分析丙型肝炎病毒聚合酶与海洋细菌化合物相互作用的能量和动力学:一项计算研究。

IF 3.8 2区 化学 Q2 CHEMISTRY, APPLIED
Ahmed Alobaida, Amr S. Abouzied, Kareem M. Younes, Rami M. Alzhrani, Hashem O. Alsaab, Bader Huwaimel
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引用次数: 0

摘要

丙型肝炎病毒(HCV)是影响全球大部分人口健康的重大问题,也是包括肝硬化在内的急性肝病的主要病因。HCV 基因组的变异主要源于 NS5B 聚合酶的快速复制,使其成为抗 HCV 药物开发的主要目标。本研究通过虚拟筛选、分析目标化合物复合物的能量和动态行为,探索海洋细菌中可能抑制 HCV NS5B 聚合酶的潜在化合物。利用 Lipinski 过滤器进行虚拟筛选,从海洋细菌数据库中筛选出与 NS5B 有强结合亲和力的化合物。根据重新对接得分排序,对前四种(CMNPD27216、CMNPD21066、CMNPD21065 和 CMNPD27283)化合物进行了进一步评估。进行了 200 ns 的分子动力学模拟,以评估这些复合物在溶剂环境中的动态稳定性。此外,还使用 MM-GBSA、PCA 和自由能景观分析等方法分析了系统的能量,并通过定位过渡态确定了稳定的构象。研究结果表明,这些化合物与 HCV 聚合酶具有良好的结合能力,可以考虑在未来进行实验验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Analyzing energetics and dynamics of hepatitis C virus polymerase interactions with marine bacterial compounds: a computational study

Analyzing energetics and dynamics of hepatitis C virus polymerase interactions with marine bacterial compounds: a computational study

Hepatitis C Virus (HCV) is a significant health concern affecting a large portion of the global population and is a major cause of acute liver diseases, including cirrhosis. The variability in the HCV genome mainly results from the rapid replication facilitated by the NS5B polymerase, making it a prime target for anti-HCV drug development. This study explores potential compounds from marine bacteria that could inhibit the HCV NS5B polymerase by virtual screening, analyzing the energetics, and dynamic behavior of target-compound complexes. Virtual screening with the Lipinski filter was employed to select compounds from the marine bacteria database that demonstrated strong binding affinity to NS5B. The top four (CMNPD27216, CMNPD21066, CMNPD21065, and CMNPD27283) compounds, ranked by their re-docking scores, underwent additional evaluation. Molecular dynamics simulations for 200 ns were conducted to assess the dynamic stability of these complexes in a solvent environment. Furthermore, methods such as MM-GBSA, PCA, and free energy landscape analysis were used to analyze the system’s energetics and identify stable conformations by locating transition states. The findings suggest that these compounds exhibit promising binding capabilities to HCV polymerase and could be considered for future experimental validation.

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来源期刊
Molecular Diversity
Molecular Diversity 化学-化学综合
CiteScore
7.30
自引率
7.90%
发文量
219
审稿时长
2.7 months
期刊介绍: Molecular Diversity is a new publication forum for the rapid publication of refereed papers dedicated to describing the development, application and theory of molecular diversity and combinatorial chemistry in basic and applied research and drug discovery. The journal publishes both short and full papers, perspectives, news and reviews dealing with all aspects of the generation of molecular diversity, application of diversity for screening against alternative targets of all types (biological, biophysical, technological), analysis of results obtained and their application in various scientific disciplines/approaches including: combinatorial chemistry and parallel synthesis; small molecule libraries; microwave synthesis; flow synthesis; fluorous synthesis; diversity oriented synthesis (DOS); nanoreactors; click chemistry; multiplex technologies; fragment- and ligand-based design; structure/function/SAR; computational chemistry and molecular design; chemoinformatics; screening techniques and screening interfaces; analytical and purification methods; robotics, automation and miniaturization; targeted libraries; display libraries; peptides and peptoids; proteins; oligonucleotides; carbohydrates; natural diversity; new methods of library formulation and deconvolution; directed evolution, origin of life and recombination; search techniques, landscapes, random chemistry and more;
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