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Muggeo, A.

Publications and source records attributed to Muggeo, A..

2 recordsLinked to original sources

The panC-encoded pantothenate synthetase to tackle carbapenem-resistant OprD Pseudomonas aeruginosa mutant revealed through Tn-Seq

For the World Health Organization, carbapenem-resistant Pseudomonas aeruginosa is a critical priority for which new antimicrobial drugs are needed. Consequently, understanding the underlying mechanisms of resistant bacteria infection will enable the identification of new therapeutic targets. Loss of the OprD porin is the main determinant of resistance to the last resort carbapenem antibiotics and has been described to enhance fitness in vivo and virulence. Transposon sequencing is a high-throughput sequencing technique that makes it possible to identify essential genes (EGs) that may turn out to be therapeutic targets. However, such a strategy has not yet been used for OprD-deficient P. aeruginosa. In this study, we identified the EGs specific to PA14 OprD mutant for LB growth and we established a list of 30 EGs among these, we highlighted the panC gene encoding pantothenate synthetase as a promising target. Using CRISPRi, we confirmed that silencing panC reduced LB growth, and decreased sigX expression, whose overexpression is associated with membrane fluidity, as well as the expression of genes involved in the fatty acid synthesis (FAS). Taking into account the weakness of PA14 OprD mutant due to an altered membrane consecutive to a decrease in unsaturated FAS in the absence of panC, we showed that silencing panC extended the destruction time of 16HBE airway cells. Overall, our findings highlighted the anti-virulence potential of panC inhibition and shed new light on its inhibition as a target for treating carbapenem-resistant OprD-defective PA lung infections.

microbiology↗

A qnr-plasmid allows aminoglycosides to induce SOS in Escherichia coli

The plasmid-mediated quinolone resistance (PMQR) genes have been shown to promote high-level bacterial resistance to fluoroquinolone antibiotics, potentially leading to clinical treatment failures. In Escherichia coli, sub-inhibitory concentrations (sub-MIC) of the widely used fluoroquinolones are known to induce the SOS response. Interestingly, the expression of several PMQR qnr genes is controlled by the SOS master regulator. During the characterization of a small qnrD-plasmid carried in E. coli, we observed that the aminoglycosides become able to induce the SOS response in this species, thus leading to the transcription of qnrD. We found that induction of the SOS response is due to nitric oxide (NO) accumulation in presence of sub-MIC of aminoglycosides. We demonstrated that the NO accumulation is driven by two plasmid genes, ORF3 and ORF4, whose products act at two levels. ORF3 encode a FAD-binding oxidoreductase which helps NO synthesis, while ORF4 code for an FNR-type transcription factor, related to an O2-responsive regulator of hmp expression, able to repress the Hmp-mediated NO detoxification pathway of E. coli. Thus, this discovery, that other major classes of antibiotics may induce the SOS response could have worthwhile implications for antibiotic stewardship efforts in preventing the emergence of resistance.

microbiology↗