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Antibiotic Dereplication Using the Antibiotic Resistance Platform
Published on: October 17, 2019
Interplay among Different Fosfomycin Resistance Mechanisms in Klebsiella pneumoniae
M Ortiz-Padilla1,2,3,4, I Portillo-Calderón1,3,4, B de Gregorio-Iaria1
1Unidad de Gestión Clínica de Enfermedades Infecciosas, Microbiología y Medicina Preventiva, Hospital Universitario Virgen Macarena, Seville, Spain.
Abstract:
The objectives of this study were to characterize the role of the uhpT, glpT, and fosA genes in fosfomycin resistance in Klebsiella pneumoniae and evaluate the use of sodium phosphonoformate (PPF) in combination with fosfomycin. Seven clinical isolates of K. pneumoniae and the reference strain (ATCC 700721) were used, and their genomes were sequenced. ΔuhpT, ΔglpT, and ΔfosA mutants were constructed from two isolates and K. pneumoniae ATCC 700721. Fosfomycin susceptibility testing was done by the gradient strip method. Synergy between fosfomycin and PPF was studied by checkerboard assay and analyzed using SynergyFinder. Spontaneous fosfomycin mutant frequencies at 64 and 512 mg/liter, in vitro activity using growth curves with fosfomycin gradient concentrations (0 to 256mg/liter), and time-kill assays at 64 and 307 mg/liter were evaluated with and without PPF (0.623 mM). The MICs of fosfomycin against the clinical isolates ranged from 16 to ≥1,024 mg/liter. The addition of 0.623 mM PPF reduced fosfomycin MIC between 2- and 8-fold. Deletion of fosA led to a 32-fold decrease. Synergistic activities were observed with the combination of fosfomycin and PPF (most synergistic area at 0.623 mM). The lowest fosfomycin-resistant mutant frequencies were found in ΔfosA mutants, with decreases in frequency from 1.69 × 10-1 to 1.60 × 10-5 for 64 mg/liter of fosfomycin. In the final growth monitoring and time-kill assays, fosfomycin showed a bactericidal effect only with the deletion of fosA and not with the addition of PPF. We conclude that fosA gene inactivation leads to a decrease in fosfomycin resistance in K. pneumoniae The pharmacological approach using PPF did not achieve enough activity, and the effect decreased with the presence of fosfomycin-resistant mutations.
Insights
Inactivating the fosA gene significantly reduces fosfomycin resistance in Klebsiella pneumoniae. Combining fosfomycin with sodium phosphonoformate (PPF) showed synergy but lacked sufficient bactericidal activity against resistant strains.
Area of Science:
- Microbiology
- Genetics
- Pharmacology
Background:
- Fosfomycin is a crucial antibiotic for treating multidrug-resistant Gram-negative infections.
- Understanding the genetic basis of fosfomycin resistance in Klebsiella pneumoniae is essential for effective treatment strategies.
Purpose of the Study:
- To investigate the roles of uhpT, glpT, and fosA genes in K. pneumoniae fosfomycin resistance.
- To evaluate the synergistic potential of sodium phosphonoformate (PPF) with fosfomycin.
Main Methods:
- Genome sequencing of clinical K. pneumoniae isolates and a reference strain.
- Construction of uhpT, glpT, and fosA deletion mutants.
- Antimicrobial susceptibility testing, checkerboard assays, and time-kill assays.
Main Results:
- Fosfomycin MICs varied widely (16 to ≥1,024 mg/L) among clinical isolates.
- PPF (0.623 mM) reduced fosfomycin MICs 2- to 8-fold, showing synergistic activity.
- Deletion of the fosA gene decreased fosfomycin resistance by 32-fold and significantly reduced mutant frequencies.
Conclusions:
- Inactivation of the fosA gene is a key factor in reducing fosfomycin resistance in K. pneumoniae.
- While PPF exhibits synergy with fosfomycin, it does not provide sufficient bactericidal activity, especially in the presence of fosfomycin-resistant mutations.
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