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Bour, M.

Publications and source records attributed to Bour, M..

2 recordsLinked to original sources

Mutations in genes lpxL1, bamA and pmrB impair the susceptibility of cystic fibrosis strains of Pseudomonas aeruginosa to murepavadin

Murepavadin is a peptidomimetic exhibiting specific inhibitory activity against Pseudomonas species. In the present study, its in vitro activity was assessed on 230 cystic fibrosis (CF) strains of P. aeruginosa isolated from twelve French hospitals, in comparison with twelve other antipseudomonal antibiotics. Although murepavadin is still in pre-clinical stage of development, 9.1% (n=21) of the strains displayed a resistance superior to 4 mg/L, a level at least 128-fold higher than the modal MIC value of the whole collection ([≤] 0.06 mg/L). Whole-genome sequencing of these 21 strains along with more susceptible isogenic counterparts coexisting in the same patients revealed diverse mutations in genes involved in the synthesis (lpxL1 and lpxL2) or transport of lipopolysaccharides (bamA, lptD, and msbA), or encoding histidine kinases of two-component systems (pmrB and cbrA). Allelic replacement experiments with wild-type reference strain PAO1 confirmed that alteration of genes lpxL1, bamA and/or pmrB can increase murepavadin resistance from 8- to 32-fold. Furthermore, we found that specific amino-acid substitutions in histidine kinase PmrB (G188D, Q105P, and D45E) reduce the susceptibility of P. aeruginosa to murepavadin, colistin and tobramycin, three antibiotics used or intended to be used (murepavadin) in aerosols to treat colonized CF patients. Whether colistin or tobramycin may select mutants resistant to murepavadin or the opposite needs to be addressed by clinical studies.

microbiology↗

Pseudomonas aeruginosa MipA-MipB envelope proteins act as new sensors of polymyxin

Due to the rising incidence of antibiotic resistant infections, the last-line antibiotics polymyxins have resurged in the clinics in parallel with new bacterial strategies of escape. The Gram-negative opportunistic pathogen Pseudomonas aeruginosa develops resistance to colistin/polymyxin by distinct molecular mechanisms, mostly through modification of the lipid A component of the LPS by proteins encoded within the arnBCDATEF-ugd (arn) operon. In this work, we characterized a polymyxin-induced operon, named mipBA, notably present in P. aeruginosa strains devoid of the arn operon. We showed that mipBA is activated by ParR/ParS two-component regulatory system in response to polymyxin. MipA and MipB localize to bacterial outer membrane and form a complex in vitro. Structural modeling revealed that the lipoprotein MipB adopts a {beta}-lactamase fold with two additional C-terminal domains,while MipA folds as an outer-membrane {beta}-barrel, harboring an internal negatively charged channel, able to host a polymyxin molecule. Nano differential scanning fluorimetry (DSF) showed that polymyxin stabilized MipA protein in vitro. Mass spectrometry-based quantitative proteomics on whole bacterial membranes demonstrated that the {Delta}mipBA mutant synthesized less MexXY-OprA proteins in response to polymyxin compared to the wild-type strain, as a consequence of impaired transcriptional activation of the mex operon. We propose MipA/MipB to act as membrane (co)sensors working in concert to activate ParS histidine kinase and help the bacterium to cope with polymyxin-mediated envelope stress through synthesis of the efflux pomp, MexXY-OprA.

microbiology↗