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Updated: Aug 16, 2026

Long Term Chronic Pseudomonas aeruginosa Airway Infection in Mice
Published on: March 17, 2014
Hypermutation is a key factor in development of multiple-antimicrobial resistance in Pseudomonas aeruginosa strains
María D Maciá1, David Blanquer, Bernat Togores
1Servicio de Microbiología, Hospital Son Dureta, C. Andrea Doria No. 55, 07014 Palma de Mallorca, Spain.
Abstract:
Pseudomonas aeruginosa is the most relevant pathogen producing chronic lung infections in patients with chronic underlying diseases such as cystic fibrosis (CF), bronchiectasis, and chronic obstructive pulmonary disease (COPD). Hypermutable (or mutator) P. aeruginosa strains, characterized by increased (up to 1,000-fold) spontaneous mutation rates due to alterations of the DNA mismatch repair (MMR) system have been found at high frequencies in the lungs of CF patients, but their role in other chronic processes is still unknown. Sixty-two P. aeruginosa isolates from 30 patients with underlying non-CF chronic respiratory diseases (22 with bronchiectasis and 8 with COPD) and documented chronic infection were studied. Antibiotic susceptibility profiles and mutation frequencies were determined, and complementation assays using the cloned wild-type mutS gene and molecular epidemiology studies (pulsed-field electrophoresis, [PFGE]) were performed with these strains. Thirty-three (53%) of the isolates were hypermutable, and 17 (57%) of the 30 patients were colonized by hypermutable strains. Strains from 11 of the 17 patients were found to be defective in the MMR mutS gene by complementation assays. Interpatient transmission of strains was ruled out by PFGE. Multiple-antimicrobial resistance was documented in 42% of the hypermutable strains in contrast to 0% resistance in the nonhypermutable strains (P < 0.0001). Hypermutable P. aeruginosa strains are extremely prevalent in chronic infections in contrast to what has been described in acute processes, suggesting a role of hypermutation in bacterial adaptation for long-term persistence. Furthermore, hypermutation is found to be a key factor for the development of multiple-antimicrobial resistance, and therefore these findings are expected to have important consequences for the treatment of chronic infections.
Insights
Hypermutable Pseudomonas aeruginosa strains, often found in chronic lung infections, are linked to increased antibiotic resistance. These "mutator" strains, with DNA repair defects, may aid bacterial adaptation and persistence in patients with bronchiectasis and COPD.
Area of Science:
- Microbiology
- Genetics
- Infectious Diseases
Background:
- Pseudomonas aeruginosa is a key pathogen in chronic lung infections, particularly in cystic fibrosis (CF).
- Hypermutable strains, with elevated mutation rates due to DNA mismatch repair (MMR) defects, are common in CF patients but their role in other chronic respiratory diseases is unclear.
Purpose of the Study:
- To investigate the prevalence and characteristics of hypermutable P. aeruginosa in non-CF chronic respiratory diseases.
- To determine the association between hypermutation and antibiotic resistance in these patient populations.
Main Methods:
- Analyzed 62 P. aeruginosa isolates from 30 patients with bronchiectasis or COPD.
- Assessed mutation frequencies, antibiotic susceptibility, and MMR gene mutS function.
- Utilized pulsed-field electrophoresis (PFGE) for molecular epidemiology.
Main Results:
- 53% of isolates were hypermutable; 57% of patients were colonized by hypermutable strains.
- MMR mutS gene defects were identified in strains from 11 patients.
- Multiple-antibiotic resistance was significantly higher in hypermutable strains (42%) compared to non-hypermutable strains (0%).
Conclusions:
- Hypermutable P. aeruginosa strains are highly prevalent in chronic non-CF lung infections, suggesting a role in long-term bacterial adaptation and persistence.
- Hypermutation is a critical factor driving the development of multiple-antibiotic resistance in these chronic infections.
- Findings have significant implications for managing chronic P. aeruginosa infections and combating antimicrobial resistance.
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