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Shraiteh, B.

Publications and source records attributed to Shraiteh, B..

2 recordsLinked to original sources

A family of endonucleases that block nanotube-mediated plasmid dissemination

Small non-conjugative plasmids constitute a substantial portion of the bacterial mobile genome, driving the dissemination of beneficial genes, with their transfer primarily attributed to transformation, transduction, or co-mobilization with conjugative elements1-3. Here we explore an understudied plasmid spread route among bacteria, mediated by intercellular membranous nanotube conduits4. We reveal that, unlike traditional donor-to-recipient delivery, Nanotube-dependent Plasmid exchange (NPex) operates bidirectionally, enabling both plasmid donation and, to a lesser extent, plasmid acquisition. By identifying a Bacillus subtilis natural isolate deficient in NPex, we discovered a prophage-encoded factor, YokF, that blocks plasmid transmission, chiefly acting within the donor cell to inhibit plasmid donation. YokF is a nuclease that localizes to the membrane, where it interacts with a nanotube component to selectively impede plasmid transfer through degradation. Importantly, YokF homologs from various bacterial species were found to exhibit anti-NPex activity. Given their prevalence in Gram-positive bacteria, we propose that YokF homologs represent a conserved family of NPex gatekeepers that restrict plasmid flow within bacterial communities.

microbiology↗

Balanced cell division is secured by two different regulatory sites in OxyS RNA

By interfering with cell division, the Escherichia coli oxidative stress-induced OxyS small RNA brings about cell cycle arrest thus allowing DNA damage repair. Cell division and cell elongation are opposing functions to the extent that inhibition of cell division requires a parallel inhibition of cell elongation for the cells to survive. In this study, we report that in addition to cell division OxyS inhibits mepS encoding an essential peptidoglycan endopeptidase responsible for cell elongation. Furthermore, a phylogenetic evolutionary target conservation analysis of OxyS homologs to identify OxyS most common function revealed that the majority of OxyS targets belong to the category of "cell cycle" followed by "peptidoglycan metabolism", especially cell elongation. mepS is the most frequent target of this category, predicted to be regulated by OxyS in 64 % of the 146 organisms studied. We suggest that cell cycle arrest and balancing between cell division and cell elongation are important and conserved functions of the oxidative stress induced sRNA OxyS.

microbiology↗