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埃博拉病毒受体NPC1中的单个残基影响爬行动物的细胞宿主范围。

A Single Residue in Ebola Virus Receptor NPC1 Influences Cellular Host Range in Reptiles.

作者信息

Ndungo Esther, Herbert Andrew S, Raaben Matthijs, Obernosterer Gregor, Biswas Rohan, Miller Emily Happy, Wirchnianski Ariel S, Carette Jan E, Brummelkamp Thijn R, Whelan Sean P, Dye John M, Chandran Kartik

机构信息

Department of Microbiology and Immunology, Albert Einstein College of Medicine, Bronx, New York, USA.

United States Army Medical Research Institute of Infectious Diseases, Fort Detrick, Maryland, USA.

出版信息

mSphere. 2016 Mar 30;1(2). doi: 10.1128/mSphere.00007-16. eCollection 2016 Mar-Apr.

Abstract

Filoviruses are the causative agents of an increasing number of disease outbreaks in human populations, including the current unprecedented Ebola virus disease (EVD) outbreak in western Africa. One obstacle to controlling these epidemics is our poor understanding of the host range of filoviruses and their natural reservoirs. Here, we investigated the role of the intracellular filovirus receptor, Niemann-Pick C1 (NPC1) as a molecular determinant of Ebola virus (EBOV) host range at the cellular level. Whereas human cells can be infected by EBOV, a cell line derived from a Russell's viper (Daboia russellii) (VH-2) is resistant to infection in an NPC1-dependent manner. We found that VH-2 cells are resistant to EBOV infection because the Russell's viper NPC1 ortholog bound poorly to the EBOV spike glycoprotein (GP). Analysis of panels of viper-human NPC1 chimeras and point mutants allowed us to identify a single amino acid residue in NPC1, at position 503, that bidirectionally influenced both its binding to EBOV GP and its viral receptor activity in cells. Significantly, this single residue change perturbed neither NPC1's endosomal localization nor its housekeeping role in cellular cholesterol trafficking. Together with other recent work, these findings identify sequences in NPC1 that are important for viral receptor activity by virtue of their direct interaction with EBOV GP and suggest that they may influence filovirus host range in nature. Broader surveys of NPC1 orthologs from vertebrates may delineate additional sequence polymorphisms in this gene that control susceptibility to filovirus infection. IMPORTANCE Identifying cellular factors that determine susceptibility to infection can help us understand how Ebola virus is transmitted. We asked if the EBOV receptor Niemann-Pick C1 (NPC1) could explain why reptiles are resistant to EBOV infection. We demonstrate that cells derived from the Russell's viper are not susceptible to infection because EBOV cannot bind to viper NPC1. This resistance to infection can be mapped to a single amino acid residue in viper NPC1 that renders it unable to bind to EBOV GP. The newly solved structure of EBOV GP bound to NPC1 confirms our findings, revealing that this residue dips into the GP receptor-binding pocket and is therefore critical to the binding interface. Consequently, this otherwise well-conserved residue in vertebrate species influences the ability of reptilian NPC1 proteins to bind to EBOV GP, thereby affecting viral host range in reptilian cells.

摘要

丝状病毒是导致人类群体中疾病暴发次数不断增加的病原体,包括当前在西非发生的前所未有的埃博拉病毒病(EVD)疫情。控制这些疫情的一个障碍是我们对丝状病毒的宿主范围及其天然宿主了解不足。在此,我们在细胞水平上研究了细胞内丝状病毒受体尼曼-匹克C1(NPC1)作为埃博拉病毒(EBOV)宿主范围分子决定因素的作用。虽然人类细胞可被EBOV感染,但源自罗素蝰蛇(Daboia russellii)的细胞系(VH-2)以NPC1依赖的方式对感染具有抗性。我们发现VH-2细胞对EBOV感染具有抗性,因为罗素蝰蛇NPC1直系同源物与EBOV刺突糖蛋白(GP)的结合较差。对蝰蛇-人类NPC1嵌合体和点突变体的分析使我们能够确定NPC1中第503位的单个氨基酸残基,该残基双向影响其与EBOV GP的结合及其在细胞中的病毒受体活性。重要的是,这一单个残基的变化既未扰乱NPC1的内体定位,也未扰乱其在细胞胆固醇转运中的看家作用。与其他近期研究一起,这些发现确定了NPC1中因其与EBOV GP的直接相互作用而对病毒受体活性重要的序列,并表明它们可能在自然界中影响丝状病毒的宿主范围。对脊椎动物NPC1直系同源物进行更广泛的调查可能会描绘出该基因中控制对丝状病毒感染易感性的其他序列多态性。重要性:确定决定感染易感性的细胞因子有助于我们了解埃博拉病毒是如何传播的。我们询问EBOV受体尼曼-匹克C1(NPC1)是否可以解释为什么爬行动物对EBOV感染具有抗性。我们证明源自罗素蝰蛇的细胞对感染不敏感,因为EBOV无法与蝰蛇NPC1结合。这种对感染的抗性可定位到蝰蛇NPC1中的单个氨基酸残基,该残基使其无法与EBOV GP结合。新解析的EBOV GP与NPC1结合的结构证实了我们的发现,揭示该残基深入到GP受体结合口袋中,因此对结合界面至关重要。因此,脊椎动物物种中这个原本保守的残基影响了爬行动物NPC1蛋白与EBOV GP结合的能力,从而影响了爬行动物细胞中的病毒宿主范围。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7f68/4894689/3e52adf77fff/sph0021620450001.jpg

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