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Nat Microbiol. 2018 Dec;3(12):1429-1440. doi: 10.1038/s41564-018-0262-z. Epub 2018 Oct 22.
2
Two pKM101-encoded proteins, the pilus-tip protein TraC and Pep, assemble on the Escherichia coli cell surface as adhesins required for efficient conjugative DNA transfer.两个 pKM101 编码蛋白,菌毛尖端蛋白 TraC 和 Pep,作为大肠杆菌细胞表面上用于有效接合性 DNA 转移的黏附素组装。
Mol Microbiol. 2019 Jan;111(1):96-117. doi: 10.1111/mmi.14141. Epub 2018 Oct 21.
3
Spread and Persistence of Virulence and Antibiotic Resistance Genes: A Ride on the F Plasmid Conjugation Module.毒力基因与抗生素抗性基因的传播及持久性:搭乘F质粒接合模块
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Curr Top Microbiol Immunol. 2017;413:115-141. doi: 10.1007/978-3-319-75241-9_5.
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Biological Diversity and Evolution of Type IV Secretion Systems.生物多样性与 IV 型分泌系统的进化。
Curr Top Microbiol Immunol. 2017;413:1-30. doi: 10.1007/978-3-319-75241-9_1.

IV 型分泌系统的生物学和结构多样性。

Biological and Structural Diversity of Type IV Secretion Systems.

机构信息

Department of Microbiology and Molecular Genetics, McGovern Medical School, Houston, TX 77030.

出版信息

Microbiol Spectr. 2019 Mar;7(2). doi: 10.1128/microbiolspec.PSIB-0012-2018.

DOI:10.1128/microbiolspec.PSIB-0012-2018
PMID:30953428
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6452883/
Abstract

The bacterial type IV secretion systems (T4SSs) are a functionally diverse superfamily of secretion systems found in many species of bacteria. Collectively, the T4SSs translocate DNA and monomeric and multimeric protein substrates to bacterial and eukaryotic cell types. T4SSs are composed of two large subfamilies, the conjugation machines and the effector translocators that transmit their cargoes through establishment of direct donor-target cell contacts, and a third small subfamily capable of importing or exporting substrates from or to the milieu. This review summarizes recent mechanistic and structural findings that are shedding new light on how T4SSs have evolved such functional diversity. Translocation signals are now known to be located C terminally or embedded internally in structural folds; these signals in combination with substrate-associated adaptor proteins mediate the docking of specific substrate repertoires to cognate VirD4-like receptors. For the Dot/Icm system, recent work has elucidated the structural basis for adaptor-dependent substrate loading onto the VirD4-like DotL receptor. Advances in definition of T4SS machine structures now allow for detailed comparisons of nanomachines closely related to the VirB/VirD4 T4SS with those more distantly related, e.g., the Dot/Icm and Cag T4SSs. Finally, it is increasingly evident that T4SSs have evolved a variety of mechanisms dependent on elaboration of conjugative pili, membrane tubes, or surface adhesins to establish productive contacts with target cells. T4SSs thus have evolved extreme functional diversity through a plethora of adaptations impacting substrate selection, machine architecture, and target cell binding.

摘要

细菌的 IV 型分泌系统 (T4SS) 是一种功能多样的分泌系统超家族,存在于许多种细菌中。T4SS 共同将 DNA 和单体及多聚体蛋白底物转运到细菌和真核细胞类型中。T4SS 由两个大的亚家族组成,即接合机器和效应器转运器,它们通过建立直接的供体-靶细胞接触来传递它们的货物,还有一个能够从环境中输入或输出底物的第三小亚家族。这篇综述总结了最近的机制和结构发现,这些发现为 T4SS 如何进化出如此多样的功能提供了新的线索。现在已知转运信号位于 C 末端或嵌入结构折叠内部;这些信号与底物相关的衔接蛋白一起,介导特定底物库与同源 VirD4 样受体的对接。对于 Dot/Icm 系统,最近的工作阐明了依赖衔接蛋白将底物加载到 VirD4 样 DotL 受体上的结构基础。T4SS 机器结构定义的进展现在允许对与 VirB/VirD4 T4SS 密切相关的纳米机器进行详细比较,也可以与那些更远缘的纳米机器进行比较,例如 Dot/Icm 和 Cag T4SS。最后,越来越明显的是,T4SS 通过多种机制进化而来,这些机制依赖于复杂的接合菌毛、膜管或表面黏附素的形成,以与靶细胞建立有效的接触。因此,T4SS 通过影响底物选择、机器结构和靶细胞结合的大量适应性,进化出了极端多样的功能。