Ciprofloxacin selects for RNA polymerase mutations with pleiotropic antibiotic resistance effects

Franziska Pietsch1, Jessica M Bergman1, Gerrit Brandis1

  • 1Department of Medical Biochemistry and Microbiology, Box 582 Biomedical Center, Uppsala University, Uppsala, Sweden.

Abstract

Insights

New Escherichia coli mutations in RNA polymerase (rpoB) increase resistance to ciprofloxacin by upregulating drug efflux. These findings reveal novel mechanisms driving fluoroquinolone resistance.

Area of Science:

  • Microbiology
  • Molecular Biology
  • Genetics

Background:

  • Fluoroquinolone resistance in bacteria like Escherichia coli is often attributed to target mutations or increased drug efflux via the AcrAB-TolC system.
  • The contribution of other genetic alterations to fluoroquinolone resistance remains less understood.

Purpose of the Study:

  • To investigate whether mutations in the rpoB gene, encoding the RNA polymerase β-subunit, contribute to ciprofloxacin resistance in E. coli.
  • To elucidate the mechanism by which rpoB mutations might confer resistance.

Main Methods:

  • Experimental evolution of E. coli lineages in the presence of ciprofloxacin.
  • Screening for mutations in rpoB and characterization of their effects on susceptibility.
  • RNA sequencing and quantitative RT-PCR to analyze gene expression changes.
  • Assessing the fitness cost and competitive advantage of resistant mutants.

Main Results:

  • Mutations in rpoB were identified in a subset of evolved E. coli lineages, appearing after mutations affecting topoisomerases or efflux.
  • These rpoB mutations conferred a significant fitness cost in drug-free conditions but provided a survival advantage with ciprofloxacin.
  • rpoB mutations led to increased expression of the mdtK gene, encoding a multidrug efflux transporter, which was essential for the resistance phenotype.

Conclusions:

  • Mutations in the RNA polymerase β-subunit (rpoB) represent a novel factor in the evolution of ciprofloxacin resistance.
  • The observed resistance phenotype is mediated by enhanced MdtK-dependent drug efflux, driven by specific rpoB mutations.

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