖G蛋白的途径,如β-抑制蛋白转位,正被用于检测GPCR的活性。这些检测方法提供了关于化合物功能选择性(也称为偏向性激动作用)的额外信息,可用于开发途径选择性候选药物,以减少与特定GPCR靶点相关的不良反应。在本章中,我们描述了β-抑制蛋白2 Tango检测的基本原理、详细方法和检测设置、结果分析及数据解读,以及它与基于细胞的G蛋白依赖性GPCR检测的比较,这些内容可在简单的学术环境中用于促进基于GPCR的药物研发。

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