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结构水分子在HIV蛋白酶-抑制剂复合物中的作用:一项量子力学/分子力学研究

Role of structural water molecule in HIV protease-inhibitor complexes: a QM/MM study.

作者信息

Suresh Cherumuttathu H, Vargheese Aswathy Mary, Vijayalakshmi K Periya, Mohan Neetha, Koga Nobuaki

机构信息

Computational Modeling and Simulation Section, National Institute for Interdisciplinary Science and Technology, Trivandrum, India.

出版信息

J Comput Chem. 2008 Aug;29(11):1840-9. doi: 10.1002/jcc.20961.

Abstract

Structural water molecule 301 found at the interface of HIV protease-inhibitor complexes function as a hydrogen bond (H-bond) donor to carbonyl groups of the inhibitor as well as H-bond acceptor to amide/amine groups of the flap region of the protease. In this study, six systems of HIV protease-inhibitor complexes were analyzed, which have the presence of this "conserved" structural water molecule using a two-layer QM/MM ONIOM method. The combination of QM/MM and QM method enabled the calculation of strain energies of the bound ligands as well as the determination of their binding energies in the ligand-water and ligand-water-protease complexes. Although the ligand experiences considerable strain in the protein bound structure, the H-bond interactions through the structural water overcomes this strain effect to give a net stability in the range of 16-24 kcal/mol. For instance, in 1HIV system, the strain energy of the ligand was 12.2 kcal/mol, whereas the binding energy associated with the structural water molecule was 20.8 kcal/mol. In most of the cases, the calculated binding energy of structural water molecule showed the same trend as that of the experimental binding free energy values. Further, the classical MD simulations carried out on 1HVL system with and without structural water 301 showed that this conserved water molecule enhances the H-bond dynamics occurring at the Asp-bound active site region of the protease-inhibitor system, and therefore it will have a direct influence on the mechanism of drug action.

摘要

在HIV蛋白酶-抑制剂复合物界面发现的结构水分子301作为氢键供体与抑制剂的羰基相互作用,同时作为氢键受体与蛋白酶侧翼区域的酰胺/胺基相互作用。在本研究中,使用双层QM/MM ONIOM方法分析了六个存在这种“保守”结构水分子的HIV蛋白酶-抑制剂复合物系统。QM/MM和QM方法的结合能够计算结合配体的应变能,并确定它们在配体-水和配体-水-蛋白酶复合物中的结合能。尽管配体在蛋白质结合结构中经历了相当大的应变,但通过结构水的氢键相互作用克服了这种应变效应,从而产生了16-24 kcal/mol范围内的净稳定性。例如,在1HIV系统中,配体的应变能为12.2 kcal/mol,而与结构水分子相关的结合能为20.8 kcal/mol。在大多数情况下,计算得到的结构水分子结合能与实验结合自由能值显示出相同的趋势。此外,在有和没有结构水分子301的情况下对1HVL系统进行的经典分子动力学模拟表明,这种保守的水分子增强了在蛋白酶-抑制剂系统的天冬氨酸结合活性位点区域发生的氢键动力学,因此它将对药物作用机制产生直接影响。

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