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严重急性呼吸综合征冠状病毒2融合肽介导的膜插入和去稳定化的钙依赖性机制

Ca -dependent mechanism of membrane insertion and destabilization by the SARS-CoV-2 fusion peptide.

作者信息

Khelashvili George, Plante Ambrose, Doktorova Milka, Weinstein Harel

出版信息

bioRxiv. 2021 Jan 11:2020.12.03.410472. doi: 10.1101/2020.12.03.410472.

Abstract

UNLABELLED

Cell penetration after recognition of the SARS-CoV-2 virus by the ACE2 receptor, and the fusion of its viral envelope membrane with cellular membranes, are the early steps of infectivity. A region of the Spike protein (S) of the virus, identified as the "fusion peptide" (FP), is liberated at its N-terminal site by a specific cleavage occurring in concert with the interaction of the receptor binding domain of the Spike. Studies have shown that penetration is enhanced by the required binding of Ca ions to the FPs of corona viruses, but the mechanisms of membrane insertion and destabilization remain unclear. We have predicted the preferred positions of Ca binding to the SARS-CoV-2-FP, the role of Ca ions in mediating peptide-membrane interactions, the preferred mode of insertion of the Ca -bound SARS-CoV-2-FP and consequent effects on the lipid bilayer from extensive atomistic molecular dynamics (MD) simulations and trajectory analyses. In a systematic sampling of the interactions of the Ca -bound peptide models with lipid membranes SARS-CoV-2-FP penetrated the bilayer and disrupted its organization only in two modes involving different structural domains. In one, the hydrophobic residues F833/I834 from the middle region of the peptide are inserted. In the other, more prevalent mode, the penetration involves residues L822/F823 from the LLF motif which is conserved in CoV-2-like viruses, and is achieved by the binding of Ca ions to the D830/D839 and E819/D820 residue pairs. FP penetration is shown to modify the molecular organization in specific areas of the bilayer, and the extent of membrane binding of the SARS-CoV-2 FP is significantly reduced in the absence of Ca ions. These findings provide novel mechanistic insights regarding the role of Ca in mediating SARS-CoV-2 fusion and provide a detailed structural platform to aid the ongoing efforts in rational design of compounds to inhibit SARS-CoV-2 cell entry.

STATEMENT OF SIGNIFICANCE

SARS-CoV-2, the cause of the COVID-19 pandemic, penetrates host cell membranes and uses viral-to-cellular membrane fusion to release its genetic material for replication. Experiments had identified a region termed "fusion peptide" (FP) in the Spike proteins of coronaviruses, as the spearhead in these initial processes, and suggested that Ca is needed to support both functions. Absent structure and dynamics-based mechanistic information these FP functions could not be targeted for therapeutic interventions. We describe the development and determination of the missing information from analysis of extensive MD simulation trajectories, and propose specific Ca -dependent mechanisms of SARS-CoV-2-FP membrane insertion and destabilization. These results offer a structure-specific platform to aid the ongoing efforts to use this target for the discovery and/or of inhibitors.

摘要

未标记

血管紧张素转换酶2(ACE2)受体识别严重急性呼吸综合征冠状病毒2(SARS-CoV-2)病毒后的细胞穿透,以及其病毒包膜与细胞膜的融合,是感染性的早期步骤。病毒刺突蛋白(S)的一个区域,被确定为“融合肽”(FP),通过与刺突蛋白受体结合域相互作用同时发生的特异性切割,在其N端位点被释放。研究表明,冠状病毒的融合肽与钙离子的必需结合可增强穿透能力,但膜插入和去稳定化的机制仍不清楚。我们通过广泛的原子分子动力学(MD)模拟和轨迹分析,预测了钙离子与SARS-CoV-2融合肽结合的优选位置、钙离子在介导肽-膜相互作用中的作用、钙离子结合的SARS-CoV-2融合肽的优选插入模式以及对脂质双层的后续影响。在对钙离子结合肽模型与脂质膜相互作用的系统采样中,SARS-CoV-2融合肽仅以涉及不同结构域的两种模式穿透双层膜并破坏其结构。一种模式是,肽中间区域的疏水残基F833/I834插入。另一种更普遍的模式是,穿透涉及来自LLF基序的残基L822/F823,该基序在类似冠状病毒2的病毒中保守,并且是通过钙离子与D830/D839和E819/D820残基对的结合实现的。已表明融合肽穿透会改变双层膜特定区域的分子结构,并且在没有钙离子的情况下,SARS-CoV-2融合肽与膜的结合程度会显著降低。这些发现为钙离子在介导SARS-CoV-2融合中的作用提供了新的机制见解,并提供了一个详细的结构平台,以协助正在进行的合理设计抑制SARS-CoV-2细胞进入的化合物的工作。

重要性声明

SARS-CoV-2是2019冠状病毒病大流行的病原体,它穿透宿主细胞膜并利用病毒与细胞膜的融合来释放其遗传物质进行复制。实验已确定冠状病毒刺突蛋白中的一个区域称为“融合肽”(FP),是这些初始过程中的先锋,并表明需要钙离子来支持这两种功能。由于缺乏基于结构和动力学的机制信息,这些融合肽功能无法成为治疗干预的靶点。我们描述了通过对广泛的分子动力学模拟轨迹分析来开发和确定缺失信息的过程,并提出了SARS-CoV-2融合肽膜插入和去稳定化的特定钙离子依赖性机制。这些结果提供了一个结构特异性平台,以协助正在进行的利用该靶点发现和/或开发抑制剂的工作。

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