Pre-existing heterogeneity facilitates development of heteroresistance upon gene acquisition

Siddharth Jaggavarapu1,2,3, David A Hufnagel1,2,3, David S Weiss1,2,3

  • 1Emory Antibiotic Resistance Center, Atlanta, GA, USA.

Insights

Antibiotic resistance is a growing threat. This study reveals how minor resistant bacterial subpopulations, termed heteroresistance, can evolve from a state of increased susceptibility, called heterosusceptibility, potentially predicting future resistance.

Area of Science:

  • Microbiology
  • Evolutionary Biology
  • Antimicrobial Resistance

Background:

  • Antibiotic resistance leads to millions of deaths annually, with heteroresistance often undetected by diagnostics.
  • Heteroresistance involves a small, unstable subpopulation of resistant cells, which can emerge during treatment and cause therapy failure.

Approach:

  • Studied the evolution of antibiotic resistance using the antibiotic fosfomycin.
  • Investigated the role of the resistance gene *fosA* in the development of heteroresistance and heterosusceptibility.
  • Analyzed 103 carbapenem-resistant Enterobacterales (CRE) isolates to survey the prevalence of these phenomena.

Key Points:

  • Heteroresistance can evolve from heterosusceptibility, a state where a subpopulation has a higher minimum inhibitory concentration (MIC) but remains susceptible.
  • Acquisition of the *fosA* gene can convert heterosusceptibility to heteroresistance.
  • Deletion of *fosA* from heteroresistant isolates can generate heterosusceptibility, indicating a reversible mechanism.

Conclusions:

  • The study elucidates a key mechanism for the evolution of antibiotic heteroresistance.
  • Observed widespread heterosusceptibility across different bacterial species and to various antibiotics.
  • Suggests that monitoring for heterosusceptibility can help predict the emergence of heteroresistance.

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