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Population genomics of Klebsiella pneumoniae
Kelly L Wyres1, Margaret M C Lam1, Kathryn E Holt2,3
1Department of Infectious Diseases, Monash University, Melbourne, Victoria, Australia.
Abstract:
Klebsiella pneumoniae is a common cause of antimicrobial-resistant opportunistic infections in hospitalized patients. The species is naturally resistant to penicillins, and members of the population often carry acquired resistance to multiple antimicrobials. However, knowledge of K. pneumoniae ecology, population structure or pathogenicity is relatively limited. Over the past decade, K. pneumoniae has emerged as a major clinical and public health threat owing to increasing prevalence of healthcare-associated infections caused by multidrug-resistant strains producing extended-spectrum β-lactamases and/or carbapenemases. A parallel phenomenon of severe community-acquired infections caused by 'hypervirulent' K. pneumoniae has also emerged, associated with strains expressing acquired virulence factors. These distinct clinical concerns have stimulated renewed interest in K. pneumoniae research and particularly the application of genomics. In this Review, we discuss how genomics approaches have advanced our understanding of K. pneumoniae taxonomy, ecology and evolution as well as the diversity and distribution of clinically relevant determinants of pathogenicity and antimicrobial resistance. A deeper understanding of K. pneumoniae population structure and diversity will be important for the proper design and interpretation of experimental studies, for interpreting clinical and public health surveillance data and for the design and implementation of novel control strategies against this important pathogen.
Insights
Genomics reveals the complex population structure and evolution of Klebsiella pneumoniae, an opportunistic pathogen. Understanding its antimicrobial resistance and virulence is crucial for developing effective control strategies against this public health threat.
Area of Science:
- Microbiology
- Genomics
- Infectious Diseases
Background:
- Klebsiella pneumoniae is a significant cause of hospital-acquired infections.
- Multidrug-resistant and hypervirulent strains pose increasing clinical and public health challenges.
- Limited understanding of K. pneumoniae ecology, population structure, and pathogenicity hinders effective control.
Purpose of the Study:
- To review how genomics has advanced the understanding of K. pneumoniae.
- To explore the diversity and distribution of antimicrobial resistance and virulence factors.
- To highlight the importance of population structure for developing control strategies.
Main Methods:
- Genomic approaches applied to K. pneumoniae research.
- Analysis of K. pneumoniae taxonomy, ecology, and evolution.
- Investigation of clinically relevant determinants of pathogenicity and antimicrobial resistance.
Main Results:
- Genomics has significantly enhanced understanding of K. pneumoniae diversity.
- Identified clinically relevant determinants of pathogenicity and antimicrobial resistance.
- Revealed insights into K. pneumoniae population structure and evolution.
Conclusions:
- Genomic insights are vital for understanding K. pneumoniae.
- A deeper understanding of population structure is essential for designing effective control strategies.
- Genomics facilitates interpretation of surveillance data and experimental studies.
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