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SARS-CoV-2 刺突糖蛋白在关闭和开放状态之间的构象转变。

Conformational transition of SARS-CoV-2 spike glycoprotein between its closed and open states.

机构信息

Department of Mechanical Engineering, Faculty of Mechanical Engineering, Istanbul Technical University (ITU), Istanbul, Turkey.

出版信息

J Chem Phys. 2020 Aug 21;153(7):075101. doi: 10.1063/5.0011141.

Abstract

In 2020, the novel severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) has infected millions of people worldwide and caused the coronavirus disease 2019 (COVID-19). Spike (S) glycoproteins on the viral membrane bind to ACE2 receptors on the host cell membrane and initiate fusion, and S protein is currently among the primary drug target to inhibit viral entry. The S protein can be in a receptor inaccessible (closed) or accessible (open) state based on down and up positions of its receptor-binding domain (RBD), respectively. However, conformational dynamics and the transition pathway between closed to open states remain unexplored. Here, we performed all-atom molecular dynamics (MD) simulations starting from closed and open states of the S protein trimer in the presence of explicit water and ions. MD simulations showed that RBD forms a higher number of interdomain interactions and exhibits lower mobility in its down position than its up position. MD simulations starting from intermediate conformations between the open and closed states indicated that RBD switches to the up position through a semi-open intermediate that potentially reduces the free energy barrier between the closed and open states. Free energy landscapes were constructed, and a minimum energy pathway connecting the closed and open states was proposed. Because RBD-ACE2 binding is compatible with the semi-open state, but not with the closed state of the S protein, we propose that the formation of the intermediate state is a prerequisite for the host cell recognition.

摘要

在 2020 年,新型严重急性呼吸系统综合症冠状病毒 2(SARS-CoV-2)感染了全球数百万人,并导致了 2019 年冠状病毒病(COVID-19)。病毒膜上的刺突(S)糖蛋白与宿主细胞膜上的 ACE2 受体结合并引发融合,目前 S 蛋白是主要的药物靶点之一,用以抑制病毒进入。根据其受体结合域(RBD)的向下和向上位置,S 蛋白可以处于受体不可及(关闭)或可及(开放)状态。然而,其关闭到开放状态的构象动力学和转换途径仍未被探索。在这里,我们在存在明水和离子的情况下,从 S 蛋白三聚体的关闭和开放状态开始进行全原子分子动力学(MD)模拟。MD 模拟表明,RBD 形成了更多的域间相互作用,并且在向下位置比向上位置表现出更低的迁移率。从开放和关闭状态之间的中间构象开始的 MD 模拟表明,RBD 通过半开放中间态切换到向上位置,这可能降低了关闭和开放状态之间的自由能势垒。构建了自由能景观,并提出了连接关闭和开放状态的最小能量途径。由于 RBD-ACE2 结合与半开放状态兼容,但与 S 蛋白的关闭状态不兼容,因此我们提出中间状态的形成是宿主细胞识别的前提。

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