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新型 HIV-1 抑制剂的药物重定位研究:基于二元 QSAR 模型和多靶点驱动的计算研究。

Drug Re-positioning Studies for Novel HIV-1 Inhibitors Using Binary QSAR Models and Multi-target-driven In Silico Studies.

机构信息

Computational Biology and Molecular Simulations Laboratory, Department of Biophysics, School of Medicine, Bahcesehir University, Istanbul, Turkey.

出版信息

Mol Inform. 2021 Feb;40(2):e2000012. doi: 10.1002/minf.202000012. Epub 2020 Sep 16.

Abstract

Current antiretroviral therapies against HIV involve the usage of at least two drugs that target different stages of HIV life cycle. However, potential drug interactions and side effects pose a problem. A promising concept for complex disease treatment is 'one molecule-multiple target' approach to overcome undesired effects of multiple drugs. Additionally, it is beneficial to consider drug re-purposing due to the cost of taking a drug into the market. Taking these into account, here potential anti-HIV compounds are suggested by virtually screening small approved drug molecules and clinical candidates. Initially, binary QSAR models are used to predict the therapeutic activity of around 7900 compounds against HIV and to predict the toxicity of molecules with high therapeutic activities. Selected compounds are considered for molecular docking studies against two targets, HIV-1 protease enzyme, and chemokine co-receptor CCR5. The top docking poses for all 549 molecules are then subjected to short (1 ns) individual molecular dynamics (MD) simulations and they are ranked based on their calculated relative binding free energies. Finally, 25 molecules are selected for long (200 ns) MD simulations, and 5 molecules are suggested as promising multi-target HIV agents. The results of this study may open new avenues for the designing of new dual HIV-1 inhibitor scaffolds.

摘要

目前针对 HIV 的抗逆转录病毒疗法至少需要使用两种针对 HIV 生命周期不同阶段的药物。然而,潜在的药物相互作用和副作用是一个问题。对于复杂疾病的治疗,一种有前途的概念是“一种分子-多个靶点”方法,以克服多种药物的不良作用。此外,考虑到药物进入市场的成本,重新利用药物是有益的。考虑到这些因素,我们通过虚拟筛选小批准药物分子和临床候选药物来建议潜在的抗 HIV 化合物。最初,二元 QSAR 模型用于预测约 7900 种化合物对 HIV 的治疗活性,并预测具有高治疗活性的分子的毒性。选择化合物进行针对 HIV-1 蛋白酶和趋化因子共受体 CCR5 两个靶点的分子对接研究。然后对所有 549 个分子的顶级对接构象进行短(1 ns)个体分子动力学(MD)模拟,并根据计算出的相对结合自由能对它们进行排序。最后,选择 25 个分子进行长(200 ns)MD 模拟,并建议 5 个分子作为有前途的多靶点 HIV 药物。这项研究的结果可能为设计新的双重 HIV-1 抑制剂支架开辟新的途径。

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