Muntean Brian S, Patil Dipak N, Madoux Franck, Fossetta James, Scampavia Louis, Spicer Timothy P, Martemyanov Kirill A
1 Department of Neuroscience, The Scripps Research Institute , Jupiter, Florida.
2 Department of Molecular Medicine, The Scripps Research Institute , Jupiter, Florida.
Assay Drug Dev Technol. 2018 Apr;16(3):150-161. doi: 10.1089/adt.2017.839.
G protein-coupled receptors (GPCRs) are excellent drug targets exploited by majority of the Food and Drug Administration-approved medications, but when modulated, are often accompanied by significant adverse effects. Targeting of other elements in GPCR pathways for improved safety and efficacy is thus an unmet need. The strength of GPCR signaling is tightly regulated by regulators of G protein signaling (RGS) proteins, making them attractive drug targets. We focused on a prominent RGS complex in the brain consisting of RGS7 and its binding partners Gβ5 and R7BP. These complexes play critical roles in regulating multiple GPCRs and essential physiological processes, yet no small molecule modulators are currently available to modify its function. In this study, we report a novel high-throughput approach to screen for small molecule modulators of the intramolecular transitions in the RGS7/Gβ5/R7BP complex known to be involved in its allosteric regulation. We developed a time-resolved fluorescence energy transfer-based in vitro assay that utilizes full-length recombinant proteins and shows consistency, excellent assay statistics, and high level of sensitivity. We demonstrated the potential of this approach by screening two compound libraries (LOPAC 1280 and MicroSource Spectrum). This study confirms the feasibility of the chosen strategy for identifying small molecule modulators of RGS7/Gβ5/R7BP complex for impacting signaling downstream of the GPCRs.
G蛋白偶联受体(GPCRs)是绝佳的药物靶点,大多数美国食品药品监督管理局批准的药物都以此为靶点,但在对其进行调节时,往往会伴随显著的副作用。因此,针对GPCR信号通路中的其他元件以提高安全性和疗效是一个尚未满足的需求。G蛋白信号调节剂(RGS)蛋白对GPCR信号强度进行严格调控,使其成为有吸引力的药物靶点。我们聚焦于大脑中一种由RGS7及其结合伴侣Gβ5和R7BP组成的重要RGS复合物。这些复合物在调节多种GPCR和基本生理过程中发挥关键作用,但目前尚无小分子调节剂可用于改变其功能。在本研究中,我们报告了一种新型的高通量方法,用于筛选已知参与变构调节的RGS7/Gβ5/R7BP复合物分子内转变的小分子调节剂。我们开发了一种基于时间分辨荧光能量转移的体外检测方法,该方法利用全长重组蛋白,具有一致性、出色的检测统计学特性和高灵敏度。我们通过筛选两个化合物库(LOPAC 1280和MicroSource Spectrum)证明了这种方法的潜力。这项研究证实了所选策略对于鉴定RGS7/Gβ5/R7BP复合物的小分子调节剂以影响GPCR下游信号传导的可行性。