Related Experiment Video
Updated: May 11, 2026

Testing the Role of Multicopy Plasmids in the Evolution of Antibiotic Resistance
Published on: May 2, 2018
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.
Abstract:
Fluoroquinolones are widely used in veterinary medicine, and their extensive application has raised concerns regarding the selection of antimicrobial resistance and cross-resistance. This study investigated the experimental evolution of enrofloxacin resistance and associated cross-resistance in Escherichia coli using a Microbial Evolution and Growth Arena (MEGA)-plate system. A reference E. coli strain (ATCC 25922) was exposed to stepwise increasing concentrations of enrofloxacin, enabling the spatial separation and isolation of bacterial populations adapted to different levels of selective pressure. Isolates recovered from distinct exposure zones were subjected to phenotypic antimicrobial susceptibility testing, including minimum inhibitory concentration (MIC) determination, and whole-genome sequencing to identify genetic changes associated with resistance development. Progressive exposure to enrofloxacin increased the enrofloxacin MIC from 0.003 μg/mL (parental) to 4 μg/mL in 1000 × -zone isolates (1333-fold). Cross-resistance was observed for selected non-fluoroquinolone agents, with MIC increases ranging from 8 to 33-fold for β-lactams, 4-fold for tetracyclines, and 16-fold for florfenicol. Genomic analysis identified mutations in genes encoding fluoroquinolone target enzymes (gyrA, parC) as well as regulatory genes linked to multidrug efflux systems (acrR, marR, robA, emrR). Together, these findings indicate that enrofloxacin-driven selection can promote cross-resistance through a combination of target-site alterations and changes in the regulation of efflux-associated resistance mechanisms. The results show that the MEGA-plate system is a suitable experimental model for studying stepwise resistance evolution and underscore the need for prudent use of enrofloxacin in veterinary settings.
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.
Related Concept Videos
Mechanism of Antibiotic Resistance in MRSA
Evolution of New Traits in Microbes
Development of Antibiotic Resistance
Antibiotic Selection

