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受体GALR2的同源建模、对接及分子动力学模拟及其与甘丙肽和正变构调节剂的相互作用

Homology modeling, docking, and molecular dynamics simulation of the receptor GALR2 and its interactions with galanin and a positive allosteric modulator.

作者信息

Hui Wen-Qi, Cheng Qi, Liu Tian-Yu, Ouyang Qin

机构信息

College of Pharmacy, Third Military Medical University, No. 30 Gaotanyan Street, Chongqing, 400038, China.

出版信息

J Mol Model. 2016 Apr;22(4):90. doi: 10.1007/s00894-016-2944-x. Epub 2016 Mar 28.

DOI:10.1007/s00894-016-2944-x
PMID:27021209
Abstract

Galanin receptor type 2 (GALR2) is a class A G-protein-coupled receptor (GPCR), and it has been reported that orthosteric ligands and positive allosteric modulators (PAMs) of GALR2 could potentially be used to treat epilepsy. So far, the X-ray structure of this receptor has not been resolved, and knowledge of the 3D structure of GALR2 may prove informative in attempts to design novel ligands and to explore the mechanism for the allosteric modulation of this receptor. In this study, homology modeling was used to obtain several GALR2 models using known templates. ProSA-web Z-scores and Ramachandran plots as well as pre-screening against a test dataset of known compounds were all utilized to select the best model of GALR2. Molecular dockings of galanin (a peptide) and a nonpeptide ligand were carried out to choose the (GALR2 model)-galanin complex that showed the closest agreement with the corresponding experimental data. Finally, a 50-ns MD simulation was performed to study the interactions between the GALR2 model and the synthetic and endogenous ligands. The results from docking and MD simulation showed that, besides the reported residues, Tyr160(4.60), Ile105(3.32), Ala274(7.35), and Tyr163(ECL2) also appear to play important roles in the binding of galanin. The potential allosteric binding pockets in the GALR2 model were then investigated via MD simulation. The results indicated that the mechanism for the allosteric modulation caused by PAMs is the binding of the PAM at pocket III, which is formed by galanin, ECL2, TM2, TM3, and ECL1; this results in the disruption of the Na(+)-binding site and/or the Na(+) ion pathway, leading to GALR2 agonism.

摘要

2型甘丙肽受体(GALR2)是一种A类G蛋白偶联受体(GPCR),据报道,GALR2的正位配体和正变构调节剂(PAM)可能用于治疗癫痫。到目前为止,该受体的X射线结构尚未解析,而GALR2三维结构的知识可能有助于设计新型配体并探索该受体变构调节的机制。在本研究中,利用同源建模,使用已知模板获得了多个GALR2模型。利用ProSA-web Z评分、拉氏图以及针对已知化合物测试数据集的预筛选来选择最佳的GALR2模型。对甘丙肽(一种肽)和一种非肽配体进行分子对接,以选择与相应实验数据显示最相符的(GALR2模型)-甘丙肽复合物。最后,进行了50纳秒的分子动力学模拟,以研究GALR2模型与合成配体和内源性配体之间的相互作用。对接和分子动力学模拟结果表明,除了已报道的残基外,Tyr160(4.60)、Ile105(3.32)、Ala274(7.35)和Tyr163(胞外环2)在甘丙肽结合中似乎也起重要作用。然后通过分子动力学模拟研究了GALR2模型中的潜在变构结合口袋。结果表明,PAM引起变构调节的机制是PAM在口袋III处结合,口袋III由甘丙肽、胞外环2、跨膜螺旋2、跨膜螺旋3和胞外环1形成;这导致Na+结合位点和/或Na+离子通道的破坏,从而引发GALR2激动作用。

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