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Corsini, R.

Publications and source records attributed to Corsini, R..

2 recordsLinked to original sources

In vitro exposure to non-antipseudomonal antibiotics (NAPA) induces Pseudomonas aeruginosa resistance to antipseudomonal antibiotics (APA)

BackgroundPseudomonas aeruginosa readily evolves antimicrobial resistance through regulatory plasticity and stress-adaptive pathways. Clinically, antibiotics lacking intrinsic antipseudomonal activity are often favored with the assumption that they avoid selective pressure on P. aeruginosa. Whether subinhibitory exposure to such "non-antipseudomonal antibiotics" (NAPA) can nevertheless select for canonical resistance pathways remains incompletely defined. Methods: Three P. aeruginosa strains (ATCC 27853 and two bloodstream isolates) were serially passaged over 14 days in the presence of ertapenem, ceftriaxone, or moxifloxacin at one-third the baseline minimum inhibitory concentration (MIC). MICs for antipseudomonal antibiotics (meropenem, ceftazidime, ciprofloxacin) were measured at serial time points and after a 3-day antibiotic-free recovery (day 14). Whole-genome sequencing was performed longitudinally to identify mutations. ResultsNAPA exposure led to reproducible elevations in antipseudomonal MICs: ertapenem triggered up to a 29-fold increase in meropenem MIC, ceftriaxone up to a 31-fold rise in ceftazidime MIC, and moxifloxacin up to a 12-fold increase in ciprofloxacin MIC. Elevated MICs persisted on day 14 despite absence of further antibiotic pressure. Genomic analysis revealed convergent evolution of mutations in efflux regulator genes (nfxB, nalC, nalD, amrR) and the {beta}-lactamase-regulating gene dacB, emerging during periods of MIC escalation and mapping to regulatory pathways governing efflux and AmpC expression. ConclusionSubinhibitory exposure to antibiotics without intrinsic antipseudomonal activity reproducibly selected for heritable multidrug-resistant phenotypes in P. aeruginosa. Resistance arose through convergent evolution in regulatory genes classically associated with direct antipseudomonal antibiotic pressure, demonstrating that resistance architectures can be selected independent of target engagement and underscoring the inevitability of collateral resistance under antibiotic stress. ImportancePseudomonas aeruginosa is a major cause of hospital-acquired infections and is well known for its ability to develop antibiotic resistance. Clinicians often assume that antibiotics without activity against P. aeruginosa do not meaningfully influence its resistance behavior and are therefore safe choices when this organism is not the primary target. Our study challenges this assumption. We show that low-level exposure to such antibiotics is associated with increased resistance to key antipseudomonal drugs, even after the initial antibiotic exposure ends. Rather than arising from a single stable genetic change, resistance was accompanied by shifting genetic alterations in regulatory pathways that control drug efflux and {beta}-lactamase expression. These findings highlight how antibiotic exposure can broaden the evolutionary pathways available for resistance in unintended pathogens. Recognizing these indirect and population-level effects of antibiotic use may help inform more cautious antimicrobial prescribing strategies in clinical settings.

microbiology↗

Modification of the microstructure of the CERN- CLEAR-VHEE beam at the picosecond scale modifies ZFE morphogenesis but has no impact on hydrogen peroxide production.

FLASH has emerged as a significant breakthrough for the future of radiation oncology, as it reduces complications while preserving the tumor killing efficacy. To define the beam parameters for future clinical translation, Very High Energy Electrons (VHEE) delivered at CLEAR and able to reach deep seated tumors were used in conjunction with a FLASH-validated Intermediate Energy Electron (IIE) beam and a 160-225 keV X-ray beam, collectively able to deliver dose rates spanning from 1 Gy/min to 1011 Gy/s. High-throughput chemical assays were used to investigate radiochemical effects of FLASH, while zebrafish embryos served as a model to evaluate its impact on biological outcomes and morphogenesis. This study is the first comprehensive exploration investigating the impact of a large range of dose rates and various temporal parameters from early physico-chemical events to a complex biological system. Data derived at CLEAR revealed that the intensity of the bunch is a critical factor for observing the sparing effect of FLASH and uncovered an unforeseen biological response when electrons are delivered over the picosecond timescale. Present data also suggests that scanning with high intensity beamlets will be optimal for the future clinical translation of FLASH. HighlightsTo investigate the physics parameters required to trigger the FLASH sparing effect, CLEAR/VHEE/CERN beam macro/microstructure was varied. We show that delivery at the picosecond scale: - reduces alteration in the morphogenesis of zebrafish embryos, but - has no impact on secondary hydrogen peroxide production, Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=175 HEIGHT=200 SRC="FIGDIR/small/629203v1_ufig1.gif" ALT="Figure 1"> View larger version (22K): org.highwire.dtl.DTLVardef@1df896aorg.highwire.dtl.DTLVardef@b6b824org.highwire.dtl.DTLVardef@1f35964org.highwire.dtl.DTLVardef@171d60f_HPS_FORMAT_FIGEXP M_FIG C_FIG

cancer biology↗