Sep 2026· Current Biology· 0 citations· 79 references
Medicine
TL;DR
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.
Abstract
The type VI secretion system (T6SS) is a contractile nanomachine used by Gram-negative bacteria to deliver effector proteins into target cells, contributing to both interbacterial competition and pathogenesis. Although T6SS gene clusters are present in recently isolated commensal and pathogenic Escherichia coli strains, they are absent from classical laboratory strains that have been propagated for decades in pure cultures, suggesting that T6SS can be lost in the absence of competition. Here, we combined experimental evolution with whole-genome sequencing to track the fate of the enteroaggregative Escherichia coli (EAEC) Sci1 T6SS during competition with either T6SS-susceptible or T6SS-immune bacteria. After ∼640 generations, T6SS activity was largely maintained during competition with T6SS-susceptible bacteria, whereas ∼90% of clones evolved with T6SS-immune bacteria lost or attenuated T6SS activity through diverse mutations within the sci1 promoter, essential T6SS structural genes, or the rfaH transcriptional antiterminator. We 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. Our findings highlight how experimental evolution can reveal the selective forces shaping T6SS maintenance and identify new regulatory components controlling its activity.
Conditional T6SS silencing is identified as a potential adaptive strategy that promotes survival within multispecies microbial communities, particularly in environments containing bacteria with highly active or more potent T6SS machineries.
Stephan P. Ebenberger, J. Pombo, Alexander Rechberger et al.· Microorganisms· 0 citations
Pathogenic bacteria tightly regulate gene expression in response to environmental cues. In Burkholderia species, the Type VI Secretion Systems (T6SS) mediate interbacterial competition and host cell interactions. Here, we show that B. thailandensis switches from the anti-bacterial T6SS-1 to the anti-eukaryotic T6SS-5 d...
H. Cheung, Daria Jacqueline Wüst, M. Plum et al.· EMBO Reports· 0 citations
The type VI secretion system (T6SS) is a molecular harpoon used by 19% of sequenced bacteria to inject toxic proteins into microbial competitors or host cells. Despite its widespread distribution, many T6SS effectors (T6Es) remain unidentified in bacterial genomes. Here, we developed an XGBoost classifier integrating 4...
Avital Akerman-Arad, A. Danov, Yuval Chausho et al.· bioRxiv· 0 citations
Interkingdom competition between bacteria and fungi in nutrient-limited environments drives microbial community dynamics, yet the molecular mechanisms enabling bacterial dominance during bacterial-fungal interaction remain poorly characterized. This study reveals a paradigm-shifting role for bacterial type IV secretion...
Long Lin, Zhi-Yuan Zhang, Hong-Da Fang et al.· Science Advances· 0 citations
This work probes the structure and function of the orphan toxin-immunity pair Rhs2-SciX, demonstrates the biochemical diversity of Salmonella T6SS effectors, and highlights the conserved T6SS toxicity strategy of binding EF-Tu.
N. Cobo, S. Goyal, David E. Davidson et al.· Journal of Molecular Biology· 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
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