Aug 2026· Journal of Bacteriology· Vol 208· 0 citations· 152 references
Medicine
TL;DR
This review discusses several of the better-studied TAGs, as well as highlight under-researched TAGs that are likely of great significance and present the following six functional categories: Firing Coordinators, Target Recognition Factors, Structural Factors, Transcriptional Regulators, Secretion Regulators, and Unknown TAGs.
Abstract
ABSTRACT The type VI secretion system (T6SS) is a nanomachine utilized by Gram-negative bacteria to secrete toxic effectors. The T6SS is employed against both prokaryotic and eukaryotic targets, allowing for competitive advantage and virulence of the attackers in a wide variety of environments. Recent work has revealed the great diversity of T6SS systems. Beyond the canonical, conserved architectural genes of the T6SS, diverse T6SS-associated genes (TAGs) are employed to optimize T6SS activity, compensate for variations in architecture, and dictate T6SS use. Although various TAGs have been discovered in T6SS gene clusters, they display unique activities in modifying their cognate T6SS. In this review, we discuss several of the better-studied TAGs, as well as highlight under-researched TAGs that are likely of great significance. As a means to better understand TAG roles, identify common principles and unifying themes, we present the following six functional categories: Firing Coordinators, Target Recognition Factors, Structural Factors, Transcriptional Regulators, Secretion Regulators, and Unknown TAGs.
The extent to which chaperones are universally required for effector secretion is evaluated, through analysis of the conservation of chaperone sequence and structure, to discuss how these proteins interact with and support the secretion of diverse substrates.
Kyra Roepke, Alexia J Galsworthy, Adam Agbamu et al.· Microbiology· 0 citations
This review summarizes recent advances in the study of T6SSs that target eukaryotic cells, highlighting their roles in virulence, resistance to environmental predators, and microbial competition, and discusses T6SS-mediated interactions with protozoan predators, fungi, animal hosts and plants.
Izabella Santos Mori Bragil, Bianca B. Batista, José Felipe Teixeira da Silva Santos et al.· Genetics and Molecular Biolo...· 0 citations
The T2SS is a fascinatingly complex “machine” whose contributing parts can vary and whose ability to recognize substrates is primarily conformational, involving spatially separated elements that interact with the T2SS apparatus through transient, multivalent interactions rather than a single dedicated binding motif.
N. Cianciotto, Joshua Mayoral, James A Garnett· Microbiology and Molecular B...· 0 citations
This work combined experimental evolution with whole-genome sequencing and whole-genome sequencing identified two RfaH-binding ops elements within the sci1 cluster, revealing antitermination as a regulatory element of EAEC T6SS transcription, which is conserved among Enterobacteriaceae.
Boris Taillefer, Jonas B. Desjardins, Eric Cascales· Current Biology· 0 citations
Current knowledge on T9SS architecture and function is summarized, the embedded gliding machinery is described, and conceptual advances and open questions regarding the mechanisms, dynamics, and ecological implications of this unique system are highlighted.
Yaëlle Aouizerate, Thierry Doan, Eric Cascales· Annual Review of Microbiolog...· 0 citations
This review systematically examines secretory pathways mediating effector translocation via covalent/non-covalent interactions with the Hcp-VgrG-PAAR puncturing complex and characterizes the distinctive features of Hcp-, VgrG-, and PAAR-dependent effectors.
Tiange Ma, Yan Hu, Jian Xu et al.· The FEBS Journal· 0 citations
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