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Testing the Role of Multicopy Plasmids in the Evolution of Antibiotic Resistance
Published on: May 2, 2018
Dynamics of Mutations during Development of Resistance by Pseudomonas aeruginosa against Five Antibiotics
Yanfang Feng1, Martijs J Jonker2, Ioannis Moustakas2
1Department of Molecular Biology and Microbial Food Safety, Swammerdam Institute of Life Sciences, University of Amsterdam, Amsterdam, The Netherlands.
Abstract:
Pseudomonas aeruginosa is an opportunistic pathogen that causes considerable morbidity and mortality, specifically during intensive care. Antibiotic-resistant variants of this organism are more difficult to treat and cause substantial extra costs compared to susceptible strains. In the laboratory, P. aeruginosa rapidly developed resistance to five medically relevant antibiotics upon exposure to stepwise increasing concentrations. At several time points during the acquisition of resistance, samples were taken for whole-genome sequencing. The increase in the MIC of ciprofloxacin was linked to specific mutations in gyrA, parC, and gyrB, appearing sequentially. In the case of tobramycin, mutations in fusA, HP02880, rplB, and capD were induced. The MICs of the beta-lactam compounds meropenem and ceftazidime and the combination of piperacillin and tazobactam correlated linearly with beta-lactamase activity but not always with individual mutations. The genes that were mutated during the development of beta-lactam resistance differed for each antibiotic. A quantitative relationship between the frequency of mutations and the increase in resistance could not be established for any of the antibiotics. When the adapted strains are grown in the absence of the antibiotic, some mutations remained and others were reversed, but this reversal did not necessarily lower the MIC. The increased MIC came at the cost of moderately reduced cellular functions or a somewhat lower growth rate. In all cases except ciprofloxacin, the increase in resistance seems to be the result of complex interactions among several cellular systems rather than individual mutations.
Insights
Pseudomonas aeruginosa rapidly develops antibiotic resistance through sequential mutations. This resistance comes at a cost to bacterial growth and cellular functions, with complex interactions driving resistance to most antibiotics.
Area of Science:
- Microbiology
- Genetics
- Infectious Diseases
Background:
- Pseudomonas aeruginosa is a significant opportunistic pathogen, particularly in intensive care settings.
- Antibiotic-resistant strains pose treatment challenges and increase healthcare costs.
Purpose of the Study:
- To investigate the genetic mechanisms and evolutionary dynamics of Pseudomonas aeruginosa developing resistance to medically relevant antibiotics.
- To understand the relationship between mutations, minimum inhibitory concentrations (MICs), and fitness costs.
Main Methods:
- Stepwise increase of antibiotic concentrations to induce resistance in P. aeruginosa.
- Whole-genome sequencing at various stages of resistance acquisition.
- Analysis of mutations in genes related to antibiotic resistance and their correlation with MICs.
Main Results:
- Sequential mutations in gyrA, parC, and gyrB were linked to ciprofloxacin resistance.
- Tobramycin resistance involved mutations in fusA, HP02880, rplB, and capD.
- Beta-lactam resistance correlated with beta-lactamase activity, with varied mutational patterns.
- Resistance acquisition incurred fitness costs, including reduced growth rates.
- Reversal of some mutations upon antibiotic withdrawal did not always decrease MICs.
Conclusions:
- Antibiotic resistance in P. aeruginosa is often driven by complex interactions among cellular systems, not just single mutations, except for ciprofloxacin.
- The development of resistance involves trade-offs in bacterial fitness.
- Understanding these mechanisms is crucial for combating antibiotic resistance in clinical settings.
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