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Engineering of Challenging G Protein-Coupled Receptors for Structure Determination and Biophysical Studies

机译:挑战性G蛋白偶联受体的工程,用于结构测定和生物物理学研究

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摘要

Membrane proteins such as G protein-coupled receptors (GPCRs) exert fundamental biological functions and are involved in a multitude of physiological responses, making these receptors ideal drug targets. Drug discovery programs targeting GPCRs have been greatly facilitated by the emergence of high-resolution structures and the resulting opportunities to identify new chemical entities through structure-based drug design. To enable the determination of high-resolution structures of GPCRs, most receptors have to be engineered to overcome intrinsic hurdles such as their poor stability and low expression levels. In recent years, multiple engineering approaches have been developed to specifically address the technical difficulties of working with GPCRs, which are now beginning to make more challenging receptors accessible to detailed studies. Importantly, successfully engineered GPCRs are not only valuable in x-ray crystallography, but further enable biophysical studies with nuclear magnetic resonance spectroscopy, surface plasmon resonance, native mass spectrometry, and fluorescence anisotropy measurements, all of which are important for the detailed mechanistic understanding, which is the prerequisite for successful drug design. Here, we summarize engineering strategies based on directed evolution to reduce workload and enable biophysical experiments of particularly challenging GPCRs.
机译:膜蛋白例如G蛋白偶联受体(GPCR)发挥基本的生物学功能和参与的生理反应的多种,使得这些受体理想的药物靶标。针对GPCR的药物开发计划已经通过高分辨率结构的出现和产生的机会,通过基于结构的药物设计,以确定新的化学实体被极大地方便。为了使GPCR的高分辨率结构的确定,最受体必须被改造以克服固有的障碍如它们的稳定性差,低表达水平。近年来,多个工程方法已经开发出专门解决与GPCR的,目前已开始进行更具挑战性受体接触到详细的研究工作的技术困难。重要的是,成功策划GPCR是不仅在X射线晶体学有价值的,但还能够与核磁共振光谱学,表面等离子体共振,本土质谱和荧光各向异性测量,所有这一切都为详细的机械理解重要的生物物理研究,这是成功的药物设计的前提。在这里,我们总结了基于定向进化,以减少工作量,使特别具有挑战性的GPCR的生物物理实验工程策略。

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