Xiaoying Cai, Kang Zhou, Ana Lucia Alvarez-Cabrera, Zhu Si, Hui Wang, Yao He, Cally Li, Z. Hong Zhou
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引用次数: 0
摘要
狂犬病病毒(RABV)是最早被确认的公共卫生问题病毒之一,并在历史上为病毒疫苗的开发做出了贡献。尽管具有这些重要意义,但 RABV 病毒的三维结构仍然不为人知,这是因为要分离出足够数量的结构均一的病毒样本进行结构研究是一项挑战。在这里,我们结合低温电子断层扫描(cryoET)和显微镜(cryoEM)的功能,确定了野生型 RABV 病毒的三维结构。RABV 病毒的断层图显示,子弹头形病毒粒子的结构具有高度异质性,包括糖蛋白(G)三聚体装饰的包膜和由 RNA、核蛋白(N)和基质蛋白(M)组成的核头皮。通过冷冻电镜螺旋重建确定了病毒躯干区的结构,发现一个由单层 M 蛋白结合的单起始 N-RNA 螺旋,N:M 比为 1;N-M 相互作用与同属横纹肌病毒的水泡性口炎病毒(VSV)不同,后者有两层 M 蛋白稳定 N-RNA 螺旋,M:N 比为 2。M-N比例和结合的这些差异使RABV能够更自由地弯曲其N-RNA螺旋,并表明这两种子弹形横纹肌病毒的病毒组装机制不同。
Structural Heterogeneity of the Rabies Virus Virion
Rabies virus (RABV) is among the first recognized viruses of public health concern and has historically contributed to the development of viral vaccines. Despite these significances, the three-dimensional structure of the RABV virion remains unknown due to the challenges in isolating structurally homogenous virion samples in sufficient quantities needed for structural investigation. Here, by combining the capabilities of cryogenic electron tomography (cryoET) and microscopy (cryoEM), we determined the three-dimensional structure of the wild-type RABV virion. Tomograms of RABV virions reveal a high level of structural heterogeneity among the bullet-shaped virion particles encompassing the glycoprotein (G) trimer-decorated envelope and the nucleocapsid composed of RNA, nucleoprotein (N), and matrix protein (M). The structure of the trunk region of the virion was determined by cryoEM helical reconstruction, revealing a one-start N-RNA helix bound by a single layer of M proteins at an N:M ratio of 1. The N-M interaction differs from that in fellow rhabdovirus vesicular stomatitis virus (VSV), which features two layers of M stabilizing the N-RNA helix at an M:N ratio of 2. These differences in both M-N stoichiometry and binding allow RABV to flex its N-RNA helix more freely and point to different mechanisms of viral assembly between these two bullet-shaped rhabdoviruses.