Abstract
<jats:p>Antimicrobial resistance in Pseudomonas aeruginosa has emerged as a major clinical concern. Ciprofloxacin has potent intrinsic activity against P. aeruginosa, but resistance to this antibiotic is increasingly reported in clinical settings. In this study, P. aeruginosa ATCC 27853 strain was exposed to gradually increasing ciprofloxacin concentrations for 50 passages (~100 days). The final selected resistant strain (CIP-R) with 256-fold of minimum inhibitory concentration was studied further. Whole-genome sequencing revealed 12 genomic alterations, including known mutations in the quinolone resistance-determining genes gyrA (Thr83Ile), parC (Thr177Asn), parE (Glu459Lys). A duplication mutation in nfxB (Tyr153_Gly154dup) was also observed. In addition to these genes, we observed mutations in pilA, tadB, psdR, NP446_RS32055 (TRAP transporter permease), multiple dppA3 variants, and a prophage-associated hypothetical gene (NP446_RS24255), which have not been reported previously. The gyrA Thr83Ile substitution was conserved in 86.38% of ciprofloxacin-resistant clinical isolates retrieved from the NCBI database. Resistance acquisition was accompanied by slower growth, impaired swimming and swarming motility, diminished surface attachment, reduced biofilm formation. The resistant strain has enhanced β-lactamase activity, and resistance to levofloxacin, cefepime, and meropenem together with sensitivity to piperacillin–tazobactam and aztreonam. This study highlights the gyrA Thr83Ile mutation as a key genomic marker for molecular screening of ciprofloxacin resistance and reveals secondary adaptive trade-offs that can be targeted for clinical diagnostic and therapeutic decision-making. In conclusion, achieving high-level ciprofloxacin resistance in P. aeruginosa involves non-target-site genomic adaptations and physiological trade-offs beyond classical target mutations.</jats:p>