Nutho Bodee, Meeprasert Arthitaya, Chulapa Methat, Kungwan Nawee, Rungrotmongkol Thanyada
a Program in Biotechnology, Faculty of Science , Chulalongkorn University , Bangkok 10330 , Thailand.
b Structural and Computational Biology Research Group, Department of Biochemistry, Faculty of Science , Chulalongkorn University , Bangkok 10330 , Thailand.
J Biomol Struct Dyn. 2017 Jun;35(8):1743-1757. doi: 10.1080/07391102.2016.1193444. Epub 2016 Jun 27.
Hepatic C virus (HCV) is a global health problem, resulting in liver cirrhosis and inflammation that can develop to hepatocellular carcinoma and fatality. The NS5B polymerase of HCV plays an important role in viral RNA replication process, making it an attractive therapeutic target for design and development of anti-HCV drugs. To search new potent compounds against the HCV NS5B polymerase, the molecular docking and the steered molecular dynamics (SMD) simulation techniques were performed. The potential potent inhibitors of the NS5B polymerase were screened out from the ZINC database using structural similarity search and molecular docking technique. Five top-hit compounds (the ZINC compounds 49888724, 49054741, 49777239, 49793673, and 49780355) were then studied by the SMD simulations based on the hypothesis that a high rupture force relates to a high binding efficiency. The results demonstrated that the ZINC compound 49888724 had a greater maximum rupture force, reflecting a good binding strength and inhibitory potency than known inhibitors and the rest four ZINC compounds. Therefore, our finding indicated that the ZINC compound 49888724 is a potential candidate to be a novel NS5B inhibitor for further design. Besides, the van der Waals interaction could be considered as the main contribution for stabilizing the NS5B-ligand complex.
丙型肝炎病毒(HCV)是一个全球性的健康问题,会导致肝硬化和炎症,进而发展为肝细胞癌并导致死亡。HCV的NS5B聚合酶在病毒RNA复制过程中起重要作用,使其成为抗HCV药物设计和开发的一个有吸引力的治疗靶点。为了寻找针对HCV NS5B聚合酶的新型有效化合物,进行了分子对接和引导分子动力学(SMD)模拟技术。利用结构相似性搜索和分子对接技术从ZINC数据库中筛选出NS5B聚合酶的潜在有效抑制剂。然后基于高破裂力与高结合效率相关的假设,通过SMD模拟研究了五个得分最高的化合物(ZINC化合物49888724、49054741、49777239、49793673和49780355)。结果表明,ZINC化合物49888724具有更大的最大破裂力,与已知抑制剂和其余四种ZINC化合物相比,反映出良好的结合强度和抑制效力。因此,我们的发现表明ZINC化合物49888724是进一步设计新型NS5B抑制剂的潜在候选物。此外,范德华相互作用可被视为稳定NS5B-配体复合物的主要贡献因素。