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Updated: Jul 21, 2025

Immunometabolic Circuits in Infection for Advancing Host Directed Therapies
Published on: September 13, 2024
Immunometabolic control by Klebsiella pneumoniae
Alice Prince1, Tania Wong Fok Lung1
1Department of Pediatrics, Columbia University, New York, NY, USA.
Abstract:
Klebsiella pneumoniae is a common Gram-negative pathogen associated with community-acquired and healthcare-associated infections. Its ability to acquire genetic elements resulted in its rapid development of resistance to virtually all antimicrobial agents. Once infection is established, K. pneumoniae is able to evade the host immune response and perhaps more importantly, undergo metabolic rewiring to optimize its ability to maintain infection. K. pneumoniae lipopolysaccharide and capsular polysaccharide are central factors in the induction and evasion of immune clearance. Less well understood is the importance of immunometabolism, the intersection between cellular metabolism and immune function, in the host response to K. pneumoniae infection. Bacterial metabolism itself is perceived as a metabolic stress to the host, altering the microenvironment at the site of infection. In this review, we will discuss the metabolic responses induced by K. pneumoniae, particularly in response to stimulation with the metabolically active bacteria versus pathogen-associated molecular patterns alone, and their implications in shaping the nature of the immune response and the infection outcome. A better understanding of the immunometabolic response to K. pneumoniae may help identify new targets for therapeutic intervention in the treatment of multidrug-resistant bacterial infections.
Insights
Klebsiella pneumoniae infections trigger significant host metabolic rewiring. Understanding this immunometabolism is key to developing new therapies against multidrug-resistant strains.
Area of Science:
- Microbiology
- Immunology
- Metabolic pathways
Background:
- Klebsiella pneumoniae is a Gram-negative pathogen causing significant community and healthcare-associated infections.
- K. pneumoniae exhibits rapid antimicrobial resistance due to genetic element acquisition.
- The pathogen evades host immunity and rewires host metabolism to sustain infection.
Purpose of the Study:
- To review the metabolic responses induced by K. pneumoniae.
- To explore the role of immunometabolism in K. pneumoniae infection.
- To identify potential therapeutic targets for multidrug-resistant K. pneumoniae.
Main Methods:
- Literature review focusing on K. pneumoniae infection and host immune response.
- Analysis of bacterial metabolism and its impact on host immunometabolism.
- Discussion of metabolic stress induced by K. pneumoniae.
Main Results:
- K. pneumoniae lipopolysaccharide and capsular polysaccharide are crucial for immune evasion.
- Bacterial metabolism alters the host microenvironment, creating metabolic stress.
- Host immunometabolic responses are critical in shaping infection outcomes.
Conclusions:
- Understanding K. pneumoniae-induced immunometabolism is vital for effective treatment strategies.
- Targeting metabolic pathways offers a promising avenue for combating multidrug-resistant infections.
- Further research into host-pathogen metabolic interactions is warranted.
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