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视紫红质:近期结构研究的见解

Rhodopsin: insights from recent structural studies.

作者信息

Sakmar Thomas P, Menon Santosh T, Marin Ethan P, Awad Elias S

机构信息

Howard Hughes Medical Institute, Laboratory of Molecular Biology and Biochemistry, The Rockefeller University, New York, NY 10021, USA.

出版信息

Annu Rev Biophys Biomol Struct. 2002;31:443-84. doi: 10.1146/annurev.biophys.31.082901.134348. Epub 2001 Oct 25.

Abstract

The recent report of the crystal structure of rhodopsin provides insights concerning structure-activity relationships in visual pigments and related G protein-coupled receptors (GPCRs). The seven transmembrane helices of rhodopsin are interrupted or kinked at multiple sites. An extensive network of interhelical interactions stabilizes the ground state of the receptor. The ligand-binding pocket of rhodopsin is remarkably compact, and several chromophore-protein interactions were not predicted from mutagenesis or spectroscopic studies. The helix movement model of receptor activation, which likely applies to all GPCRs of the rhodopsin family, is supported by several structural elements that suggest how light-induced conformational changes in the ligand-binding pocket are transmitted to the cytoplasmic surface. The cytoplasmic domain of the receptor includes a helical domain extending from the seventh transmembrane segment parallel to the bilayer surface. The cytoplasmic surface appears to be approximately large enough to bind to the transducin heterotrimer in a one-to-one complex. The structural basis for several unique biophysical properties of rhodopsin, including its extremely low dark noise level and high quantum efficiency, can now be addressed using a combination of structural biology and various spectroscopic methods. Future high-resolution structural studies of rhodopsin and other GPCRs will form the basis to elucidate the detailed molecular mechanism of GPCR-mediated signal transduction.

摘要

最近关于视紫红质晶体结构的报告为视觉色素及相关G蛋白偶联受体(GPCRs)的构效关系提供了见解。视紫红质的七个跨膜螺旋在多个位点中断或弯曲。广泛的螺旋间相互作用网络稳定了受体的基态。视紫红质的配体结合口袋非常紧凑,一些发色团-蛋白质相互作用无法通过诱变或光谱研究预测。受体激活的螺旋运动模型可能适用于视紫红质家族的所有GPCRs,有几个结构元件支持这一模型,这些元件表明配体结合口袋中光诱导的构象变化是如何传递到细胞质表面的。受体的细胞质结构域包括一个从第七个跨膜段平行于双层表面延伸的螺旋结构域。细胞质表面似乎大到足以以一对一复合物的形式结合转导素异源三聚体。现在可以结合结构生物学和各种光谱方法来研究视紫红质几种独特生物物理性质的结构基础,包括其极低的暗噪声水平和高量子效率。未来对视紫红质和其他GPCRs的高分辨率结构研究将为阐明GPCR介导的信号转导的详细分子机制奠定基础。

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