Conformational changes in and translocation of small proteins: insights into the ejection mechanism of podophages.

IF 4 2区 医学 Q2 VIROLOGY
Jing Zheng, Hao Xiao, Hao Pang, Li Wang, Jingdong Song, Wenyuan Chen, Lingpeng Cheng, Hongrong Liu
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Abstract

Podophage tails are too short to span the cell envelope during infection. Consequently, podophages initially eject the core proteins within the head for the formation of an elongated trans-envelope channel for DNA ejection. Although the core proteins of bacteriophage T7 have been resolved at near-atomic resolution, the mechanisms of core proteins and DNA ejection remain to be fully elucidated. In this study, we provided improved structures of core proteins in mature T7 and the portal-tail complex in lipopolysaccharide-induced DNA-ejected T7 to resolutions of approximately 3 Å. Using these structures, we identified three small proteins, namely gp14, gp6.7, and gp7.3, and illustrated the conformational changes in and translocation of these proteins from the mature to DNA-ejected states. Our structures indicate that gp6.7, which participates in the assembly of the core and trans-envelope channel, is a core protein, and that gp7.3 serves as a structural scaffold to assist the assembly of the nozzle into the adaptor.

Importance: Podophage T7 core proteins form an elongated trans-envelope channel for genomic DNA delivery into the host cell. The structures of the core proteins within the mature T7 and assembled in the periplasmic tunnel form in the DNA-ejected T7 have been resolved previously. Here, we resolved the structures of two new structural proteins (gp6.7 and gp7.3) within mature T7 and receptor-induced DNA-ejected T7. The gp6.7 protein participates in the assembly of the core complex within mature T7 and the trans-envelope channel during T7 infection; therefore, gp6.7 is a core protein. Before T7 infection, gp7.3 plays a role in promoting the assembly of the nozzle into the adaptor.

荚膜噬菌体的尾部太短,在感染过程中无法跨越细胞包膜。因此,荚膜噬菌体最初会在头部喷射核心蛋白,以形成一个用于喷射 DNA 的拉长的跨包膜通道。虽然噬菌体 T7 的核心蛋白已被解析到接近原子分辨率,但核心蛋白和 DNA 喷射的机制仍有待全面阐明。在这项研究中,我们提供了成熟 T7 中核心蛋白的改进结构,以及脂多糖诱导的 DNA 射出 T7 中门尾复合体的改进结构,其分辨率约为 3 Å。我们的结构表明,gp6.7 是一个核心蛋白,它参与了核心和跨包膜通道的组装,而 gp7.3 则是一个结构支架,协助喷嘴组装到适配器中:荚膜 T7 核心蛋白形成了一个拉长的跨包膜通道,用于将基因组 DNA 运送到宿主细胞中。核心蛋白在成熟 T7 中的结构和在 DNA 射出 T7 中以包膜隧道形式组装的结构以前已经解析。在这里,我们解析了成熟 T7 和受体诱导的 DNA 射出 T7 中两个新结构蛋白(gp6.7 和 gp7.3)的结构。gp6.7蛋白参与了成熟T7内核心复合物和T7感染期间跨包膜通道的组装;因此,gp6.7是一种核心蛋白。在 T7 感染前,gp7.3 在促进喷嘴组装到适配体中发挥作用。
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来源期刊
Journal of Virology
Journal of Virology 医学-病毒学
CiteScore
10.10
自引率
7.40%
发文量
906
审稿时长
1 months
期刊介绍: Journal of Virology (JVI) explores the nature of the viruses of animals, archaea, bacteria, fungi, plants, and protozoa. We welcome papers on virion structure and assembly, viral genome replication and regulation of gene expression, genetic diversity and evolution, virus-cell interactions, cellular responses to infection, transformation and oncogenesis, gene delivery, viral pathogenesis and immunity, and vaccines and antiviral agents.
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