由于糖基化结构的改变,SARS-CoV-2 Omicron Spike 蛋白的表面亲和性增强了。

IF 4 2区 医学 Q2 CHEMISTRY, MEDICINAL ACS Infectious Diseases Pub Date : 2024-05-10 DOI:10.1021/acsinfecdis.4c00015
Dongxia Wang*, Zijian Zhang, Jakub Baudys, Christopher Haynes, Sarah H. Osman, Bin Zhou, John R. Barr and James C. Gumbart*, 
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引用次数: 0

摘要

SARS-CoV-2尖峰(S)蛋白经过大量糖基化,有助于适当折叠、增强稳定性和逃避宿主免疫监视。在本研究中,我们利用质谱分析法阐明了 SARS-CoV-2 Omicron 变体(B.1.1.529)与 D614G 穗状病毒变体重组穗状病毒蛋白的 N-糖基化特征和二硫键。此外,我们还对尖峰蛋白进行了长达微秒的分子动力学模拟,以解析不同的 N-聚糖如何影响两种变体的尖峰构象取样。我们的研究结果表明,在特定位点聚糖加工和二硫键形成方面,Omicron 尖峰蛋白与 D614G 尖峰变体总体上保持相似。然而,在某些 N-糖基化位点观察到了聚糖的改变。这些变化与 Omicron 穗状蛋白内部的突变协同作用,增加了大分子(包括外显子结构域、受体结合结构域和 N 端结构域)的表面可及性。此外,诱变和牵引试验揭示了一个特定序列(N149)的糖基化作用;而且,MD 模拟和 HDX-MS 的相关性确定了尖峰蛋白的几个高动态区域。这些见解有助于我们理解结构与功能之间的相互作用,从而推进有效的疫苗接种和治疗策略。
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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Enhanced Surface Accessibility of SARS-CoV-2 Omicron Spike Protein Due to an Altered Glycosylation Profile

SARS-CoV-2 spike (S) proteins undergo extensive glycosylation, aiding in proper folding, enhancing stability, and evading host immune surveillance. In this study, we used mass spectrometric analysis to elucidate the N-glycosylation characteristics and disulfide bonding of recombinant spike proteins derived from the SARS-CoV-2 Omicron variant (B.1.1.529) in comparison with the D614G spike variant. Furthermore, we conducted microsecond-long molecular dynamics simulations on spike proteins to resolve how the different N-glycans impact spike conformational sampling in the two variants. Our findings reveal that the Omicron spike protein maintains an overall resemblance to the D614G spike variant in terms of site-specific glycan processing and disulfide bond formation. Nonetheless, alterations in glycans were observed at certain N-glycosylation sites. These changes, in synergy with mutations within the Omicron spike protein, result in increased surface accessibility of the macromolecule, including the ectodomain, receptor-binding domain, and N-terminal domain. Additionally, mutagenesis and pull-down assays reveal the role of glycosylation of a specific sequon (N149); furthermore, the correlation of MD simulation and HDX-MS identified several high-dynamic areas of the spike proteins. These insights contribute to our understanding of the interplay between structure and function, thereby advancing effective vaccination and therapeutic strategies.

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来源期刊
ACS Infectious Diseases
ACS Infectious Diseases CHEMISTRY, MEDICINALINFECTIOUS DISEASES&nb-INFECTIOUS DISEASES
CiteScore
9.70
自引率
3.80%
发文量
213
期刊介绍: ACS Infectious Diseases will be the first journal to highlight chemistry and its role in this multidisciplinary and collaborative research area. The journal will cover a diverse array of topics including, but not limited to: * Discovery and development of new antimicrobial agents — identified through target- or phenotypic-based approaches as well as compounds that induce synergy with antimicrobials. * Characterization and validation of drug target or pathways — use of single target and genome-wide knockdown and knockouts, biochemical studies, structural biology, new technologies to facilitate characterization and prioritization of potential drug targets. * Mechanism of drug resistance — fundamental research that advances our understanding of resistance; strategies to prevent resistance. * Mechanisms of action — use of genetic, metabolomic, and activity- and affinity-based protein profiling to elucidate the mechanism of action of clinical and experimental antimicrobial agents. * Host-pathogen interactions — tools for studying host-pathogen interactions, cellular biochemistry of hosts and pathogens, and molecular interactions of pathogens with host microbiota. * Small molecule vaccine adjuvants for infectious disease. * Viral and bacterial biochemistry and molecular biology.
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