淋巴细胞色素膜炎病毒的结构组织和原位融合蛋白结构。

IF 4 2区 医学 Q2 VIROLOGY
Journal of Virology Pub Date : 2024-10-22 Epub Date: 2024-09-27 DOI:10.1128/jvi.00640-24
Joon S Kang, Kang Zhou, Hui Wang, Sijia Tang, Kristin Van Mouwerik Lyles, Ming Luo, Z Hong Zhou
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引用次数: 0

摘要

阿雷纳病毒遍布全球,可导致出血热和神经系统疾病,人畜共患病原淋巴细胞绒毛膜炎病毒(LCMV)就是一例。单个 LCMV 蛋白或其片段的结构已被报道,但其结构组织和核壳组装机制仍然难以捉摸。重要的是,尚未显示融合前病毒融合蛋白复合物(糖蛋白复合物,GPC)在病毒体上的原位结构,特别是与其整体稳定信号肽(SSP)的结构,这阻碍了基于结构的疫苗设计等工作。在这里,我们通过低温电子断层扫描确定了 LCMV 蛋白的原位结构及其在病毒中的结构组织。断层扫描显示了 GPC、基质蛋白 Z 以及病毒包膜和核壳之间接触点的全球分布。对子断层图进行平均后得到了成熟 GPC 的原位结构,其跨膜结构域完好无损,并揭示了 GP2-SSP 界面和 GP2 的末端结构域。每个病毒体内包装的 RNA 依赖性 RNA 聚合酶 L 分子的数量各不相同,这为感染机制增添了新的视角。这些结果共同勾勒出了 LCMV 的结构组织,并为 LCMV 的成熟、排出和细胞进入机制提供了新的视角:COVID-19对公共卫生的影响凸显了了解人畜共患病病原体的重要性。淋巴细胞性脉络膜炎病毒(LCMV)是一种啮齿类动物传播的人类病原体,可引起出血热。在此,我们描述了 LCMV 蛋白的原位结构及其在病毒包膜和核壳周围的结构组织。病毒结构揭示了表面糖蛋白复合物(GPC)的分布、病毒包膜与底层基质蛋白的接触点以及与核壳的结合。病毒的形态和大小以及每个病毒体内的 RNA 聚合酶 L 的数量差异很大,这突显了 LCMV 快速变化的特性。原位 GPC 三聚体结构与之前的外结构域结构之间的比较确定了 GPC 的跨膜和内结构域及其亚基之间的关键相互作用。这项工作为 LCMV 的组装提供了新的见解,并为未来结构引导的疫苗设计提供了信息。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Architectural organization and in situ fusion protein structure of lymphocytic choriomeningitis virus.

Arenaviruses exist globally and can cause hemorrhagic fever and neurological diseases, exemplified by the zoonotic pathogen lymphocytic choriomeningitis virus (LCMV). The structures of individual LCMV proteins or their fragments have been reported, but the architectural organization and the nucleocapsid assembly mechanism remain elusive. Importantly, the in situ structure of the arenavirus fusion protein complex (glycoprotein complex, GPC) as present on the virion prior to fusion, particularly with its integral stable signal peptide (SSP), has not been shown, hindering efforts such as structure-based vaccine design. Here, we have determined the in situ structure of LCMV proteins and their architectural organization in the virion by cryogenic electron tomography. The tomograms reveal the global distribution of GPC, matrix protein Z, and the contact points between the viral envelope and nucleocapsid. Subtomogram averaging yielded the in situ structure of the mature GPC with its transmembrane domain intact, revealing the GP2-SSP interface and the endodomain of GP2. The number of RNA-dependent RNA polymerase L molecules packaged within each virion varies, adding new perspectives to the infection mechanism. Together, these results delineate the structural organization of LCMV and offer new insights into its mechanism of LCMV maturation, egress, and cell entry.

Importance: The impact of COVID-19 on public health has highlighted the importance of understanding zoonotic pathogens. Lymphocytic choriomeningitis virus (LCMV) is a rodent-borne human pathogen that causes hemorrhagic fever. Herein, we describe the in situ structure of LCMV proteins and their architectural organization on the viral envelope and around the nucleocapsid. The virion structure reveals the distribution of the surface glycoprotein complex (GPC) and the contact points between the viral envelope and the underlying matrix protein, as well as the association with the nucleocapsid. The morphology and sizes of virions, as well as the number of RNA polymerase L inside each virion vary greatly, highlighting the fast-changing nature of LCMV. A comparison between the in situ GPC trimeric structure and prior ectodomain structures identifies the transmembrane and endo domains of GPC and key interactions among its subunits. The work provides new insights into LCMV assembly and informs future structure-guided vaccine design.

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来源期刊
Journal of Virology
Journal of Virology 医学-病毒学
CiteScore
10.10
自引率
7.40%
发文量
906
审稿时长
1 months
期刊介绍: Journal of Virology (JVI) explores the nature of the viruses of animals, archaea, bacteria, fungi, plants, and protozoa. We welcome papers on virion structure and assembly, viral genome replication and regulation of gene expression, genetic diversity and evolution, virus-cell interactions, cellular responses to infection, transformation and oncogenesis, gene delivery, viral pathogenesis and immunity, and vaccines and antiviral agents.
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