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新冠病毒关注变异株差异动力学的分子见解。

Molecular insights into the differential dynamics of SARS-CoV-2 variants of concern.

机构信息

National Institute of Technology, Warangal, Telangana, 506004, India.

Laboratory for Structural Bioinformatics, Center for Biosystems Dynamics Research, RIKEN, 1-7-22 Suehiro, Tsurumi, Yokohama, Kanagawa, 230-0045, Japan.

出版信息

J Mol Graph Model. 2022 Jul;114:108194. doi: 10.1016/j.jmgm.2022.108194. Epub 2022 Apr 14.

Abstract

Severe Acute Respiratory Syndrome Coronavirus 2 (SARS-CoV-2) has affected the lives and livelihood of millions of individuals around the world. It has mutated several times after its first inception, with an estimated two mutations occurring every month. Although we have been successful in developing vaccines against the virus, the emergence of variants has enabled it to escape therapy. Few of the generated variants are also reported to be more infectious than the wild-type (WT). In this study, we analyze the attributes of all RBD/ACE2 complexes for the reported VOCs, namely, Alpha, Beta, Gamma, and Delta through computer simulations. Results indicate differences in orientation and binding energies of the VOCs from the WT. Overall, it was observed that electrostatic interactions play a major role in the binding of the complexes. Detailed residue level energetics revealed that the most prominent changes in interaction energies were seen particularly at the mutated residues which were present at RBD/ACE2 interface. We found that the Delta variant is one of the most tightly bound variants of SARS-CoV-2 with dynamics similar to WT. The high binding affinity of RBD towards ACE2 is indicative of an increase in viral transmission and infectivity. The details presented in our study provide additional information for the design and development of effective therapeutic strategies for the emerging variants of the virus in the future.

摘要

严重急性呼吸系统综合症冠状病毒 2 型(SARS-CoV-2)已经影响了全球数百万人的生活和生计。自首次出现以来,它已经发生了多次突变,估计每月发生两次突变。尽管我们已经成功开发出针对该病毒的疫苗,但变异的出现使其能够逃避治疗。据报道,其中一些产生的变异体比野生型(WT)更具传染性。在这项研究中,我们通过计算机模拟分析了报告的 VOCs(即 Alpha、Beta、Gamma 和 Delta)所有 RBD/ACE2 复合物的属性。结果表明,VOCs 的取向和结合能与 WT 存在差异。总的来说,观察到静电相互作用在复合物的结合中起主要作用。详细的残基水平能量学揭示,相互作用能量的最显著变化尤其出现在 RBD/ACE2 界面存在的突变残基上。我们发现,Delta 变体是 SARS-CoV-2 中结合最紧密的变体之一,其动力学与 WT 相似。RBD 对 ACE2 的高结合亲和力表明病毒传播和感染性增加。我们研究中提供的详细信息为未来针对该病毒的新兴变体设计和开发有效的治疗策略提供了额外信息。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6a2e/9009157/43233e23974a/ga1_lrg.jpg

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