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Characterization of G Protein-coupled Receptors by a Fluorescence-based Calcium Mobilization Assay

机译:G蛋白偶联受体的表征基于荧光的钙动员测定。

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摘要

For more than 20 years, reverse pharmacology has been the preeminent strategy to discover the activating ligands of orphan G protein-coupled receptors (GPCRs). The onset of a reverse pharmacology assay is the cloning and subsequent transfection of a GPCR of interest in a cellular expression system. The heterologous expressed receptor is then challenged with a compound library of candidate ligands to identify the receptor-activating ligand(s). Receptor activation can be assessed by measuring changes in concentration of second messenger reporter molecules, like calcium or cAMP. The fluorescence-based calcium mobilization assay described here is a frequently used medium-throughput reverse pharmacology assay. The orphan GPCR is transiently expressed in human embryonic kidney 293T (HEK293T) cells and a promiscuous Gα16 construct is co-transfected. Following ligand binding, activation of the Gα16 subunit induces the release of calcium from the endoplasmic reticulum. Prior to ligand screening, the receptor-expressing cells are loaded with a fluorescent calcium indicator, Fluo-4 acetoxymethyl. The fluorescent signal of Fluo-4 is negligible in cells under resting conditions, but can be amplified more than a 100-fold upon the interaction with calcium ions that are released after receptor activation. The described technique does not require the time-consuming establishment of stably transfected cell lines in which the transfected genetic material is integrated into the host cell genome. Instead, a transient transfection, generating temporary expression of the target gene, is sufficient to perform the screening assay. The setup allows medium-throughput screening of hundreds of compounds. Co-transfection of the promiscuous Gα16, which couples to most GPCRs, allows the intracellular signaling pathway to be redirected towards the release of calcium, regardless of the native signaling pathway in endogenous settings. The HEK293T cells are easy to handle and have proven their efficacy throughout the years in receptor deorphanization assays. However, optimization of the assay for specific receptors may remain necessary.
机译:20多年来,反向药理学一直是发现孤儿G蛋白偶联受体(GPCR)的激活配体的主要策略。反向药理分析的开始是在细胞表达系统中克隆并随后转染目标GPCR。然后用候选配体的化合物文库挑战异源表达的受体,以鉴定受体活化性配体。可以通过测量第二信使报告分子(如钙或cAMP)的浓度变化来评估受体的活化。本文所述的基于荧光的钙动员测定法是一种常用的中通量反向药理测定法。孤儿GPCR在人胚胎肾293T(HEK293T)细胞中瞬时表达,并且混杂的Gα16构建体被共转染。配体结合后,Gα16亚基的激活诱导了钙从内质网的释放。在配体筛选之前,表达受体的细胞装有荧光钙指示剂Fluo-4乙酰氧基甲基。在静止条件下,Fluo-4的荧光信号在细胞中可忽略不计,但在与受体激活后释放的钙离子相互作用后,可放大100倍以上。所描述的技术不需要费时的建立稳定转染的细胞系,其中将转染的遗传材料整合到宿主细胞基因组中。相反,产生靶基因临时表达的瞬时转染足以进行筛选测定。该设置允许中等通量筛选数百种化合物。与大多数GPCR偶联的混杂Gα16的共转染,可将细胞内信号转导途径重定向到钙的释放,而与内源环境中的天然信号转导途径无关。 HEK293T细胞易于处理,并且多年来在受体去孤儿化验中证明了其功效。但是,仍然有必要针对特定​​受体优化分析。

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