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三嗪衍生物作为ROCK1抑制剂的发现与优化:分子对接、分子动力学模拟及自由能计算

Discovery and optimization of triazine derivatives as ROCK1 inhibitors: molecular docking, molecular dynamics simulations and free energy calculations.

作者信息

Shen Mingyun, Zhou Shunye, Li Youyong, Pan Peichen, Zhang Liling, Hou Tingjun

机构信息

Institute of Functional Nano & Soft Materials (FUNSOM) and Jiangsu Key Laboratory for Carbon-Based Functional Materials & Devices, Soochow University, Suzhou, Jiangsu 215123, China.

出版信息

Mol Biosyst. 2013 Mar;9(3):361-74. doi: 10.1039/c2mb25408e. Epub 2013 Jan 23.

Abstract

Rho-associated protein kinases (ROCK1 and ROCK2) are promising targets for a number of diseases, including cardiovascular disorders, nervous system diseases, cancers, etc. Recently, we have successfully identified a ROCK1 inhibitor (1) with the triazine core. In order to gain a deeper insight into the microscopic binding of this inhibitor with ROCK1 and design derivatives with improved potency, the interactions between ROCK1 and a series of triazine/pyrimidine-based inhibitors were studied by using an integrated computational protocol that combines molecular docking, molecular dynamics (MD) simulations, binding free energy calculations, and binding energy decomposition analysis. First, three docking protocols, rigid receptor docking, induced fit docking, QM-polarized ligand docking, were used to determine the binding modes of the studied inhibitors in the active site of ROCK1. The results illustrate that rigid receptor docking achieves the best performance to rank the binding affinities of the studied inhibitors. Then, based on the predicted structures from molecular docking, MD simulations and MM/GBSA free energy calculations were employed to determine the dynamic binding process and compare the binding modes of the inhibitors with different activities. The binding free energies predicted by MM/GBSA are in good agreement with the experimental bioactivities, and the analysis of the individual energy terms suggests that the van der Waals interaction is the major driving force for ligand binding. In addition, the residue-inhibitor interaction spectra were obtained by the MM/GBSA free energy decomposition analysis, and the important residues for achieving strong binding were highlighted, which affords important guidance for the rational design of novel ROCK inhibitors. Finally, a variety of derivatives of inhibitor 1 were designed and four of them showed promising potency according to the predictions. We expect that our study can provide significant insight into the development of improved inhibitors of ROCK1.

摘要

Rho相关蛋白激酶(ROCK1和ROCK2)是包括心血管疾病、神经系统疾病、癌症等多种疾病的潜在治疗靶点。最近,我们成功鉴定出一种具有三嗪核心结构的ROCK1抑制剂(1)。为了更深入地了解该抑制剂与ROCK1的微观结合情况,并设计出活性更高的衍生物,我们采用了一种综合计算方法,结合分子对接、分子动力学(MD)模拟、结合自由能计算和结合能分解分析,研究了ROCK1与一系列基于三嗪/嘧啶的抑制剂之间的相互作用。首先,使用刚性受体对接、诱导契合对接、量子力学极化配体对接这三种对接方法,确定所研究抑制剂在ROCK1活性位点的结合模式。结果表明,刚性受体对接在对所研究抑制剂的结合亲和力进行排序方面表现最佳。然后,基于分子对接预测的结构,采用MD模拟和MM/GBSA自由能计算来确定动态结合过程,并比较不同活性抑制剂的结合模式。MM/GBSA预测的结合自由能与实验生物活性高度吻合,对各个能量项的分析表明,范德华相互作用是配体结合的主要驱动力。此外,通过MM/GBSA自由能分解分析获得了残基-抑制剂相互作用谱,突出了实现强结合的重要残基,这为新型ROCK抑制剂的合理设计提供了重要指导。最后,设计了抑制剂1的多种衍生物,根据预测其中四种显示出有前景的活性。我们期望我们的研究能够为开发更有效的ROCK1抑制剂提供重要的见解。

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