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相关原位冷冻电子断层扫描揭示了与选择性HIV-1核心核输入相关的细胞和病毒重塑。

Correlative In Situ Cryo-ET Reveals Cellular and Viral Remodeling Associated with Selective HIV-1 Core Nuclear Import.

作者信息

Hou Zhen, Shen Yao, Fronik Stanley, Shen Juan, Shi Jiong, Xu Jialu, Chen Long, Hardenbrook Nathan, Thompson Christopher, Neumann Sarah, Engelman Alan N, Aiken Christopher, Zhang Peijun

机构信息

Division of Structural Biology, Wellcome Trust Centre for Human Genetics, University of Oxford, Oxford, UK.

Section Electron Microscopy, Department of Cell and Chemical Biology, Leiden University Medical Center, Leiden, The Netherlands.

出版信息

bioRxiv. 2025 Mar 4:2025.03.04.641496. doi: 10.1101/2025.03.04.641496.

Abstract

Lentiviruses like HIV-1 infect non-dividing cells by traversing the nuclear pore, but studying this process has been challenging due to its scarcity and dynamic nature in infected cells. Here, we developed a robust cell-permeabilization system that recapitulates HIV-1 nuclear import and established an integrated cryo-correlative workflow combining cryo-CLEM, cryo-FIB, and cryo-ET for targeted imaging of this process. These advancements enabled the successful capture of 1,899 HIV-1 cores at various stages of nuclear import. Statistical and structural analyses of native wild-type and mutant cores revealed that HIV-1 nuclear import depends on both capsid elasticity and nuclear pore adaptability, as well as nuclear factors such as CPSF6. Brittle cores fail to enter the nuclear pore complex (NPC), while CPSF6-binding-deficient cores stall inside the NPC, resulting in impaired nuclear import. Intriguingly, nuclear pores function as selective filters favoring the import of smaller, tube-shaped cores. Our study opens new avenues for dissecting the biochemistry and structural biology of HIV-1 nuclear import as well as downstream events including core uncoating and potentially integration, with unprecedented detail.

摘要

像HIV-1这样的慢病毒通过穿过核孔感染非分裂细胞,但由于其在受感染细胞中的稀缺性和动态性质,研究这一过程一直具有挑战性。在这里,我们开发了一种强大的细胞通透化系统,该系统概括了HIV-1的核输入过程,并建立了一种集成的冷冻相关工作流程,结合冷冻CLEM、冷冻FIB和冷冻ET对这一过程进行靶向成像。这些进展使得成功捕获了1899个处于核输入不同阶段的HIV-1核心。对天然野生型和突变核心的统计和结构分析表明,HIV-1的核输入取决于衣壳弹性和核孔适应性,以及诸如CPSF6等核因子。脆性核心无法进入核孔复合体(NPC),而缺乏CPSF6结合的核心则滞留在NPC内部,导致核输入受损。有趣的是,核孔起到了选择性过滤器的作用,有利于较小的管状核心的输入。我们的研究以前所未有的细节为剖析HIV-1核输入的生物化学和结构生物学以及包括核心解聚和潜在整合在内的下游事件开辟了新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bd09/11908238/967eb34d9586/nihpp-2025.03.04.641496v1-f0001.jpg

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