Selection of Amikacin Hyper-Resistant Pseudomonas aeruginosa After Stepwise Exposure to High Amikacin Concentrations

Carlos F Amábile-Cuevas1

  • 1Fundación Lusara , Mexico City, Mexico .

Microbial Drug Resistance (Larchmont, N.Y.)
|May 17, 2016
PubMed

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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