Reversion to sensitivity explains limited transmission of resistance in a hospital pathogen

Kevin C Tracy1, Jordan McKaig2, Clare Kinnear3

  • 1Department of Computational Medicine and Bioinformatics, University of Michigan.

Insights

Hospital bacteria evolve resistance to antibiotics. When antibiotic pressure is removed, high-level resistance can rapidly decrease, potentially limiting the spread of resistant strains in healthcare settings.

Area of Science:

  • Microbiology
  • Evolutionary Biology
  • Infectious Diseases

Background:

  • Bacterial pathogens in hospitals face fluctuating antibiotic exposure and must transmit between patients.
  • Rising antibiotic resistance in hospitals is a significant public health concern.
  • The loss of antibiotic resistance in the absence of selective pressure is an understudied aspect of resistance dynamics.

Purpose of the Study:

  • To investigate the hypothesis that antibiotic resistance with a high cost reverts to sensitivity more quickly when antibiotic pressure is removed.
  • To compare the stability of daptomycin resistance in *Enterococcus faecium* that emerged *de novo* versus that which was putatively transmitted.

Main Methods:

  • Utilized a diverse set of patient-derived, daptomycin-resistant *Enterococcus faecium* isolates.
  • Compared strains with *de novo* resistance emergence to those with putatively transmitted resistance.
  • Allowed resistant strains to evolve under antibiotic-free laboratory conditions and sequenced evolved isolates.

Main Results:

  • Putatively transmitted resistant strains generally had lower resistance levels but showed minimal loss of resistance in antibiotic-free conditions.
  • *De novo* resistant strains exhibited higher resistance levels but greater declines in resistance *in vitro*.
  • Reversal of high-level resistance was linked to specific evolutionary pathways associated with resistance mutations, indicating accessible fitness trade-offs.

Conclusions:

  • Rapid loss of high-level antibiotic resistance in *E. faecium* can occur via accessible evolutionary pathways when antibiotic pressure is removed.
  • This rapid reversal may limit the spread of certain resistant strains within hospitals.
  • The dynamics of resistance loss shape the diversity of resistance phenotypes observed across patients.

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