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受体- G蛋白界面的结构动力学在信号转导中的作用

Role of Structural Dynamics at the Receptor G Protein Interface for Signal Transduction.

作者信息

Rose Alexander S, Zachariae Ulrich, Grubmüller Helmut, Hofmann Klaus Peter, Scheerer Patrick, Hildebrand Peter W

机构信息

Institute of Medical Physics and Biophysics (CC2), Universitätsmedizin Berlin, Charitéplatz 1, 10098, Berlin, Germany.

Team ProteiInformatics, Universitätsmedizin Berlin, Charitéplatz 1, 10098, Berlin, Germany.

出版信息

PLoS One. 2015 Nov 25;10(11):e0143399. doi: 10.1371/journal.pone.0143399. eCollection 2015.

Abstract

GPCRs catalyze GDP/GTP exchange in the α-subunit of heterotrimeric G proteins (Gαßγ) through displacement of the Gα C-terminal α5 helix, which directly connects the interface of the active receptor (R*) to the nucleotide binding pocket of G. Hydrogen-deuterium exchange mass spectrometry and kinetic analysis of R* catalysed G protein activation have suggested that displacement of α5 starts from an intermediate GDP bound complex (R*•GGDP). To elucidate the structural basis of receptor-catalysed displacement of α5, we modelled the structure of R*•GGDP. A flexible docking protocol yielded an intermediate R*•GGDP complex, with a similar overall arrangement as in the X-ray structure of the nucleotide free complex (R*•Gempty), however with the α5 C-terminus (GαCT) forming different polar contacts with R*. Starting molecular dynamics simulations of GαCT bound to R* in the intermediate position, we observe a screw-like motion, which restores the specific interactions of α5 with R* in R*•Gempty. The observed rotation of α5 by 60° is in line with experimental data. Reformation of hydrogen bonds, water expulsion and formation of hydrophobic interactions are driving forces of the α5 displacement. We conclude that the identified interactions between R* and G protein define a structural framework in which the α5 displacement promotes direct transmission of the signal from R* to the GDP binding pocket.

摘要

G蛋白偶联受体(GPCRs)通过Gα亚基C末端α5螺旋的位移,催化异源三聚体G蛋白(Gαßγ)中的GDP/GTP交换,该螺旋直接将活性受体(R*)的界面与G蛋白的核苷酸结合口袋相连。氢氘交换质谱法和R催化G蛋白活化的动力学分析表明,α5的位移始于结合GDP的中间复合物(R•GGDP)。为了阐明受体催化α5位移的结构基础,我们构建了R*•GGDP的结构模型。一种灵活的对接方案产生了一个中间的R*•GGDP复合物,其总体排列与无核苷酸复合物(R*•Gempty)的X射线结构相似,但α5的C末端(GαCT)与R形成了不同的极性接触。对处于中间位置与R结合的GαCT进行初始分子动力学模拟时,我们观察到一种螺旋状运动,该运动恢复了α5在R*•Gempty中与R的特定相互作用。观察到的α5旋转60°与实验数据一致。氢键的重新形成、水的排出和疏水相互作用的形成是α5位移的驱动力。我们得出结论,R与G蛋白之间确定的相互作用定义了一个结构框架,其中α5的位移促进了信号从R*直接传递到GDP结合口袋。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e338/4659624/e489059f7ed5/pone.0143399.g001.jpg

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