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蓝舌病毒外壳蛋白 VP2 含有唾液酸结合结构域,VP5 类似于有包膜病毒的融合蛋白。

Bluetongue virus coat protein VP2 contains sialic acid-binding domains, and VP5 resembles enveloped virus fusion proteins.

机构信息

Department of Microbiology, Immunology and Molecular Genetics, University of California, Los Angeles, CA 90095-7364, USA.

出版信息

Proc Natl Acad Sci U S A. 2010 Apr 6;107(14):6292-7. doi: 10.1073/pnas.0913403107. Epub 2010 Mar 23.

Abstract

Bluetongue virus (BTV) is transmitted by blood-feeding insects (Culicoides sp.) and causes hemorrhagic diseases in livestock. BTV is a nonenveloped, double-stranded RNA (dsRNA) virus with two capsids: a well-studied, stable core enclosing the dsRNA genome and a highly unstable, poorly studied coat responsible for host cell attachment and entry. Here, based on cryo-electron microscopy (cryoEM), we report a 7-A resolution structure of the infectious BTV virion, including the coat proteins. We show that unlike other dsRNA viruses, the VP2 attachment trimer has a triskelion shape composed of three tip domains branching from a central hub domain. We identify three putative sialic acid-binding pockets in the hub and present supporting biochemical data indicating sugar moiety binding is important for BTV infection. Despite being a nonenveloped virus, the putative VP5 membrane penetration trimer, located slightly inward of the VP2 attachment trimer, has a central coiled-coil alpha-helical bundle, similar to the fusion proteins of many enveloped viruses (e.g., HIV, herpesviruses, vesicular stomatitis virus, and influenza virus). Moreover, mapping of the amino acid sequence of VP5 to the secondary structural elements identified by cryoEM locates 15 amphipathic alpha-helical regions on the external surface of each VP5 trimer. The cryoEM density map also reveals few, weak interactions between the VP5 trimer and both the outer-coat VP2 trimer and the underlying core VP7 trimer, suggesting that the surface of VP5 could unfurl like an umbrella during penetration and shedding of the coat to release the transcriptionally active core particle.

摘要

蓝舌病毒(BTV)通过吸血昆虫(库蠓属)传播,导致牲畜出血性疾病。BTV 是一种无包膜的双链 RNA(dsRNA)病毒,具有两个衣壳:一个研究充分、稳定的核心衣壳,包含 dsRNA 基因组;另一个高度不稳定、研究不足的外壳,负责宿主细胞附着和进入。在这里,我们基于冷冻电镜(cryoEM),报道了传染性 BTV 病毒粒子的 7-A 分辨率结构,包括外壳蛋白。我们表明,与其他 dsRNA 病毒不同,VP2 附着三聚体具有由三个从中心轮毂域分支的尖端域组成的三叶形形状。我们在轮毂中鉴定出三个可能的唾液酸结合口袋,并提供支持的生化数据表明,糖部分结合对于 BTV 感染很重要。尽管是非包膜病毒,但位于 VP2 附着三聚体稍内的推定 VP5 膜渗透三聚体具有中央卷曲螺旋α-螺旋束,类似于许多包膜病毒(例如 HIV、疱疹病毒、水疱性口炎病毒和流感病毒)的融合蛋白。此外,将 VP5 的氨基酸序列映射到 cryoEM 鉴定的二级结构元素上,确定了每个 VP5 三聚体外表面上的 15 个两亲性α-螺旋区域。cryoEM 密度图还揭示了 VP5 三聚体与外壳 VP2 三聚体和底层核心 VP7 三聚体之间的很少、很弱的相互作用,这表明 VP5 的表面在穿透和外壳脱落以释放转录活性核心颗粒时可能像伞一样展开。

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