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Resistance to pefloxacin in Pseudomonas aeruginosa

M Michea-Hamzehpour1, C Lucain, J C Pechere

  • 1Département de Microbiologie Médicale, Centre Médical Universitaire, Geneva, Switzerland.

Insights

Mechanisms of pefloxacin resistance in Pseudomonas aeruginosa involve altered DNA gyrase and reduced outer membrane permeability. These changes, including decreased protein D2 expression and increased calcium, contribute to fluoroquinolone resistance.

Area of Science:

  • Microbiology
  • Molecular Biology
  • Biochemistry

Background:

  • Fluoroquinolone antibiotics like pefloxacin are crucial for treating bacterial infections.
  • Understanding resistance mechanisms is vital for effective antimicrobial therapy.
  • Pseudomonas aeruginosa is an opportunistic pathogen known for developing antimicrobial resistance.

Purpose of the Study:

  • To investigate the mechanisms of pefloxacin resistance in Pseudomonas aeruginosa.
  • To identify specific molecular alterations contributing to reduced susceptibility.
  • To correlate phenotypic resistance with genotypic and biochemical changes.

Main Methods:

  • Comparative analysis of isogenic Pseudomonas aeruginosa strains with varying pefloxacin resistance levels.
  • Measurement of [2-3H]adenine incorporation to assess DNA gyrase activity.
  • Analysis of [14C]pefloxacin labeling in intact cells and outer membrane fractions.
  • Outer membrane protein profiling, lipopolysaccharide analysis, and 3-deoxy-D-mannooctulosonic acid quantification.
  • Western blotting with anti-OmpF antibody to detect protein modifications.

Main Results:

  • Pefloxacin resistance correlated with altered DNA gyrase activity in strain PT2-r.
  • Reduced outer membrane permeability, indicated by decreased [14C]pefloxacin labeling, was observed in strains PT1 and PT2.
  • Outer membranes of resistant strains showed increased calcium and phosphorus content, decreased expression of protein D2, altered lipopolysaccharide patterns, and increased 3-deoxy-D-mannooctulosonic acid.
  • Calcium influenced OmpF electrophoretic mobility in resistant strains.

Conclusions:

  • Pefloxacin resistance in Pseudomonas aeruginosa is multifactorial, involving both target modification (DNA gyrase) and reduced drug uptake.
  • Decreased expression of outer membrane protein D2 and altered lipopolysaccharide composition contribute to permeability defects.
  • These findings highlight the complex adaptive strategies employed by P. aeruginosa to evade fluoroquinolone antibiotics.

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