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人乳头瘤病毒16型衣壳的成熟

Maturation of the human papillomavirus 16 capsid.

作者信息

Cardone Giovanni, Moyer Adam L, Cheng Naiqian, Thompson Cynthia D, Dvoretzky Israel, Lowy Douglas R, Schiller John T, Steven Alasdair C, Buck Christopher B, Trus Benes L

机构信息

Laboratory of Structural Biology, National Institute for Arthritis, Musculoskeletal and Skin Diseases, National Institutes of Health (NIH), Bethesda, Maryland, USA.

Laboratory of Cellular Oncology, National Cancer Institute, NIH, Bethesda, Maryland, USA.

出版信息

mBio. 2014 Aug 5;5(4):e01104-14. doi: 10.1128/mBio.01104-14.

Abstract

Papillomaviruses are a family of nonenveloped DNA viruses that infect the skin or mucosa of their vertebrate hosts. The viral life cycle is closely tied to the differentiation of infected keratinocytes. Papillomavirus virions are released into the environment through a process known as desquamation, in which keratinocytes lose structural integrity prior to being shed from the surface of the skin. During this process, virions are exposed to an increasingly oxidative environment, leading to their stabilization through the formation of disulfide cross-links between neighboring molecules of the major capsid protein, L1. We used time-lapse cryo-electron microscopy and image analysis to study the maturation of HPV16 capsids assembled in mammalian cells and exposed to an oxidizing environment after cell lysis. Initially, the virion is a loosely connected procapsid that, under in vitro conditions, condenses over several hours into the more familiar 60-nm-diameter papillomavirus capsid. In this process, the procapsid shrinks by ~5% in diameter, its pentameric capsomers change in structure (most markedly in the axial region), and the interaction surfaces between adjacent capsomers are consolidated. A C175S mutant that cannot achieve normal inter-L1 disulfide cross-links shows maturation-related shrinkage but does not achieve the fully condensed 60-nm form. Pseudoatomic modeling based on a 9-Å resolution reconstruction of fully mature capsids revealed C-terminal disulfide-stabilized "suspended bridges" that form intercapsomeric cross-links. The data suggest a model in which procapsids exist in a range of dynamic intermediates that can be locked into increasingly mature configurations by disulfide cross-linking, possibly through a Brownian ratchet mechanism. Importance: Human papillomaviruses (HPVs) cause nearly all cases of cervical cancer, a major fraction of cancers of the penis, vagina/vulva, anus, and tonsils, and genital and nongenital warts. HPV types associated with a high risk of cancer, such as HPV16, are generally transmitted via sexual contact. The nonenveloped virion of HPVs shows a high degree of stability, allowing the virus to persist in an infectious form in environmental fomites. In this study, we used cryo-electron microscopy to elucidate the structure of the HPV16 capsid at different stages of maturation. The fully mature capsid adopts a rigid, highly regular structure stabilized by intermolecular disulfide bonds. The availability of a pseudoatomic model of the fully mature HPV16 virion should help guide understanding of antibody responses elicited by HPV capsid-based vaccines.

摘要

乳头瘤病毒是一类无包膜的DNA病毒,可感染脊椎动物宿主的皮肤或黏膜。病毒的生命周期与受感染角质形成细胞的分化密切相关。乳头瘤病毒粒子通过一种称为脱屑的过程释放到环境中,在此过程中,角质形成细胞在从皮肤表面脱落之前失去结构完整性。在此过程中,病毒粒子暴露于氧化性越来越强的环境中,通过主要衣壳蛋白L1相邻分子之间形成二硫键交联而实现稳定。我们使用延时冷冻电子显微镜和图像分析来研究在哺乳动物细胞中组装并在细胞裂解后暴露于氧化环境的HPV16衣壳的成熟过程。最初,病毒粒子是一个松散连接的原衣壳,在体外条件下,它会在数小时内凝聚成更为常见的直径60纳米的乳头瘤病毒衣壳。在这个过程中,原衣壳直径缩小约5%,其五聚体壳粒结构发生变化(最明显的是在轴向区域),相邻壳粒之间的相互作用表面得到巩固。一个无法形成正常的L1间二硫键交联的C175S突变体显示出与成熟相关的收缩,但未达到完全凝聚的60纳米形态。基于对完全成熟衣壳的9埃分辨率重建的伪原子模型揭示了形成壳粒间交联的C端二硫键稳定的“悬桥”。数据提示了一个模型,即原衣壳存在一系列动态中间体,这些中间体可通过二硫键交联,可能通过布朗棘轮机制,锁定为越来越成熟的构型。重要性:人乳头瘤病毒(HPV)几乎导致所有宫颈癌病例,以及很大一部分阴茎癌、阴道/外阴癌、肛门癌和扁桃体癌病例,还有生殖器和非生殖器疣。与癌症高风险相关的HPV类型,如HPV16,通常通过性接触传播。HPV的无包膜病毒粒子显示出高度稳定性,使病毒能够以感染性形式在环境污染物中持续存在。在本研究中,我们使用冷冻电子显微镜阐明了HPV16衣壳在不同成熟阶段的结构。完全成熟的衣壳采用由分子间二硫键稳定的刚性、高度规则的结构。完全成熟的HPV16病毒粒子的伪原子模型的可得性应有助于指导对基于HPV衣壳的疫苗引发的抗体反应的理解。

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