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MIROUZE, N.

Publications and source records attributed to MIROUZE, N..

2 recordsLinked to original sources

A type I 3' UTR-derived sRNA is involved in heme metabolism and virulence in Staphylococcus aureus

Staphylococcus aureus is a pathogen responsible for a wide array of superficial to life-threatening infections. To efficiently adapt to environmental cues, a complex regulatory network is needed, involving among others regulatory RNAs (sRNAs). Here, we studied Srn_9342, an sRNA transcribed into two isoforms of different lengths and known to interact with RNAIII, leading to a modulation of {delta}-hemolysin production. We showed that the two isoforms are oppositely expressed in a growth phase-dependent manner. Then, we demonstrated using transcriptional fusions and various chromosomally recombinant strains that Srn_9342 is a type I 3UTR-derived sRNA whose the expression of the long form (Srn_9342L) is SigB-dependent. Using a{Delta} srn_9342 mutant, we monitored the transcript level of various RNA partners previously identified by MAPS and showed that the hemQ mRNA level, encoding a protein involved in heme biosynthesis and reported to participate in small colony variant (SCV) phenotype, increased in the mutant. In silico and in vitro biochemical investigations showed that a 5 region of Srn_9342 binds hemQ leading to a repression of the HemQ protein level whereas the overexpression of Srn_9342 induced an SCV phenotype which was partially relieved by the addition of hemin. Finally, we report that the deletion of srn_9342 significantly increased the virulence of the pathogen in a Galleria mellonella model. Taking together, these data uncovered a novel type I 3 UTR-derived sRNA regulating the heme biosynthesis pathway and implicated in virulence and SCV formation in S. aureus.

molecular biology↗

Genetic transformation and cell division delay in competent Staphylococcus aureus

Natural competence for genetic transformation, considered as one of the three main mechanisms leading to horizontal gene transfer in bacteria, is able to promote evolution, through genomic plasticity, and foster antibiotic resistance and virulence factors spreading. Conserved machineries and actors required to perform genetic transformation have been shown to accumulate at different cellular localizations depending on the model organism considered. Here, we show in the human pathogen Staphylococcus aureus that DNA binding, uptake and recombination are spatially and temporally coordinated to ensure S. aureus genetic transformation. We also reveal that localization of genetic transformation proteins is dynamic and preferentially occurs in the vicinity of the division septum. We finally propose that S. aureus competent cells would initiate and then block cell division to ensure the success of genetic transformation before the final constriction of the cytokinetic ring.

microbiology↗