Antimicrobial resistance level and conjugation permissiveness shape plasmid distribution in clinical enterobacteria

Aida Alonso-Del Valle1, Laura Toribio-Celestino1, Anna Quirant2

  • 1Centro Nacional de Biotecnología, Consejo Superior de Investigaciones Cientificas, Madrid 28049, Spain.

Insights

Antimicrobial resistance (AMR) plasmids like pOXA-48 spread easily between bacteria. Specific bacterial clones, such as Klebsiella pneumoniae, are better hosts, driving AMR evolution in hospitals.

Area of Science:

  • Microbiology
  • Genetics
  • Epidemiology

Background:

  • Conjugative plasmids are key drivers of antimicrobial resistance (AMR) gene spread in bacterial pathogens.
  • AMR plasmids, like the carbapenem resistance plasmid pOXA-48, are prevalent in clinical settings but show non-random distribution patterns.
  • Successful associations between specific plasmids and bacterial clones, such as pOXA-48 with Klebsiella pneumoniae, pose significant threats to hospitalized patients.

Purpose of the Study:

  • To investigate the factors influencing the distribution of AMR plasmids in clinically relevant bacteria.
  • To analyze pOXA-48-associated AMR levels and conjugation dynamics in various enterobacterial hosts.
  • To model the contribution of AMR levels and conjugation permissiveness to plasmid distribution.

Main Methods:

  • Combined in vitro and in vivo experimental approaches.
  • Analyzed AMR levels and conjugation frequencies in wild-type enterobacterial strains from hospitalized patients.
  • Developed a mathematical model using experimentally determined parameters.

Main Results:

  • Significant host-specific variability in AMR levels and conjugation dynamics was observed.
  • Klebsiella spp. exhibited higher pOXA-48-mediated AMR and conjugation frequencies compared to Escherichia coli.
  • Mathematical modeling indicated that clones with high AMR and conjugation permissiveness are crucial for plasmid stabilization in communities.

Conclusions:

  • Host-specific traits, including AMR levels and conjugation permissiveness, significantly influence AMR plasmid distribution.
  • The preferential association of pOXA-48 with K. pneumoniae clones can be explained by their superior plasmid-associated phenotypes.
  • Variability in plasmid-associated phenotypes shapes AMR evolution in clinical bacterial communities.