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呼肠孤病毒 σ1 构象灵活性调节宿主细胞附着效率。

Reovirus σ1 Conformational Flexibility Modulates the Efficiency of Host Cell Attachment.

机构信息

Department of Pediatrics, Vanderbilt University Medical Center, Nashville, Tennessee, USA.

Louvain Institute of Biomolecular Science and Technology, Université Catholique de Louvain, Ottignies-Louvain-la-Neuve, Belgium.

出版信息

J Virol. 2020 Nov 9;94(23). doi: 10.1128/JVI.01163-20.

Abstract

Reovirus attachment protein σ1 is a trimeric molecule containing tail, body, and head domains. During infection, σ1 engages sialylated glycans and junctional adhesion molecule-A (JAM-A), triggering uptake into the endocytic compartment, where virions are proteolytically converted to infectious subvirion particles (ISVPs). Further disassembly allows σ1 release and escape of transcriptionally active reovirus cores into the cytosol. Electron microscopy has revealed a distinct conformational change in σ1 from a compact form on virions to an extended form on ISVPs. To determine the importance of σ1 conformational mobility, we used reverse genetics to introduce cysteine mutations that can cross-link σ1 by establishing disulfide bonds between structurally adjacent sites in the tail, body, and head domains. We detected phenotypic differences among the engineered viruses. A mutant with a cysteine pair in the head domain replicates with enhanced kinetics, forms large plaques, and displays increased avidity for JAM-A relative to the parental virus, mimicking properties of ISVPs. However, unlike ISVPs, particles containing cysteine mutations that cross-link the head domain uncoat and transcribe viral positive-sense RNA with kinetics similar to the parental virus and are sensitive to ammonium chloride, which blocks virion-to-ISVP conversion. Together, these data suggest that σ1 conformational flexibility modulates the efficiency of reovirus host cell attachment. Nonenveloped virus entry is an incompletely understood process. For reovirus, the functional significance of conformational rearrangements in the attachment protein, σ1, that occur during entry and particle uncoating are unknown. We engineered and characterized reoviruses containing cysteine mutations that cross-link σ1 monomers in nonreducing conditions. We found that the introduction of a cysteine pair in the receptor-binding domain of σ1 yielded a virus that replicates with faster kinetics than the parental virus and forms larger plaques. Using functional assays, we found that cross-linking the σ1 receptor-binding domain modulates reovirus attachment but not uncoating or transcription. These data suggest that σ1 conformational rearrangements mediate the efficiency of reovirus host cell binding.

摘要

呼肠孤病毒附着蛋白 σ1 是一种三聚体分子,包含尾部、主体和头部结构域。在感染过程中,σ1 与唾液酸化糖和连接黏附分子-A(JAM-A)结合,触发病毒进入内吞体隔间,在那里病毒被蛋白水解转化为传染性亚病毒颗粒(ISVP)。进一步的解体允许 σ1 释放,并使转录活性呼肠孤病毒核心进入细胞质。电子显微镜显示,σ1 在病毒上呈紧密构象,在 ISVP 上呈伸展构象,存在明显的构象变化。为了确定 σ1 构象灵活性的重要性,我们使用反向遗传学引入半胱氨酸突变,通过在尾部、主体和头部结构域中结构相邻位点之间建立二硫键来交联 σ1。我们检测到工程病毒之间存在表型差异。一个在头部结构域中有一对半胱氨酸的突变体,其复制动力学增强,形成大的蚀斑,并且相对于亲本病毒对 JAM-A 的亲和力增加,模拟 ISVP 的特性。然而,与 ISVP 不同的是,含有交联头部结构域的半胱氨酸突变的颗粒会脱壳,并以类似于亲本病毒的动力学转录病毒正链 RNA,并且对氯化铵敏感,氯化铵可阻止病毒到 ISVP 的转化。总之,这些数据表明,σ1 的构象灵活性调节呼肠孤病毒宿主细胞附着的效率。无包膜病毒进入是一个不完全了解的过程。对于呼肠孤病毒,附着蛋白 σ1 在进入和颗粒脱壳过程中发生的构象重排的功能意义尚不清楚。我们设计并表征了含有在非还原条件下交联 σ1 单体的半胱氨酸突变的呼肠孤病毒。我们发现,在 σ1 的受体结合结构域中引入一对半胱氨酸会产生一种比亲本病毒复制更快、形成更大蚀斑的病毒。通过功能测定,我们发现交联 σ1 的受体结合域可调节呼肠孤病毒的附着,但不调节脱壳或转录。这些数据表明,σ1 的构象重排介导呼肠孤病毒与宿主细胞结合的效率。

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