基于分子动力学的SARS-CoV-2 nsp10-16甲基转移酶抑制剂结构鉴定

IF 2.8 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Ahmad M Alharbi
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引用次数: 0

摘要

SARS-CoV-2通过nsp10-16甲基转移酶介导的病毒mRNA的2'- o甲基化来逃避免疫检测,使其成为关键的抗病毒靶点。我们的研究采用基于结构的药物发现——包括虚拟筛选、分子对接和分子动力学(MD)模拟——来鉴定nsp10-16的有效抑制剂。我们发现了7种靶向SARS-CoV-2 nsp10-16甲基转移酶结合位点的有希望的抑制剂(Z1-Z7),其中Z2、Z3、Z4和Z7表现出很强的结合亲和力。此外,分子动力学模拟证实,Z2、Z3和Z7通过减少构象波动和保持结构紧密性,有效地稳定了酶,与天然配体结合的配合物相当。构象偏差表明,Z2、Z6和Z7限制了大规模的构象转变,增强了它们对酶的稳定作用。结合自由能计算结果显示,Z4 (-37.26 kcal/mol)、Z7 (-35.37 kcal/mol)和Z6 (-35.22 kcal/mol)是最强的结合物,超过了天然的结核菌素配合物(-23.70 kcal/mol)。相互作用分析发现Asp99、Tyr132和Cys115是关键的稳定残基,其中Z2、Z6和Z7形成了高寿命的氢键。药物相似性分析突出了所选化合物作为有希望的候选者,表现出高胃肠道吸收,最佳溶解度和最小的CYP450抑制。需要进一步的实验验证和先导优化来开发有效的甲基转移酶抑制剂,以改善药代动力学和抗病毒效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Structure-Based Identification of SARS-CoV-2 nsp10-16 Methyltransferase Inhibitors Using Molecular Dynamics Insights.

SARS-CoV-2 evades immune detection via nsp10-16 methyltransferase-mediated 2'-O-methylation of viral mRNA, making it a key antiviral target. Our study employed structure-based drug discovery-including virtual screening, molecular docking, and molecular dynamics (MD) simulations-to identify potent inhibitors of nsp10-16. We identified seven promising inhibitors (Z1-Z7) targeting the binding site of the SARS-CoV-2 nsp10-16 methyltransferase, with Z2, Z3, Z4, and Z7 exhibiting strong binding affinities. Further, molecular dynamics simulations confirmed that Z2, Z3, and Z7 effectively stabilized the enzyme by reducing conformational fluctuations and maintaining structural compactness, comparable to the native ligand-bound complex. The conformational deviation revealed that Z2, Z6, and Z7 restricted large-scale conformational transitions, reinforcing their stabilizing effect on the enzyme. The binding free energy calculations ranked Z4 (-37.26 kcal/mol), Z7 (-35.37 kcal/mol), and Z6 (-35.22 kcal/mol) as the strongest binders, surpassing the native tubercidin complex (-23.70 kcal/mol). The interactions analysis identified Asp99, Tyr132, and Cys115 as key stabilizing residues, with Z2, Z6, and Z7 forming high-lifetime hydrogen bonds. The drug-likeness analysis highlighted the selected compounds as promising candidates, exhibiting high gastrointestinal absorption, optimal solubility, and minimal CYP450 inhibition. Further experimental validation and lead optimization are needed to develop potent methyltransferase inhibitors with improved pharmacokinetics and antiviral efficacy.

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来源期刊
Current Issues in Molecular Biology
Current Issues in Molecular Biology 生物-生化研究方法
CiteScore
2.90
自引率
3.20%
发文量
380
审稿时长
>12 weeks
期刊介绍: Current Issues in Molecular Biology (CIMB) is a peer-reviewed journal publishing review articles and minireviews in all areas of molecular biology and microbiology. Submitted articles are subject to an Article Processing Charge (APC) and are open access immediately upon publication. All manuscripts undergo a peer-review process.
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