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Updated: Apr 19, 2026

Replication of the Ordered, Nonredundant Library of Pseudomonas aeruginosa strain PA14 Transposon Insertion Mutants
Published on: May 4, 2018
Genome-wide patterns of recombination in the opportunistic human pathogen Pseudomonas aeruginosa
Jeremy R Dettman1, Nicolas Rodrigue2, Rees Kassen3
1Department of Biology and Centre for Advanced Research in Environmental Genomics, University of Ottawa, Ottawa, Ontario, Canada jdettman@uottawa.ca.
Abstract:
The bacterium Pseudomonas aeruginosa is a significant cause of acute nosocomial infections as well as chronic respiratory infections in patients with cystic fibrosis (CF). Recent reports of the intercontinental spread of a CF-specific epidemic strain, combined with high intrinsic levels of antibiotic resistance, have made this opportunistic pathogen an important public health concern. Strain-specific differences correlate with variation in clinical outcomes of infected CF patients, increasing the urgency to understand the evolutionary origin of genetic factors conferring important phenotypes that enable infection, virulence, or resistance. Here, we describe the genome-wide patterns of homologous and nonhomologous recombination in P. aeruginosa, and the extent to which the genomes are affected by these diversity-generating processes. Based on whole-genome sequence data from 32 clinical isolates of P. aeruginosa, we examined the rate and distribution of recombination along the genome, and its effect on the reconstruction of phylogenetic relationships. Multiple lines of evidence suggested that recombination was common and usually involves short stretches of DNA (200-300 bp). Although mutation was the main source of nucleotide diversity, the import of polymorphisms by homologous recombination contributed nearly as much. We also identified the genomic regions with frequent recombination, and the specific sequences of recombinant origin within epidemic strains. The functional characteristics of the genes contained therein were examined for potential associations with a pathogenic lifestyle or adaptation to the CF lung environment. A common link between many of the high-recombination genes was their functional affiliation with the cell wall, suggesting that the products of recombination may be maintained by selection for variation in cell-surface molecules that allows for evasion of the host immune system.
Insights
Pseudomonas aeruginosa, a major cause of nosocomial infections, undergoes frequent recombination. This genetic exchange, particularly in cell wall genes, contributes to its adaptation and virulence in cystic fibrosis patients.
Area of Science:
- Microbiology
- Genetics
- Evolutionary Biology
Background:
- Pseudomonas aeruginosa is a critical pathogen causing nosocomial and cystic fibrosis (CF) respiratory infections.
- High antibiotic resistance and intercontinental spread of epidemic strains highlight its public health significance.
- Understanding genetic factors driving P. aeruginosa infection, virulence, and resistance is crucial due to strain-specific clinical outcome variations.
Purpose of the Study:
- To investigate genome-wide patterns of homologous and nonhomologous recombination in P. aeruginosa.
- To assess the impact of recombination on bacterial genome diversity and phylogenetic reconstruction.
- To identify genomic regions and genes affected by recombination and explore their functional roles in pathogenicity and CF adaptation.
Main Methods:
- Whole-genome sequencing of 32 clinical isolates of P. aeruginosa.
- Analysis of recombination rates, distribution, and DNA fragment sizes (200-300 bp).
- Examination of functional characteristics of genes within high-recombination regions.
Main Results:
- Recombination is common in P. aeruginosa, primarily involving short DNA stretches.
- Homologous recombination contributes significantly to nucleotide diversity, nearly matching mutation rates.
- High-recombination genes are frequently associated with cell wall functions, suggesting adaptation via cell-surface molecule variation.
Conclusions:
- Recombination is a key driver of genetic diversity in P. aeruginosa.
- Selection likely favors recombination in cell wall genes for immune evasion in CF patients.
- Understanding recombination mechanisms provides insights into P. aeruginosa evolution and adaptation.
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