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Selection of Amikacin Hyper-Resistant Pseudomonas aeruginosa After Stepwise Exposure to High Amikacin Concentrations
1Fundación Lusara , Mexico City, Mexico .
Abstract:
Aerosolized amikacin reaches high concentrations in lung fluids, which are well above the minimum inhibitory concentrations (MICs) of resistant strains of Pseudomonas aeruginosa. However, P. aeruginosa can gain resistance to amikacin through different cumulative mechanisms; amikacin MICs are seldom reported beyond values of 1,000 μg/ml, as tested in clinical microbiology assays. To assess how high amikacin MICs can be reached by graded exposure, four amikacin-resistant P. aeruginosa isolates were grown in a 4-step increased exposure to amikacin; derivative strains were further characterized by measuring their comparative growth rate, biofilm-forming ability, and susceptibility to other antibiotics. In addition, the mechanism underlying the MIC increase was assessed phenotypically, using a set of 12 aminoglycoside disks, and measuring the effect of Phe-Arg-β-naphthylamide, an efflux pump inhibitor. Graded exposure to amikacin increased MICs of resistant strains up to 10,000-20,000 μg/ml, without apparent fitness cost, and having variable consequences on their biofilm-forming ability, and on their susceptibility to other antibiotics. Decreased permeability may have contributed to hyper-resistance, although evidence was inconclusive and variable between strains. Amikacin-resistant P. aeruginosa is able to gain in vitro hyper-resistance with minimal changes in the specific phenotypes that were tested; the ability to achieve high-level amikacin (AMK) resistance may confound the clinical utility of this aerosolized AMK, but clinical data would be required to assess this.
Insights
Pseudomonas aeruginosa can develop extreme resistance to aerosolized amikacin (AMK) in vitro, reaching MICs up to 20,000 μg/ml. This hyper-resistance may impact the clinical effectiveness of AMK therapy for lung infections.
Area of Science:
- Microbiology
- Antimicrobial Resistance
- Pharmacology
Background:
- Aerosolized amikacin (AMK) achieves high lung fluid concentrations, exceeding MICs for many Pseudomonas aeruginosa strains.
- P. aeruginosa can develop resistance to AMK via cumulative mechanisms, typically with MICs below 1,000 μg/ml in clinical assays.
Purpose of the Study:
- To investigate the potential for P. aeruginosa to develop extreme in vitro amikacin resistance through graded exposure.
- To characterize the phenotypic changes, including fitness, biofilm formation, and cross-resistance, associated with amikacin hyper-resistance.
Main Methods:
- Four amikacin-resistant P. aeruginosa isolates were subjected to a 4-step graded amikacin exposure.
- Derivative strains were assessed for growth rate, biofilm formation, susceptibility to other antibiotics, and mechanisms of resistance (efflux pump activity, permeability).
Main Results:
- Graded amikacin exposure increased MICs to 10,000–20,000 μg/ml without significant fitness cost.
- Consequences on biofilm formation and susceptibility to other antibiotics were variable among strains.
- Evidence for decreased permeability contributing to hyper-resistance was inconclusive and strain-dependent.
Conclusions:
- P. aeruginosa can acquire high-level in vitro amikacin resistance with minimal phenotypic changes.
- The potential for developing amikacin hyper-resistance in vitro may challenge the clinical utility of aerosolized AMK.
- Further clinical data are needed to evaluate the impact of this resistance on aerosolized AMK therapy outcomes.
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