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鉴定和结构研究针对 SARS-CoV-2 病毒 RNA 甲基转移酶(NSP16)的天然抑制剂。

Identification and structural studies of natural inhibitors against SARS-CoV-2 viral RNA methyltransferase (NSP16).

机构信息

Department of Biophysics, All India Institute of Medical Sciences, New Delhi, India.

Centre for Bioseparation Technology (CBST), Vellore Institute of Technology (VIT), Vellore, Tamil Nadu, India.

出版信息

J Biomol Struct Dyn. 2022;40(24):13965-13975. doi: 10.1080/07391102.2021.1997821. Epub 2021 Nov 12.

Abstract

Pathogenic RNA viruses are emerging as one of the major threats and posing challenges to human community. RNA viruses have an exceptionally shorter generation time and easy to adapt in host cells. The recent emergence of SARS-CoV-2, a long RNA virus, has shown us how difficult it is to overcome this kind of pandemic without understanding the viral infection and replication mechanisms. It is essential to comprehend replications of the viral genome, including RNA polymerization and the final capping process. The mRNAs of SARS-CoV-2 coronaviruses are protected at their 5'-ends by cap structure. The cap-like system plays a significant role in viral translational process, viral RNA stability, and scatting in detecting innate immune recognition in host cells. Two coronavirus enzymes, Nsp14 and Nsp16, critically help in the formation of capping and are considered as potential drug targets for antiviral therapy. Natural and herbal medicines have a past record of treating various acute respiratory diseases. In this work, we have exploited 56000 natural compounds to screen potential inhibitors against NSP16. virtual screening, docking and Molecular Dynamics (MD) simulation studies were performed to understand how these potential inhibitors are bound to NSP16. We observed that the most highly screened compound binds to protein molecules with a high dock score, primarily through hydrophobic interactions and hydrogen bonding, as previously reported for NSP16. Compound-13 (2-hydroxy-N-({1-[2-hydroxy-1-(hydroxymethyl)ethyl]piperidin-3-yl}methyl)-5-methylbenzamide) and compound-51 (N-(2-isobutoxybenzyl)-N,2-dimethyl-2,8-diazaspiro[4.5]decane-3-carboxamide) occupied in active site along with good pharmokinetices properties. In conclusion, the selected compounds could be used as a novel therapeutic against SARS-CoV-2.Communicated by Ramaswamy H. Sarma.

摘要

致病 RNA 病毒正在成为人类社会的主要威胁之一,给人类社会带来挑战。RNA 病毒的繁殖时间极短,容易在宿主细胞中适应。最近,长 RNA 病毒 SARS-CoV-2 的出现让我们认识到,如果不了解病毒感染和复制机制,克服这种大流行是多么困难。了解病毒基因组的复制,包括 RNA 聚合和最终加帽过程,是至关重要的。SARS-CoV-2 冠状病毒的 mRNA 在其 5' 端被帽结构保护。帽状系统在病毒翻译过程、病毒 RNA 稳定性以及在宿主细胞中检测先天免疫识别方面发挥着重要作用。两种冠状病毒酶,Nsp14 和 Nsp16,对加帽的形成至关重要,被认为是抗病毒治疗的潜在药物靶点。天然和草药药物在治疗各种急性呼吸道疾病方面有着悠久的历史。在这项工作中,我们利用了 56000 种天然化合物来筛选针对 NSP16 的潜在抑制剂。进行了虚拟筛选、对接和分子动力学(MD)模拟研究,以了解这些潜在抑制剂如何与 NSP16 结合。我们观察到,与之前报道的 NSP16 一样,筛选得分最高的化合物主要通过疏水相互作用和氢键与蛋白质分子结合。化合物-13(2-羟基-N-({1-[2-羟基-1-(羟甲基)乙基]哌啶-3-基}甲基)-5-甲基苯甲酰胺)和化合物-51(N-(2-异丁氧基苄基)-N,2-二甲基-2,8-二氮杂螺[4.5]癸烷-3-甲酰胺)占据活性位点,并具有良好的药代动力学性质。总之,所选化合物可作为针对 SARS-CoV-2 的新型治疗药物。由 Ramaswamy H. Sarma 传达。

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