Drug Discovery Research Center (DDRC), Translational Health Science and Technology Institute (THSTI), Faridabad, India.
Vaccine and Infectious Disease Research Center (VIDRC), Translational Health Science and Technology Institute (THSTI), Faridabad, India.
J Biomol Struct Dyn. 2020 Apr;38(6):1612-1625. doi: 10.1080/07391102.2019.1614480. Epub 2019 May 16.
Inhibition of the viral RNA-dependent RNA polymerase (RdRp) to resolve chronic infection is a useful therapeutic strategy against Hepatitis C virus (HCV). Non-nucleoside inhibitors (NNIs) of RdRp are small molecules that bind tightly with allosteric sites on the enzyme, thereby inhibiting polymerase activity. A large number of crystal structures (176) were studied to establish the structure-activity relationship along with the mechanism of inhibition and resistance between HCV RdRp and NNIs at different allosteric sites. The structure and the associated dynamics are the blueprint to understand the function of the protein. We have implemented the ligand-based pharmacophore and molecular dynamic simulations to extract the possible local and global characteristics of RdRp upon NNI binding and the structural-dynamical features possessed by the known actives. Our results suggest that the NNI binding induces significant fluctuations at the atomic level which are critical for enzymatic activity, with minimal global structural alterations. Residue-wise mapping of interactions of NNIs at different sites exhibited some conserved interaction patterns of key amino acids and water molecules. Here, the structural insights are explored to understand the correlation between the dynamics of protein's subdomains and function at the molecular level, useful for genotype-specific rational designing of NNIs.Communicated by Ramaswamy H. Sarma.
抑制病毒 RNA 依赖性 RNA 聚合酶(RdRp)以解决慢性感染是对抗丙型肝炎病毒(HCV)的一种有用的治疗策略。RdRp 的非核苷抑制剂(NNI)是与酶的变构位点紧密结合的小分子,从而抑制聚合酶活性。研究了大量的晶体结构(176 个),以建立 HCV RdRp 与 NNI 在不同变构位点之间的抑制和耐药性的结构-活性关系以及机制。结构和相关动力学是理解蛋白质功能的蓝图。我们已经实施了基于配体的药效团和分子动力学模拟,以提取 NNI 结合后 RdRp 的可能局部和全局特征,以及已知活性物质所具有的结构动力学特征。我们的结果表明,NNI 结合在原子水平上诱导显著的波动,这对于酶活性至关重要,而全局结构变化最小。在不同位点的 NNIs 的相互作用的残基映射显示了关键氨基酸和水分子的一些保守相互作用模式。在这里,我们探索了结构见解,以了解蛋白质亚结构域的动力学与分子水平功能之间的相关性,这对于基于基因型的 NNI 合理设计很有用。由 Ramaswamy H. Sarma 传达。