Mature HIV-1 capsid structure by cryo-electron microscopy and all-atom molecular dynamics

衣壳 随机六聚体 结晶学 生物物理学 三聚体 螺旋束 五聚体 病毒蛋白 化学 蛋白质结构 分子动力学 生物 病毒 二聚体 生物化学 病毒学 有机化学 计算化学 基因
作者
Gongpu Zhao,Juan R. Perilla,Ernest L. Yufenyuy,Xin Meng,Bo Chen,Jiying Ning,Jin-Woo Ahn,Angela M. Gronenborn,Klaus Schulten,Christopher Aiken,Peijun Zhang
出处
期刊:Nature [Nature Portfolio]
卷期号:497 (7451): 643-646 被引量:778
标识
DOI:10.1038/nature12162
摘要

Retroviral capsid proteins are conserved structurally but assemble into different morphologies. The mature human immunodeficiency virus-1 (HIV-1) capsid is best described by a 'fullerene cone' model, in which hexamers of the capsid protein are linked to form a hexagonal surface lattice that is closed by incorporating 12 capsid-protein pentamers. HIV-1 capsid protein contains an amino-terminal domain (NTD) comprising seven α-helices and a β-hairpin, a carboxy-terminal domain (CTD) comprising four α-helices, and a flexible linker with a 310-helix connecting the two structural domains. Structures of the capsid-protein assembly units have been determined by X-ray crystallography; however, structural information regarding the assembled capsid and the contacts between the assembly units is incomplete. Here we report the cryo-electron microscopy structure of a tubular HIV-1 capsid-protein assembly at 8 Å resolution and the three-dimensional structure of a native HIV-1 core by cryo-electron tomography. The structure of the tubular assembly shows, at the three-fold interface, a three-helix bundle with critical hydrophobic interactions. Mutagenesis studies confirm that hydrophobic residues in the centre of the three-helix bundle are crucial for capsid assembly and stability, and for viral infectivity. The cryo-electron-microscopy structures enable modelling by large-scale molecular dynamics simulation, resulting in all-atom models for the hexamer-of-hexamer and pentamer-of-hexamer elements as well as for the entire capsid. Incorporation of pentamers results in closer trimer contacts and induces acute surface curvature. The complete atomic HIV-1 capsid model provides a platform for further studies of capsid function and for targeted pharmacological intervention.
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