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蝙蝠 SARS 样冠状病毒 RsSHC014 和 WIV1 中刺突感染性的结构决定因素。

Structural determinants of spike infectivity in bat SARS-like coronaviruses RsSHC014 and WIV1.

机构信息

The Ministry of Education Key Laboratory of Protein Science, Beijing, China.

Beijing Frontier Research Center for Biological Structure, Beijing, China.

出版信息

J Virol. 2024 Aug 20;98(8):e0034224. doi: 10.1128/jvi.00342-24. Epub 2024 Jul 19.

Abstract

UNLABELLED

The recurrent spillovers of coronaviruses (CoVs) have posed severe threats to public health and the global economy. Bat severe acute respiratory syndrome (SARS)-like CoVs RsSHC014 and WIV1, currently circulating in bat populations, are poised for human emergence. The trimeric spike (S) glycoprotein, responsible for receptor recognition and membrane fusion, plays a critical role in cross-species transmission and infection. Here, we determined the cryo-electron microscopy (EM) structures of the RsSHC014 S protein in the closed state at 2.9 Å, the WIV1 S protein in the closed state at 2.8 Å, and the intermediate state at 4.0 Å. In the intermediate state, one receptor-binding domain (RBD) is in the "down" position, while the other two RBDs exhibit poor density. We also resolved the complex structure of the WIV1 S protein bound to human ACE2 (hACE2) at 4.5 Å, which provides structural basis for the future emergence of WIV1 in humans. Through biochemical experiments, we found that despite strong binding affinities between the RBDs and both human and civet ACE2, the pseudoviruses of RsSHC014, but not WIV1, failed to infect 293T cells overexpressing either human or civet ACE2. Mutagenesis analysis revealed that the Y623H substitution, located in the SD2 region, significantly improved the cell entry efficiency of RsSHC014 pseudoviruses, which is likely accomplished by promoting the open conformation of spike glycoproteins. Our findings emphasize the necessity of both efficient RBD lifting and tight RBD-hACE2 binding for viral infection and underscore the significance of the 623 site of the spike glycoprotein for the infectivity of bat SARS-like CoVs.

IMPORTANCE

The bat SARS-like CoVs RsSHC014 and WIV1 can use hACE2 for cell entry without further adaptation, indicating their potential risk of emergence in human populations. The S glycoprotein, responsible for receptor recognition and membrane fusion, plays a crucial role in cross-species transmission and infection. In this study, we determined the cryo-EM structures of the S glycoproteins of RsSHC014 and WIV1. Detailed comparisons revealed dynamic structural variations within spike proteins. We also elucidated the complex structure of WIV1 S-hACE2, providing structural evidence for the potential emergence of WIV1 in humans. Although RsSHC014 and WIV1 had similar hACE2-binding affinities, they exhibited distinct pseudovirus cell entry behavior. Through mutagenesis and cryo-EM analysis, we revealed that besides the structural variations, the 623 site in the SD2 region is another important structural determinant of spike infectivity.

摘要

目的

蝙蝠 SARS 样冠状病毒 RsSHC014 和 WIV1 可利用 hACE2 进入细胞,无需进一步适应,表明它们有可能在人类中出现。S 糖蛋白负责受体识别和膜融合,在种间传播和感染中起关键作用。在这项研究中,我们测定了 RsSHC014 和 WIV1 的 S 糖蛋白的冷冻电镜结构。详细比较揭示了 Spike 蛋白内的动态结构变化。我们还阐明了 WIV1 S-hACE2 的复合物结构,为 WIV1 可能在人类中出现提供了结构证据。虽然 RsSHC014 和 WIV1 与 hACE2 具有相似的结合亲和力,但它们表现出不同的假病毒细胞进入行为。通过突变和冷冻电镜分析,我们揭示了除结构变化外,SD2 区的 623 位是 Spike 感染力的另一个重要结构决定因素。

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