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转录细胞多角体病毒的冷冻电镜结构

Cryo-EM structure of a transcribing cypovirus.

机构信息

National Laboratory of Biomacromolecules, Institute of Biophysics, Chinese Academy of Sciences, 15 Datun Road, Beijing 100101, China.

出版信息

Proc Natl Acad Sci U S A. 2012 Apr 17;109(16):6118-23. doi: 10.1073/pnas.1200206109. Epub 2012 Apr 6.

Abstract

Double-stranded RNA viruses in the family Reoviridae are capable of transcribing and capping nascent mRNA within an icosahedral viral capsid that remains intact throughout repeated transcription cycles. However, how the highly coordinated mRNA transcription and capping process is facilitated by viral capsid proteins is still unknown. Cypovirus provides a good model system for studying the mRNA transcription and capping mechanism of viruses in the family Reoviridae. Here, we report a full backbone model of a transcribing cypovirus built from a near-atomic-resolution density map by cryoelectron microscopy. Compared with the structure of a nontranscribing cypovirus, the major capsid proteins of transcribing cypovirus undergo a series of conformational changes, giving rise to structural changes in the capsid shell: (i) an enlarged capsid chamber, which provides genomic RNA with more flexibility to move within the densely packed capsid, and (ii) a widened peripentonal channel in the capsid shell, which we confirmed to be a pathway for nascent mRNA. A rod-like structure attributable to a partially resolved nascent mRNA was observed in this channel. In addition, conformational change in the turret protein results in a relatively open turret at each fivefold axis. A GMP moiety, which is transferred to 5'-diphosphorylated mRNA during the mRNA capping reaction, was identified in the pocket-like guanylyltransferase domain of the turret protein.

摘要

呼肠孤病毒科双链 RNA 病毒能够在完整的二十面体病毒衣壳内转录和加帽新生的 mRNA,而衣壳在重复的转录循环中保持完整。然而,病毒衣壳蛋白如何促进高度协调的 mRNA 转录和加帽过程仍然未知。环状病毒提供了一个很好的模型系统,用于研究呼肠孤病毒科病毒的 mRNA 转录和加帽机制。在这里,我们通过冷冻电镜报道了一个转录环状病毒的全骨架模型,该模型是根据接近原子分辨率的密度图构建的。与非转录环状病毒的结构相比,转录环状病毒的主要衣壳蛋白发生了一系列构象变化,导致衣壳壳的结构发生变化:(i)扩大的衣壳腔,为基因组 RNA 提供了更多的灵活性,使其能够在密集包装的衣壳内移动;(ii)衣壳壳中的周缘通道变宽,我们证实这是新生 mRNA 的途径。在该通道中观察到了一个归因于部分解析的新生 mRNA 的杆状结构。此外,炮塔蛋白的构象变化导致每个五重轴上的炮塔相对开放。在炮塔蛋白的口袋状鸟苷转移酶结构域中鉴定到了在 mRNA 加帽反应中被转移到 5'-二磷酸化 mRNA 上的 GMP 部分。

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