SARS CoV-2 spike protein variants exploit DC-SIGN/DC-SIGNR receptor for evolution and severity: an in-silico insight.

Q2 Medicine VirusDisease Pub Date : 2023-05-24 DOI:10.1007/s13337-023-00820-3
Jyoti Gupta, Md Zubbair Malik, Maya Chaturvedi, Mohit Mishra, Surbhi Kriti Mishra, Abhinav Grover, Ashwini Kumar Ray, Rupesh Chaturvedi
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Abstract

The Severe Acute Respiratory Syndrome Coronavirus-2 (SARS-CoV-2) is related with the COVID-19 pandemic. Recent spike protein variations have had an effect on the transmission of the virus. In addition to ACE-2, spike proteins can employ DC-SIGN and its analogous receptor, DC-SIGNR, for host evasion. Spike variations in the DC-SIGN interaction region and role of DC-SIGN in immune evasion have not been well defined. To understand the spike protein variations and their binding mode, phylogenetic analysis of the complete GISAID (Global Initiative for Sharing Avian Influenza Data) data of the SARS-CoV-2 spike protein was considered. In addition, an in silico knockout network evaluation of the SARS-CoV-2 single-cell transcriptome was conducted to determine the key role of DC-SIGN/R in immunological dysregulation. Within the DC-SIGN-interacting region of the SARS-CoV spike protein, the spike protein of SARS-CoV-2 displayed remarkable similarity to the SARS-CoV spike protein. Surprisingly, the phylogenetic analysis revealed that the SARS-CoV-2's spike exhibited significantly diverse variants in the DC-SIGN interaction domain, which altered the frequency of these variants. The variation within the DC-SIGN-interacting domain of spike proteins affected the binding of a limited number of variants with DC-SIGN and DC-SIGNR and affected their evolution. MMGBSA binding free energies evaluation differed for variants from those of the wild type, suggesting the influence of substitution mutations on the interaction pattern. In silico knockout network analysis of the single-cell transcriptome of Bronchoalveolar Lavage and peripheral blood mononuclear cells revealed that SARS-CoV-2 altered DC-SIGN/R signaling. Early surveillance of diverse SARS-CoV-2 strains could preclude a worsening of the pandemic and facilitate the development of an optimum vaccine against variations. The spike Receptor Binding Domain genetic variants are thought to boost SARS CoV-2 immune evasion, resulting in its higher longevity.

Supplementary information: The online version contains supplementary material available at 10.1007/s13337-023-00820-3.

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SARS CoV-2 穗状病毒蛋白变体利用 DC-SIGN/DC-SIGNR 受体促进进化和严重性:对样本的深入研究。
严重急性呼吸系统综合症冠状病毒-2(SARS-CoV-2)与 COVID-19 大流行有关。最近的尖峰蛋白变异对病毒的传播产生了影响。除 ACE-2 外,尖峰蛋白还能利用 DC-SIGN 及其类似受体 DC-SIGNR 逃避宿主。尖峰蛋白在 DC-SIGN 相互作用区的变异以及 DC-SIGN 在免疫逃避中的作用尚未得到很好的界定。为了解尖峰蛋白的变异及其结合模式,研究人员考虑对 SARS-CoV-2 尖峰蛋白的完整 GISAID(全球禽流感数据共享倡议)数据进行系统发育分析。此外,还对 SARS-CoV-2 单细胞转录组进行了硅敲除网络评估,以确定 DC-SIGN/R 在免疫失调中的关键作用。在SARS-CoV尖峰蛋白的DC-SIGN相互作用区,SARS-CoV-2的尖峰蛋白与SARS-CoV尖峰蛋白显示出显著的相似性。令人惊讶的是,系统进化分析表明,SARS-CoV-2 的尖峰蛋白在 DC-SIGN 相互作用结构域中表现出明显不同的变异,从而改变了这些变异的频率。尖峰蛋白的DC-SIGN相互作用结构域内的变异影响了少数变体与DC-SIGN和DC-SIGNR的结合,并影响了它们的进化。对变体与野生型的 MMGBSA 结合自由能的评估结果不同,这表明取代突变对相互作用模式有影响。对支气管肺泡灌洗液和外周血单核细胞的单细胞转录组进行的硅敲除网络分析显示,SARS-CoV-2 改变了 DC-SIGN/R 信号传导。对不同的 SARS-CoV-2 株系进行早期监测,可避免大流行病的恶化,并有助于开发出预防变异的最佳疫苗。尖峰受体结合域基因变异被认为能增强 SARS CoV-2 的免疫逃避能力,从而使其寿命更长:在线版本包含补充材料,可查阅 10.1007/s13337-023-00820-3。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
VirusDisease
VirusDisease Medicine-Infectious Diseases
CiteScore
7.00
自引率
0.00%
发文量
46
期刊介绍: VirusDisease, formerly known as ''Indian Journal of Virology'', publishes original research on all aspects of viruses infecting animal, human, plant, fish and other living organisms.
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