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Published on: October 17, 2019
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.
Abstract:
Fosfomycin is a decades-old antibiotic which is being revisited because of its perceived activity against many extensively drug-resistant Gram-negative pathogens. FosA proteins are Mn2+ and K+-dependent glutathione S-transferases which confer fosfomycin resistance in Gram-negative bacteria by conjugation of glutathione to the antibiotic. Plasmid-borne fosA variants have been reported in fosfomycin-resistant Escherichia coli strains. However, the prevalence and distribution of fosA in other Gram-negative bacteria are not known. We systematically surveyed the presence of fosA in Gram-negative bacteria in over 18,000 published genomes from 18 Gram-negative species and investigated their contribution to fosfomycin resistance. We show that FosA homologues are present in the majority of genomes in some species (e.g., Klebsiella spp., Enterobacter spp., Serratia marcescens, and Pseudomonas aeruginosa), whereas they are largely absent in others (e.g., E. coli, Acinetobacter baumannii, and Burkholderia cepacia). FosA proteins in different bacterial pathogens are highly divergent, but key amino acid residues in the active site are conserved. Chromosomal fosA genes conferred high-level fosfomycin resistance when expressed in E. coli, and deletion of chromosomal fosA in S. marcescens eliminated fosfomycin resistance. Our results indicate that FosA is encoded by clinically relevant Gram-negative species and contributes to intrinsic fosfomycin resistance.IMPORTANCE There is a critical need to identify alternate approaches to treat infections caused by extensively drug-resistant (XDR) Gram-negative bacteria. Fosfomycin is an old antibiotic which is routinely used for the treatment of urinary tract infections, although there is substantial interest in expanding its use to systemic infections caused by XDR Gram-negative bacteria. In this study, we show that fosA genes, which encode dimeric Mn2+- and K+-dependent glutathione S-transferase, are widely distributed in the genomes of Gram-negative bacteria-particularly those belonging to the family Enterobacteriaceae-and confer fosfomycin resistance. This finding suggests that chromosomally located fosA genes represent a vast reservoir of fosfomycin resistance determinants that may be transferred to E. coli Furthermore, they suggest that inhibition of FosA activity may provide a viable strategy to potentiate the activity of fosfomycin against XDR Gram-negative bacteria.
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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