Widespread Fosfomycin Resistance in Gram-Negative Bacteria Attributable to the Chromosomal fosA Gene

Ryota Ito1, Mustapha M Mustapha1,2, Adam D Tomich1

  • 1Division of Infectious Diseases, University of Pittsburgh School of Medicine, Pittsburgh, Pennsylvania, USA.

Mbio
|August 31, 2017
PubMed

Insights

Fosfomycin resistance in Gram-negative bacteria is often due to FosA proteins. This study found FosA genes are widespread in many species, contributing to intrinsic resistance and potentially transferable resistance mechanisms.

Area of Science:

  • Microbiology
  • Genomics
  • Antimicrobial Resistance

Background:

  • Fosfomycin is an antibiotic with renewed interest for treating extensively drug-resistant (XDR) Gram-negative infections.
  • FosA proteins are glutathione S-transferases conferring resistance by detoxifying fosfomycin.
  • The prevalence of fosA genes in Gram-negative bacteria beyond *Escherichia coli* was largely unknown.

Purpose of the Study:

  • To systematically survey the distribution of fosA genes across diverse Gram-negative bacterial species.
  • To investigate the contribution of chromosomal fosA genes to fosfomycin resistance.
  • To assess the potential of FosA as a target for overcoming fosfomycin resistance.

Main Methods:

  • Bioinformatic analysis of over 18,000 published Gram-negative bacterial genomes from 18 species.
  • Identification and comparison of FosA homologues, focusing on conserved active site residues.
  • Functional analysis of fosA genes through expression in *E. coli* and gene deletion in *Serratia marcescens*.

Main Results:

  • FosA homologues are prevalent in species like *Klebsiella*, *Enterobacter*, *Serratia marcescens*, and *Pseudomonas aeruginosa*, but largely absent in *E. coli*, *Acinetobacter baumannii*, and *Burkholderia cepacia*.
  • Despite sequence divergence, key active site residues in FosA proteins are conserved across species.
  • Chromosomal fosA genes confer high-level fosfomycin resistance, and their absence diminishes resistance in *S. marcescens*.

Conclusions:

  • FosA contributes to intrinsic fosfomycin resistance in many clinically relevant Gram-negative bacteria.
  • Widespread chromosomal fosA genes represent a reservoir for transferable fosfomycin resistance.
  • Inhibiting FosA activity could be a strategy to enhance fosfomycin efficacy against XDR Gram-negative pathogens.

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