Shahlaei Mohsen, Madadkar-Sobhani Armin, Mahnam Karim, Fassihi Afshin, Saghaie Lotfollah, Mansourian Mahboubeh
Department of Medicinal Chemistry, School of Pharmacy, Kermanshah University of Medical Sciences, Kermanshah, Iran.
Biochim Biophys Acta. 2011 Mar;1808(3):802-17. doi: 10.1016/j.bbamem.2010.12.004. Epub 2010 Dec 15.
In this study, homology modeling, molecular docking and molecular dynamics simulation were performed to explore structural features and binding mechanism of some inhibitors of chemokine receptor type 5 (CCR5), and to construct a model for designing new CCR5 inhibitors for preventing HIV attachment to the host cell. A homology modeling procedure was employed to construct a 3D model of CCR5. For this procedure, the X-ray crystal structure of bovine rhodopsin (1F88A) at 2.80Å resolution was used as template. After inserting the constructed model into a hydrated lipid bilayer, a 20ns molecular dynamics (MD) simulation was performed on the whole system. After reaching the equilibrium, twenty-four CCR5 inhibitors were docked in the active site of the obtained model. The binding models of the investigated antagonists indicate the mechanism of binding of the studied compounds to the CCR5 obviously. Moreover, 3D pictures of inhibitor-protein complex provided precious data regarding the binding orientation of each antagonist into the active site of this protein. One additional 20 ns MD simulation was performed on the initial structure of the CCR5-ligand 21 complex, resulted from the previous docking calculations, embedded in a hydrated POPE bilayer to explore the effects of the presence of lipid bilayer in the vicinity of CCR5-ligand complex. This article is part of a Special Issue entitled Protein translocation across or insertion into membranes.
在本研究中,进行了同源建模、分子对接和分子动力学模拟,以探索趋化因子受体5(CCR5)某些抑制剂的结构特征和结合机制,并构建一个用于设计新型CCR5抑制剂以防止HIV附着于宿主细胞的模型。采用同源建模程序构建CCR5的三维模型。对于此程序,使用分辨率为2.80Å的牛视紫红质(1F88A)的X射线晶体结构作为模板。将构建好的模型插入水合脂质双分子层后,对整个系统进行了20纳秒的分子动力学(MD)模拟。达到平衡后,将24种CCR5抑制剂对接至所得模型的活性位点。所研究拮抗剂的结合模型明显表明了所研究化合物与CCR5的结合机制。此外,抑制剂 - 蛋白质复合物的三维图片提供了有关每种拮抗剂在该蛋白质活性位点结合方向的宝贵数据。对先前对接计算得到的CCR5 - 配体21复合物的初始结构进行了另外一次20纳秒的MD模拟,该复合物嵌入水合POPE双分子层中,以探索CCR5 - 配体复合物附近脂质双分子层的存在所产生的影响。本文是名为“蛋白质跨膜转运或插入膜”的特刊的一部分。