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3
Crystal structure of a photoactivated deprotonated intermediate of rhodopsin.视紫红质光激活去质子化中间体的晶体结构。
Proc Natl Acad Sci U S A. 2006 Oct 31;103(44):16123-8. doi: 10.1073/pnas.0608022103. Epub 2006 Oct 23.
4
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Relative strength of cation-pi vs salt-bridge interactions: the Gtalpha(340-350) peptide/rhodopsin system.阳离子-π相互作用与盐桥相互作用的相对强度:Gtα(340 - 350)肽/视紫红质系统
J Am Chem Soc. 2006 Jun 14;128(23):7531-41. doi: 10.1021/ja058513z.
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Modeling flexible loops in the dark-adapted and activated states of rhodopsin, a prototypical G-protein-coupled receptor.视紫红质(一种典型的G蛋白偶联受体)在暗适应和激活状态下的柔性环建模。
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Structure of bovine rhodopsin in a trigonal crystal form.三角晶型牛视紫红质的结构
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确定α-转导蛋白C末端片段与光激活视紫红质之间的界面。

Defining the interface between the C-terminal fragment of alpha-transducin and photoactivated rhodopsin.

作者信息

Taylor Christina M, Nikiforovich Gregory V, Marshall Garland R

机构信息

Department of Biochemistry and Molecular Biophysics, Washington University School of Medicine, St. Louis, Missouri 63110, USA.

出版信息

Biophys J. 2007 Jun 15;92(12):4325-34. doi: 10.1529/biophysj.106.099242. Epub 2007 Mar 9.

DOI:10.1529/biophysj.106.099242
PMID:17351008
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1877773/
Abstract

A novel combination of experimental data and extensive computational modeling was used to explore probable protein-protein interactions between photoactivated rhodopsin (R*) and experimentally determined R*-bound structures of the C-terminal fragment of alpha-transducin (Gt(alpha)(340-350)) and its analogs. Rather than using one set of loop structures derived from the dark-adapted rhodopsin state, R* was modeled in this study using various energetically feasible sets of intracellular loop (IC loop) conformations proposed previously in another study. The R*-bound conformation of Gt(alpha)(340-350) and several analogs were modeled using experimental transferred nuclear Overhauser effect data derived upon binding R*. Gt(alpha)(340-350) and its analogs were docked to various conformations of the intracellular loops, followed by optimization of side-chain spatial positions in both R* and Gt(alpha)(340-350) to obtain low-energy complexes. Finally, the structures of each complex were subjected to energy minimization using the OPLS/GBSA force field. The resulting residue-residue contacts at the interface between R* and Gt(alpha)(340-350) were validated by comparison with available experimental data, primarily from mutational studies. Computational modeling performed for Gt(alpha)(340-350) and its analogs when bound to R* revealed a consensus of general residue-residue interactions, necessary for efficient complex formation between R* and its Gt(alpha) recognition motif.

摘要

一种将实验数据与广泛的计算建模相结合的新方法,被用于探索光激活视紫红质(R*)与实验确定的α-转导蛋白(Gt(α)(340 - 350))C端片段及其类似物的R结合结构之间可能存在的蛋白质-蛋白质相互作用。在本研究中,R并非使用源自暗适应视紫红质状态的一组环结构,而是采用了先前另一项研究中提出的各种能量上可行的细胞内环(IC环)构象集进行建模。利用结合R后得到的实验性转移核Overhauser效应数据,对Gt(α)(340 - 350)及其几种类似物的R结合构象进行建模。将Gt(α)(340 - 350)及其类似物对接至细胞内环的各种构象,随后优化R和Gt(α)(340 - 350)中侧链的空间位置,以获得低能量复合物。最后,使用OPLS/GBSA力场对每个复合物的结构进行能量最小化处理。通过与主要来自突变研究的现有实验数据进行比较,验证了R与Gt(α)(340 - 350)界面处所得的残基-残基接触。对Gt(α)(340 - 350)及其类似物与R结合时进行的计算建模揭示了一般残基-残基相互作用的一致性,这对于R与其Gt(α)识别基序之间高效形成复合物是必要的。