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首页> 外文期刊>Biochimica et biophysica acta. Biomembranes >Molecular simulations and solid-state NMR investigate dynamical structure in rhodopsin activation
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Molecular simulations and solid-state NMR investigate dynamical structure in rhodopsin activation

机译:分子模拟和固态NMR研究视紫红质活化的动力学结构

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Rhodopsin has served as the primary model for studying G protein-coupled receptors (GPCRs)-the largest group in the human genome, and consequently a primary target for pharmaceutical development. Understanding the functions and activation mechanisms of GPCRs has proven to be extraordinarily difficult, as they are part of a complex signaling cascade and reside within the cell membrane. Although X-ray crystallography has recently solved several GPCR structures that may resemble the activated conformation, the dynamics and mechanism of rhodopsin activation continue to remain elusive. Notably solid-state 2H NMR spectroscopy provides key information pertinent to how local dynamics of the retinal ligand change during rhodopsin activation. When combined with molecular mechanics simulations of proteolipid membranes, a new paradigm for the rhodopsin activation process emerges. Experiment and simulation both suggest that retinal isomerization initiates the rhodopsin photocascade to yield not a single activated structure, but rather an ensemble of activated conformational states. This article is part of a Special Issue entitled: Membrane protein structure and function.
机译:视紫红质已成为研究G蛋白偶联受体(GPCR)的主要模型,GPCR是人类基因组中最大的组,因此是药物开发的主要目标。事实证明,了解GPCR的功能和激活机制非常困难,因为它们是复杂信号级联的一部分,并且位于细胞膜内。尽管X射线晶体学最近已解决了一些可能类似于激活构象的GPCR结构,但视紫红质激活的动力学和机制仍然难以捉摸。值得注意的是,固态2H NMR光谱学提供了与视紫红质激活过程中视网膜配体的局部动力学变化有关的关键信息。当结合蛋白脂质膜的分子力学模拟时,视紫红质激活过程的新范例出现了。实验和模拟均表明,视网膜异构化会引发视紫红质光级联反应,从而产生的不是单一的活化结构,而是一系列活化的构象态。本文是名为“膜蛋白结构和功能”的特刊的一部分。

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