Experimental evolution of enrofloxacin resistance and cross-resistance in Escherichia coli using a MEGA-plate system

Ádám Kerek1, Bence Török2, Levente Laczkó3

  • 1Department of Pharmacology and Toxicology, University of Veterinary Medicine Budapest, H-1078 Budapest, Hungary; National Laboratory of Infectious Animal Diseases, Antimicrobial Resistance, Veterinary Public Health and Food Chain Safety, University of Veterinary Medicine Budapest, H-1078 Budapest, Hungary.

Insights

Enrofloxacin use in animals drives antimicrobial resistance and cross-resistance in E. coli. This study used the MEGA-plate system to show how stepwise enrofloxacin exposure leads to resistance, highlighting the need for careful veterinary antibiotic use.

Area of Science:

  • Veterinary Medicine
  • Microbiology
  • Genetics

Background:

  • Fluoroquinolones are extensively used in veterinary medicine.
  • Their widespread application raises concerns about antimicrobial resistance and cross-resistance.
  • Understanding resistance mechanisms is crucial for responsible antibiotic stewardship.

Purpose of the Study:

  • To investigate the experimental evolution of enrofloxacin resistance in Escherichia coli.
  • To identify associated cross-resistance patterns to other antimicrobial classes.
  • To elucidate the genetic underpinnings of resistance development using a novel experimental system.

Main Methods:

  • Utilized the Microbial Evolution and Growth Arena (MEGA)-plate system for stepwise enrofloxacin exposure of E. coli.
  • Isolated bacterial populations from different selective pressure zones.
  • Performed antimicrobial susceptibility testing (MIC determination) and whole-genome sequencing.

Main Results:

  • Enrofloxacin resistance increased by 1333-fold in adapted isolates.
  • Significant cross-resistance was observed against β-lactams (8-33x), tetracyclines (4x), and florfenicol (16x).
  • Genomic analysis revealed mutations in fluoroquinolone target genes (gyrA, parC) and multidrug efflux regulators (acrR, marR, robA, emrR).

Conclusions:

  • Enrofloxacin selection promotes resistance and cross-resistance via target modification and efflux pump regulation.
  • The MEGA-plate system effectively models stepwise antimicrobial resistance evolution.
  • Prudent use of enrofloxacin in veterinary medicine is essential to mitigate resistance spread.

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