A rigorous framework for detecting SARS-CoV-2 spike protein mutational ensemble from genomic and structural features

IF 2.7 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Saman Fatihi , Surabhi Rathore , Ankit K. Pathak , Deepanshi Gahlot , Mitali Mukerji , Nidhi Jatana , Lipi Thukral
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引用次数: 15

Abstract

The recent release of SARS-CoV-2 genomic data from several countries has provided clues into the potential antigenic drift of the coronavirus population. In particular, the genomic instability observed in the spike protein necessitates immediate action and further exploration in the context of viral-host interactions. By temporally tracking 527,988 SARS-CoV-2 genomes, we identified invariant and hypervariable regions within the spike protein. We evaluated combination of mutations from SARS-CoV-2 lineages and found that maximum number of lineage-defining mutations were present in the N-terminal domain (NTD). Based on mutant 3D-structural models of known Variants of Concern (VOCs), we found that structural properties such as accessibility, secondary structural type, and intra-protein interactions at local mutation sites are greatly altered. Further, we observed significant differences between intra-protein networks of wild-type and Delta mutant, with the latter showing dense intra-protein contacts. Extensive molecular dynamics simulations of D614G mutant spike structure with hACE2 further revealed dynamic features with 47.7% of mutations mapping on flexible regions of spike protein. Thus, we propose that significant changes within spike protein structure have occurred that may impact SARS-CoV-2 pathogenesis, and repositioning of vaccine candidates is required to contain the spread of COVID-19 pathogen.

Abstract Image

从基因组和结构特征检测SARS-CoV-2刺突蛋白突变集合的严格框架
最近从几个国家发布的SARS-CoV-2基因组数据为冠状病毒群体潜在的抗原漂移提供了线索。特别是,在刺突蛋白中观察到的基因组不稳定性需要立即采取行动,并在病毒-宿主相互作用的背景下进一步探索。通过暂时跟踪527,988个SARS-CoV-2基因组,我们确定了刺突蛋白中的不变和高变区域。我们评估了来自SARS-CoV-2谱系的突变组合,发现最大数量的谱系定义突变存在于n端结构域(NTD)。基于已知VOCs的突变体3d结构模型,我们发现可及性、二级结构类型和局部突变位点的蛋白内相互作用等结构特性发生了很大变化。此外,我们观察到野生型和Delta突变体的蛋白内网络之间存在显著差异,后者显示出密集的蛋白内接触。利用hACE2对D614G突变体穗结构进行了广泛的分子动力学模拟,进一步揭示了47.7%的突变位于穗蛋白柔性区域的动态特征。因此,我们认为刺突蛋白结构发生了重大变化,可能影响SARS-CoV-2的发病机制,需要重新定位候选疫苗以遏制COVID-19病原体的传播。
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来源期刊
CiteScore
4.60
自引率
0.00%
发文量
33
审稿时长
104 days
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