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G蛋白偶联受体与Gi蛋白相互作用的结构基础:大麻素CB2受体 - Gi蛋白复合物的形成

Structural basis of G protein-coupled receptor-Gi protein interaction: formation of the cannabinoid CB2 receptor-Gi protein complex.

作者信息

Mnpotra Jagjeet S, Qiao Zhuanhong, Cai Jian, Lynch Diane L, Grossfield Alan, Leioatts Nicholas, Hurst Dow P, Pitman Michael C, Song Zhao-Hui, Reggio Patricia H

机构信息

From the Department of Chemistry and Biochemistry, University of North Carolina, Greensboro, North Carolina 27402.

the Department of Pharmacology and Toxicology, University of Louisville School of Medicine, Louisville, Kentucky 40292.

出版信息

J Biol Chem. 2014 Jul 18;289(29):20259-72. doi: 10.1074/jbc.M113.539916. Epub 2014 May 22.

Abstract

In this study, we applied a comprehensive G protein-coupled receptor-Gαi protein chemical cross-linking strategy to map the cannabinoid receptor subtype 2 (CB2)-Gαi interface and then used molecular dynamics simulations to explore the dynamics of complex formation. Three cross-link sites were identified using LC-MS/MS and electrospray ionization-MS/MS as follows: 1) a sulfhydryl cross-link between C3.53(134) in TMH3 and the Gαi C-terminal i-3 residue Cys-351; 2) a lysine cross-link between K6.35(245) in TMH6 and the Gαi C-terminal i-5 residue, Lys-349; and 3) a lysine cross-link between K5.64(215) in TMH5 and the Gαi α4β6 loop residue, Lys-317. To investigate the dynamics and nature of the conformational changes involved in CB2·Gi complex formation, we carried out microsecond-time scale molecular dynamics simulations of the CB2 R*·Gαi1β1γ2 complex embedded in a 1-palmitoyl-2-oleoyl-phosphatidylcholine bilayer, using cross-linking information as validation. Our results show that although molecular dynamics simulations started with the G protein orientation in the β2-AR*·Gαsβ1γ2 complex crystal structure, the Gαi1β1γ2 protein reoriented itself within 300 ns. Two major changes occurred as follows. 1) The Gαi1 α5 helix tilt changed due to the outward movement of TMH5 in CB2 R*. 2) A 25° clockwise rotation of Gαi1β1γ2 underneath CB2 R* occurred, with rotation ceasing when Pro-139 (IC-2 loop) anchors in a hydrophobic pocket on Gαi1 (Val-34, Leu-194, Phe-196, Phe-336, Thr-340, Ile-343, and Ile-344). In this complex, all three experimentally identified cross-links can occur. These findings should be relevant for other class A G protein-coupled receptors that couple to Gi proteins.

摘要

在本研究中,我们应用了一种全面的G蛋白偶联受体 - Gαi蛋白化学交联策略来绘制大麻素受体2型(CB2) - Gαi界面,然后使用分子动力学模拟来探索复合物形成的动力学。使用液相色谱 - 串联质谱(LC - MS/MS)和电喷雾电离质谱(ESI - MS/MS)鉴定出三个交联位点如下:1)跨膜螺旋3(TMH3)中的C3.53(134)与Gαi C末端i - 3残基半胱氨酸 - 351之间的巯基交联;2)跨膜螺旋6(TMH6)中的K6.35(245)与Gαi C末端i - 5残基赖氨酸 - 349之间的赖氨酸交联;3)跨膜螺旋5(TMH5)中的K5.64(215)与Gαiα4β6环残基赖氨酸 - 317之间的赖氨酸交联。为了研究CB2·Gi复合物形成过程中构象变化的动力学和性质,我们以交联信息作为验证,对嵌入1 - 棕榈酰 - 2 - 油酰 - 磷脂酰胆碱双层中的CB2 R*·Gαi1β1γ2复合物进行了微秒级时间尺度的分子动力学模拟。我们的结果表明,尽管分子动力学模拟从β2 - AR*·Gαsβ1γ2复合物晶体结构中的G蛋白方向开始,但Gαi1β1γ2蛋白在300纳秒内重新定向。发生了两个主要变化如下:1)由于CB2 R中TMH5向外移动,Gαi1α5螺旋倾斜发生变化;2)Gαi1β1γ2在CB2 R下方顺时针旋转25°,当Pro - 139(IC - 2环)锚定在Gαi1上的疏水口袋(Val - 34、Leu - 194、Phe - 196、Phe - 336、Thr - 340、Ile - 343和Ile - 344)中时旋转停止。在这个复合物中,所有三个实验鉴定的交联都可以发生。这些发现对于其他与Gi蛋白偶联的A类G蛋白偶联受体应该是相关的。

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