A Disassembly Intermediate of a Non-enveloped Virus Indicates the Pathway of Genome Release.

IF 4.5 2区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Milan Kumar Lokshman, Kirti Suhag, Devbrat Kumar, Subhomoi Borkotoky, Manidipa Banerjee
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引用次数: 0

Abstract

Disassembly of non-enveloped viruses in vivo are typically triggered by cellular factors such as host receptor binding, low pH in the early or late endosomal compartments, protease action in lysosomes, and localized changes in ionic concentrations. These triggers induce alterations in metastable capsids, resulting in the exposure of flexible capsid components and opening of gaps for genome release. Structural analysis of intermediate states is required to understand alterations in protein-protein and RNA-protein contacts in the pathway of capsid destabilization. Obtaining structural details of intermediates requires recreation of the in vivo transition states in stable forms, stepwise, in vitro. Here, we generated an asymmetric reconstruction of an early intermediate state in the disassembly pathway of Flock House Virus, a T = 3 icosahedral insect virus that is a model system for similar-sized non-enveloped viruses. The early intermediate was generated through judicious application, in vitro, of in vivo conditions such as receptor-binding-related transition and endosomal pH. The early intermediate showed asymmetric expansion, as well as asymmetric dynamic movement of the pocket factor, disordering of flexible membrane penetrating peptides and opening of gaps at the 2-fold axis, indicating that disassembly-related structural alterations may be local and not transpire throughout the icosahedral capsid. Surprisingly, the genomic RNA underwent a dramatic conformational alteration which superseded the relatively more subtle changes in the protein component. Recreation of disassembly-related transition states in vitro may be essential for structure-targeted, broadly effective inactivation strategies for non-enveloped viruses.

非包膜病毒的分解中间体表明了基因组释放的途径。
体内非包膜病毒的分解通常由细胞因素触发,如宿主受体结合、早期或晚期内体室的低pH值、溶酶体中的蛋白酶作用和局部离子浓度的变化。这些触发器诱导亚稳态衣壳的改变,导致柔性衣壳组分暴露和基因组释放的缺口打开。为了了解衣壳失稳途径中蛋白质和rna -蛋白质接触的变化,需要对中间状态进行结构分析。获得中间体的结构细节需要在体外逐步重建稳定形式的体内过渡状态。本文对禽舍病毒(一种T=3二十面体昆虫病毒,是类似大小的非包膜病毒的模型系统)裂解途径的早期中间状态进行了非对称重构。早期中间体是通过体外和体内条件(如受体结合相关的过渡和内体ph)的合理应用而产生的。早期中间体表现出不对称的扩张,以及口袋因子的不对称动态运动,柔性膜穿透肽的无序和2轴间隙的打开,表明与拆卸相关的结构改变可能是局部的,而不是整个二十面体衣壳。令人惊讶的是,基因组RNA发生了戏剧性的构象改变,取代了蛋白质成分中相对更微妙的变化。体外重建与拆卸相关的过渡状态对于非包膜病毒的结构靶向、广泛有效的失活策略可能是必不可少的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Molecular Biology
Journal of Molecular Biology 生物-生化与分子生物学
CiteScore
11.30
自引率
1.80%
发文量
412
审稿时长
28 days
期刊介绍: Journal of Molecular Biology (JMB) provides high quality, comprehensive and broad coverage in all areas of molecular biology. The journal publishes original scientific research papers that provide mechanistic and functional insights and report a significant advance to the field. The journal encourages the submission of multidisciplinary studies that use complementary experimental and computational approaches to address challenging biological questions. Research areas include but are not limited to: Biomolecular interactions, signaling networks, systems biology; Cell cycle, cell growth, cell differentiation; Cell death, autophagy; Cell signaling and regulation; Chemical biology; Computational biology, in combination with experimental studies; DNA replication, repair, and recombination; Development, regenerative biology, mechanistic and functional studies of stem cells; Epigenetics, chromatin structure and function; Gene expression; Membrane processes, cell surface proteins and cell-cell interactions; Methodological advances, both experimental and theoretical, including databases; Microbiology, virology, and interactions with the host or environment; Microbiota mechanistic and functional studies; Nuclear organization; Post-translational modifications, proteomics; Processing and function of biologically important macromolecules and complexes; Molecular basis of disease; RNA processing, structure and functions of non-coding RNAs, transcription; Sorting, spatiotemporal organization, trafficking; Structural biology; Synthetic biology; Translation, protein folding, chaperones, protein degradation and quality control.
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