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严重急性呼吸综合征冠状病毒2(SARS-CoV-2)主要病毒蛋白酶(NSP5)的突变分析及其对疫苗设计策略的影响

Analysis of SARS-CoV-2 mutations in the main viral protease (NSP5) and its implications on the vaccine designing strategies.

作者信息

Yashvardhini Niti, Kumar Amit, Jha Deepak Kumar

机构信息

Department of Microbiology, Patna Women's College, Patna 800 001, India.

Department of Botany, Patna University, Patna 800 005, India.

出版信息

Vacunas. 2022 May;23:S1-S13. doi: 10.1016/j.vacun.2021.10.002. Epub 2021 Dec 3.

Abstract

SARS-CoV-2 (Severe Acute Respiratory Syndrome), an etiolating agent of novel COVID-19 (coronavirus 2019) pandemic, rapidly spread worldwide, creating an unprecedented public health crisis globally. NSP5, the main viral protease, is a highly conserved protein, encoded by the genome of SARS-CoV-2 and plays an important role in the viral replication cycle. In the present study, we detected a total of 33 mutations from 675 sequences submitted from India in the month of March 2020 to April 2021. Out of 33 mutations, we selected 8 frequent mutations (K236R, N142L, K90R, A7V, L75F, C22N, H246Y and I43V) for further analysis. Subsequently, protein models were constructed, revealing significant alterations in the 3-D structure of NSP5 protein when compared to the wild type protein sequence which also altered the secondary structure of NSP5 protein. Further, we identified 9 B-cell, 10 T-cell and 6 MHC-I promising epitopes using predictive tools of immunoinformatics, out of these epitopes some were non-allergenic as well as highly immunogenic. Results of our study, however, revealed that 10 B-cell epitopes reside in the mutated region of NSP5. Additionally, hydrophobicity, physiochemical properties, toxicity and stability of NSP5 protein were estimated to demonstrate the specificity of the multiepitope candidates. Taken together, variations arising as a consequence of multiple mutations may cause alterations in the structure and function of NSP5 which generate crucial insights to better understand structural aspects of SARS-CoV-2. Our study also revealed, NSP5, a main protease, can be a potentially good target for the design and development of vaccine candidate against SARS-CoV-2.

摘要

严重急性呼吸综合征冠状病毒2(SARS-CoV-2)是新型冠状病毒病(COVID-19,即2019冠状病毒病)大流行的病原体,在全球迅速传播,造成了前所未有的全球公共卫生危机。NSP5是主要的病毒蛋白酶,是一种高度保守的蛋白质,由SARS-CoV-2基因组编码,在病毒复制周期中起重要作用。在本研究中,我们从2020年3月至2021年4月印度提交的675个序列中总共检测到33个突变。在这33个突变中,我们选择了8个常见突变(K236R、N142L、K90R、A7V、L75F、C22N、H246Y和I43V)进行进一步分析。随后构建了蛋白质模型,结果显示与野生型蛋白质序列相比,NSP5蛋白的三维结构发生了显著改变,这也改变了NSP5蛋白的二级结构。此外,我们使用免疫信息学预测工具鉴定了9个B细胞、10个T细胞和6个MHC-I有前景的表位,其中一些表位无致敏性且免疫原性高。然而,我们的研究结果显示,10个B细胞表位位于NSP5的突变区域。此外,还评估了NSP5蛋白的疏水性、理化性质、毒性和稳定性,以证明多表位候选物的特异性。综上所述,多个突变导致的变异可能会引起NSP5结构和功能的改变,这为更好地理解SARS-CoV-2的结构方面提供了关键见解。我们的研究还表明,主要蛋白酶NSP5可能是设计和开发抗SARS-CoV-2候选疫苗的潜在良好靶点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8aa4/8639442/da5a3e870a93/gr1_lrg.jpg

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