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Reisacher, C.

Publications and source records attributed to Reisacher, C..

2 recordsLinked to original sources

The VapBC Toxin Antitoxin System Enhances Shigella flexneri Fitness Through Coordination of Metabolic Stress Adaptation and Virulence

Shigella flexneri is a facultative intracellular pathogen that causes bacillary dysentery by invading and replicating within intestinal epithelial cells. Successful intracellular survival requires the bacterium to balance metabolic adaptation with the sustained expression of virulence programs by the type III secretion system (T3SS). Toxin- antitoxin (TA) systems, including the highly conserved type II VapBC module, are classically associated with plasmid maintenance via post-segregational killing, but their broader roles during infection remain poorly understood. Here, we investigate the function of the VapBC system during S. flexneri infection. We show that the vapBC operon is activated in response to intracellular stress and that VapC-dependent cleavage of initiator tRNAfMet occurs specifically during infection. The stringent response, primarily mediated by SpoT, appears to influence operon responsiveness by maintaining vapB expression levels, while iron limitation emerges as a strong activator of vapC transcription and activity. Deletion of vapBC impairs T3SS activation and bacterial dissemination, despite normal invasion, and induces a strong host interferon response, including the upregulation of guanylate-binding proteins (GBPs), known to restrict bacterial spread. Transcriptomic profiling of the{Delta} vapBC mutant reveals downregulation of core metabolic genes and upregulation of envelope stress and other TA modules, indicating a loss of intracellular homeostasis. These findings uncover a novel role for VapBC in promoting Shigella fitness by coordinating stress adaptation, virulence expression, and immune evasion, thereby sustaining the bacteriums intracellular lifestyle.

microbiology↗

The human-specific miR-6762-5p is an activator of RhoA GTPase enhancing Shigella flexneri intercellular spreading

MicroRNAs have recently emerged as major players in host-bacterial pathogens interaction, either as part of the host defense mechanism to neutralize infection or as a bacterial arsenal aimed at subverting host cell functions. Here we identify the newly evolutionary emerged human microRNA miR-6762-5p as a new player in the host-Shigella interplay. A microarray analysis in infected epithelial cells allowed the detection of this miRNA exclusively during the late phase of infection. Conditional expression of miR-6762-5p combined with a transcriptome analysis indicated a role in cytoskeleton remodeling. Likewise, miR-6762-5p enhanced stress fibers formation through RhoA activation and in silico analysis identified several regulators of RhoA activity as potential direct transcriptional targets. We further showed that miR-6762-5p expression induces an increase in Shigella intercellular spreading, while miR-6762-5p inhibition reduced bacterial dissemination. Overall, we have identified a human-specific miR-6762-5p acting specifically at the Shigella dissemination step. We propose a model in which the expression of miR-6762-5p induces cytoskeleton modifications through RhoA activation to achieve a successful dissemination of Shigella in the host.

microbiology↗