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严重急性呼吸综合征冠状病毒2(SARS-CoV-2)变体影响受体结合域(RBD)的构象动力学和血管紧张素转换酶2(ACE2)的可及性。

SARS-CoV-2 variants impact RBD conformational dynamics and ACE2 accessibility.

作者信息

Valério Mariana, Borges-Araújo Luís, Melo Manuel N, Lousa Diana, Soares Cláudio M

机构信息

Instituto de Tecnologia Química e Biológica António Xavier, Universidade Nova de Lisboa, Oeiras, Portugal.

Associated Laboratory LS4FUTURE, ITQB NOVA, Universidade Nova de Lisboa, Oeiras, Portugal.

出版信息

Front Med Technol. 2022 Oct 5;4:1009451. doi: 10.3389/fmedt.2022.1009451. eCollection 2022.

Abstract

Coronavirus disease 2019 (COVID-19), caused by the severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2), has killed over 6 million people and is having a devastating social and economic impact around the world. The rise of new variants of concern (VOCs) represents a difficult challenge due to the loss of vaccine and natural immunity, as well as increased transmissibility. All VOCs contain mutations in the spike glycoprotein, which mediates fusion between the viral and host cell membranes. The spike glycoprotein binds to angiotensin-converting enzyme 2 (ACE2) its receptor binding domain (RBD) initiating the infection process. Attempting to understand the effect of RBD mutations in VOCs, a lot of attention has been given to the RBD-ACE2 interaction. However, this type of analysis ignores more indirect effects, such as the conformational dynamics of the RBD itself. Observing that some mutations occur in residues that are not in direct contact with ACE2, we hypothesized that they could affect the RBD conformational dynamics. To test this, we performed long atomistic (AA) molecular dynamics (MD) simulations to investigate the structural dynamics of RBD, and that of four VOCs (Alpha, Beta, Delta, and Omicron). Our results show that the RBD presents two distinct conformations: an "open" conformation where it is free to bind ACE2; and a "closed" conformation, where the RBM ridge blocks the binding surface. The Alpha and Beta variants shift the open/closed equilibrium towards the open conformation by roughly 20%, likely increasing ACE2 binding affinity. Simulations of the Delta and Omicron variants showed extreme results, with the closed conformation being rarely observed. The Delta variant also differed substantially from the other variants, alternating between the open conformation and an alternative "reversed" one, with a significantly changed orientation of the RBM ridge. This alternate conformation could provide a fitness advantage due to increased availability for ACE2 binding, and by aiding antibody escape through epitope occlusion. These results support the hypothesis that VOCs, and particularly the Omicron and Delta variants, impact RBD conformational dynamics in a direction that promotes efficient binding to ACE2 and, in the case of Delta, may assist antibody escape.

摘要

2019冠状病毒病(COVID-19)由严重急性呼吸综合征冠状病毒2(SARS-CoV-2)引起,已导致600多万人死亡,并在全球范围内造成毁灭性的社会和经济影响。由于疫苗和自然免疫力的丧失以及传播性的增加,新出现的值得关注的变异株(VOC)的出现带来了严峻挑战。所有VOC的刺突糖蛋白都含有突变,该蛋白介导病毒与宿主细胞膜之间的融合。刺突糖蛋白通过其受体结合域(RBD)与血管紧张素转换酶2(ACE2)结合,从而启动感染过程。为了试图了解VOC中RBD突变的影响,人们对RBD与ACE2的相互作用给予了很多关注。然而,这类分析忽略了更间接的影响,比如RBD自身的构象动力学。观察到一些突变发生在与ACE2没有直接接触的残基上,我们推测它们可能会影响RBD的构象动力学。为了验证这一点,我们进行了长时间的原子尺度(AA)分子动力学(MD)模拟,以研究RBD以及四种VOC(阿尔法、贝塔、德尔塔和奥密克戎)的结构动力学。我们的结果表明,RBD呈现出两种不同的构象:一种是“开放”构象,在此构象下它可以自由结合ACE2;另一种是“封闭”构象,在此构象下RBM脊阻塞了结合表面。阿尔法和贝塔变异株使开放/封闭平衡向开放构象方向移动了约20%,这可能增加了与ACE2的结合亲和力。德尔塔和奥密克戎变异株的模拟结果则非常极端,很少观察到封闭构象。德尔塔变异株也与其他变异株有很大不同,它在开放构象和另一种“反向”构象之间交替,RBM脊的方向发生了显著变化。这种交替构象可能由于增加了与ACE2结合的机会,并通过表位遮蔽帮助抗体逃逸而提供了适应性优势。这些结果支持了这样一种假设,即VOC,尤其是奥密克戎和德尔塔变异株,以促进与ACE2有效结合的方向影响RBD的构象动力学,并且就德尔塔变异株而言,可能有助于抗体逃逸。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/12fc/9581196/c7e363ee6f49/fmedt-04-1009451-g001.jpg

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