Phenotypic and molecular characterization of fluoroquinolone resistant Pseudomonas aeruginosa isolates in Palestine

G Adwan1, G Omar1

  • 1An-Najah National University, Department of Biology and Biotechnology, Nablus, Palestine.

Insights

Palestinian Pseudomonas aeruginosa strains show high resistance to fluoroquinolones due to mutations in key genes and the presence of virulence factors. These findings highlight the urgent need for enhanced infection control measures in healthcare settings.

Area of Science:

  • Microbiology
  • Genetics
  • Antimicrobial Resistance

Background:

  • Fluoroquinolones are critical for treating Pseudomonas aeruginosa infections.
  • P. aeruginosa exhibits increasing resistance to antibiotics, posing a significant public health challenge.
  • Understanding the genetic basis of fluoroquinolone resistance in P. aeruginosa is crucial for effective treatment strategies.

Purpose of the Study:

  • To investigate fluoroquinolone resistance mechanisms in P. aeruginosa isolates from Palestine.
  • To analyze the genetic diversity and population structure of resistance genes (gyrA, parC, parE) and virulence factors.
  • To assess the prevalence of beta-lactamases and integrons in these resistant strains.

Main Methods:

  • Phenotypic detection of fluoroquinolone resistance and beta-lactamase production.
  • Polymerase Chain Reaction (PCR) for detecting beta-lactamase genes, virulence factors (exoT, exoY), and integrons.
  • DNA sequencing of gyrA, parC, and parE genes.
  • Phylogenetic analysis, population diversity, and haplotype determination using MEGA, DnaSP, and Network software.
  • Calculation of Minimum Inhibitory Concentrations (MIC) for ciprofloxacin and norfloxacin.

Main Results:

  • All 11 P. aeruginosa isolates exhibited high MIC values for ciprofloxacin and norfloxacin (32-256 µg/ml).
  • All isolates carried exoT or exoT/exoY genes, various beta-lactamase genes, and 82% harbored class 1 integrons.
  • Sequencing of gyrA, parC, and parE revealed high haplotype diversity (0.945-0.982) and low nucleotide diversity (0.01225-0.02001).
  • Median-joining networks showed a star-like expansion, and neutrality tests indicated negative values, suggesting population expansion.

Conclusions:

  • Palestinian fluoroquinolone-resistant P. aeruginosa strains possess high resistance levels, beta-lactamase production, type III secretion exotoxin genes, and mutations in QRDR regions.
  • These genetic factors contribute to strain invasiveness and treatment difficulty.
  • The widespread isolation from multiple centers underscores the need for strict infection control in Palestinian healthcare facilities.
  • Molecular analysis indicates a lack of significant genetic differentiation among Palestinian resistant P. aeruginosa haplotypes, though further mutations may be present.