Factors that affect transfer of the IncI1 β-lactam resistance plasmid pESBL-283 between E. coli strains

Nadine Händel1, Sarah Otte1, Martijs Jonker2

  • 1Dept. of Molecular Biology & Microbial Food Safety, University of Amsterdam, Swammerdam Institute of Life Sciences, Amsterdam, The Netherlands.

Plos One
|April 2, 2015
PubMed

Insights

Antibiotic resistance genes spread via plasmids, especially through the food chain. Environmental factors like cell density and energy availability influence transfer rates, impacting resistance persistence.

Area of Science:

  • Microbiology
  • Genetics
  • Public Health

Background:

  • Antibiotic resistant bacteria pose a global health threat, leading to treatment failures and increased healthcare costs.
  • Plasmid-mediated conjugation is a primary mechanism for the dissemination of antibiotic resistance genes within and between bacterial species.
  • Similarities in resistance genes between foodborne and hospital-acquired pathogens suggest transmission via the food chain.

Purpose of the Study:

  • To investigate factors influencing the rate of plasmid transfer.
  • To document the transmission of an extended-spectrum β-lactamase (ESBL) plasmid from a foodborne *Escherichia coli* to a susceptible strain under simulated environmental conditions.

Main Methods:

  • Utilized a foodborne *Escherichia coli* isolate carrying a CTX-M-1 harboring IncI1 plasmid as the donor.
  • Transferred the ESBL plasmid to *E. coli* MG1655 under varying simulated environmental conditions.
  • Analyzed plasmid transfer efficiency as a function of cell density, energy availability, and growth rate.

Main Results:

  • Plasmid transfer rates were highest in the absence of antibiotics, with near-complete plasmid uptake by acceptor cells.
  • Increased antibiotic concentrations above the minimum inhibitory concentration (MIC) reduced transfer rates but selected for plasmid-carrying strains.
  • Identified a compensatory mechanism for plasmid carriage fitness costs involving reduced bacterial cell functions.

Conclusions:

  • Cell density, energy availability, and growth rate are key factors modulating plasmid transfer efficiency.
  • Reduced fitness costs associated with plasmid carriage can promote the persistence of resistance genes, even without antibiotic pressure.
  • Findings highlight mechanisms driving the spread and persistence of resistance plasmids, contributing to understanding food chain transmission of antibiotic resistance.