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SARS-CoV-2 刺突蛋白变体的构象行为:序列的进化跳跃在结构动态差异中产生共鸣。

Conformational Behavior of SARS-Cov-2 Spike Protein Variants: Evolutionary Jumps in Sequence Reverberate in Structural Dynamic Differences.

机构信息

Dipartimento di Chimica, Università di Pavia, via Taramelli 12, 27100 Pavia, Italy.

Department of Physical Chemistry, R&D Eni SpA, via Maritano 27, 20097 San Donato Milanese (Mi), Italy.

出版信息

J Chem Theory Comput. 2023 Apr 11;19(7):2120-2134. doi: 10.1021/acs.jctc.3c00077. Epub 2023 Mar 16.

Abstract

SARS-CoV-2 has evolved rapidly in the first 3 years of pandemic diffusion. The initial evolution of the virus appeared to proceed through big jumps in sequence changes rather than through the stepwise accumulation of point mutations on already established variants. Here, we examine whether this nonlinear mutational process reverberates in variations of the conformational dynamics of the SARS-CoV-2 Spike protein (S-protein), the first point of contact between the virus and the human host. We run extensive microsecond-scale molecular dynamics simulations of seven distinct variants of the protein in their fully glycosylated state and set out to elucidate possible links between the mutational spectrum of the S-protein and the structural dynamics of the respective variant, at global and local levels. The results reveal that mutation-dependent structural and dynamic modulations mostly consist of increased coordinated motions in variants that acquire stability and in an increased internal flexibility in variants that are less stable. Importantly, a limited number of functionally important substructures (the receptor binding domain, in particular) share the same time of movements in all variants, indicating efficient preorganization for functional regions dedicated to host interactions. Our results support a model in which the internal dynamics of the S-proteins from different strains varies in a way that reflects the observed random and non-stepwise jumps in sequence evolution, while conserving the functionally oriented traits of conformational dynamics necessary to support productive interactions with host receptors.

摘要

SARS-CoV-2 在大流行扩散的头 3 年中迅速进化。病毒的最初进化似乎是通过序列变化的大跳跃而不是通过已建立的变体上的点突变的逐步积累来进行的。在这里,我们研究了这种非线性突变过程是否会在 SARS-CoV-2 刺突蛋白(S 蛋白)构象动力学变化中产生共鸣,S 蛋白是病毒与人类宿主之间的第一个接触点。我们对该蛋白的七个不同变体进行了广泛的微秒尺度分子动力学模拟,在完全糖基化状态下进行,并着手阐明 S 蛋白的突变谱与各自变体的结构动力学之间可能存在的联系,包括全局和局部水平。结果表明,突变依赖性的结构和动态调节主要由获得稳定性的变体中的协调运动增加和不太稳定的变体中的内部灵活性增加组成。重要的是,数量有限的功能重要亚结构(特别是受体结合域)在所有变体中共享相同的运动时间,这表明为专门用于宿主相互作用的功能区域进行了有效的预组织。我们的结果支持这样一种模型,即来自不同毒株的 S 蛋白的内部动力学以一种反映观察到的序列进化中随机且非逐步跳跃的方式变化,同时保留了支持与宿主受体进行有效相互作用所需的构象动力学的功能导向特征。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/207e/10100529/aabef37090e4/ct3c00077_0002.jpg

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