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Published on: May 4, 2018
The increasing threat of Pseudomonas aeruginosa high-risk clones
Antonio Oliver1, Xavier Mulet1, Carla López-Causapé1
1Servicio de Microbiología and Unidad de Investigación, Hospital Universitario Son Espases, Instituto de Investigación Sanitaria de Palma (IdISPa), Ctra. Valldemossa 79, 07010 Palma de Mallorca, Spain.
Abstract:
The increasing prevalence of chronic and hospital-acquired infections produced by multidrug-resistant (MDR) or extensively drug-resistant (XDR) Pseudomonas aeruginosa strains is associated with significant morbidity and mortality. This growing threat results from the extraordinary capacity of this pathogen for developing resistance through chromosomal mutations and from the increasing prevalence of transferable resistance determinants, particularly those encoding carbapenemases or extended-spectrum β-lactamases (ESBLs). P. aeruginosa has a nonclonal epidemic population structure, composed of a limited number of widespread clones which are selected from a background of a large quantity of rare and unrelated genotypes that are recombining at high frequency. Indeed, recent concerning reports have provided evidence of the existence of MDR/XDR global clones, denominated high-risk clones, disseminated in hospitals worldwide; ST235, ST111, and ST175 are likely those more widespread. Noteworthy, the vast majority of infections by MDR, and specially XDR, strains are produced by these and few other clones worldwide. Moreover, the association of high-risk clones, particularly ST235, with transferable resistance is overwhelming; nearly 100 different horizontally-acquired resistance elements and up to 39 different acquired β-lactamases have been reported so far among ST235 isolates. Likewise, MDR internationally-disseminated epidemic strains, such as the Liverpool Epidemic Strain (LES, ST146), have been noted as well among cystic fibrosis patients. Here we review the population structure, epidemiology, antimicrobial resistance mechanisms and virulence of the P. aeruginosa high-risk clones. The phenotypic and genetic factors potentially driving the success of high-risk clones, the aspects related to their detection in the clinical microbiology laboratory and the implications for infection control and public health are also discussed.
Insights
Multidrug-resistant Pseudomonas aeruginosa infections are a growing threat due to high-risk clones like ST235. These clones possess extensive resistance mechanisms and are spreading globally, complicating treatment and increasing mortality.
Area of Science:
- Microbiology
- Infectious Diseases
- Genetics
Background:
- Rising rates of multidrug-resistant (MDR) and extensively drug-resistant (XDR) Pseudomonas aeruginosa infections pose significant global health challenges.
- P. aeruginosa exhibits remarkable adaptability, developing resistance via chromosomal mutations and acquiring transferable resistance genes like carbapenemases and extended-spectrum β-lactamases (ESBLs).
Purpose of the Study:
- To review the population structure, epidemiology, antimicrobial resistance, and virulence of high-risk P. aeruginosa clones.
- To discuss factors contributing to the success of these clones, their laboratory detection, and implications for infection control.
Main Methods:
- Literature review of studies on P. aeruginosa population structure and antimicrobial resistance.
- Analysis of epidemiological data on the global dissemination of high-risk clones.
- Examination of genetic and phenotypic resistance mechanisms.
Main Results:
- P. aeruginosa has a nonclonal epidemic structure with a few widespread high-risk clones (e.g., ST235, ST111, ST175) responsible for most MDR/XDR infections.
- High-risk clones, especially ST235, are heavily associated with transferable resistance, including numerous horizontally acquired resistance elements and β-lactamases.
- MDR epidemic strains like the Liverpool Epidemic Strain (LES, ST146) are also significant, particularly in cystic fibrosis patients.
Conclusions:
- High-risk P. aeruginosa clones are major drivers of difficult-to-treat infections worldwide.
- Understanding the genetic and phenotypic drivers of these clones is crucial for effective detection and control.
- Targeted infection control strategies are essential to mitigate the impact of these globally disseminated pathogens.
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