Tryptophan catabolism in Pseudomonas aeruginosa and potential for inter-kingdom relationship
Perrine Bortolotti1, Benjamin Hennart2, Camille Thieffry1
1Université Lille CHU Lille, EA 7366 - Recherche translationnelle: relations hôte pathogènes, F-59000, Lille, France.
Background:
Pseudomonas aeruginosa (Pa) is a Gram-negative bacteria frequently involved in healthcare-associated pneumonia with poor clinical outcome. To face the announced post-antibiotic era due to increasing resistance and lack of new antibiotics, new treatment strategies have to be developed. Immunomodulation of the host response involved in outcome could be an alternative therapeutic target in Pa-induced lung infection. Kynurenines are metabolites resulting from tryptophan catabolism and are known for their immunomodulatory properties. Pa catabolizes tryptophan through the kynurenine pathway. Interestingly, many host cells also possess the kynurenine pathway, whose metabolites are known to control immune system homeostasis. Thus, bacterial metabolites may interfere with the host's immune response. However, the kynurenine pathway in Pa, including functional enzymes, types and amounts of secreted metabolites remains poorly known. Using liquid chromatography coupled to mass spectrometry and different strains of Pa, we determined types and levels of metabolites produced by Pa ex vivo in growth medium, and the relevance of this production in vivo in a murine model of acute lung injury.
Results:
Ex vivo, Pa secretes clinically relevant kynurenine levels (μM to mM). Pa also secretes kynurenic acid and 3-OH-kynurenine, suggesting that the bacteria possess both a functional kynurenine aminotransferase and kynurenine monooxygenase. The bacterial kynurenine pathway is the major pathway leading to anthranilate production both ex vivo and in vivo. In the absence of the anthranilate pathway, the kynurenine pathway leads to kynurenic acid production.
Conclusion:
Pa produces and secretes several metabolites of the kynurenine pathway. Here, we demonstrate the existence of new metabolic pathways leading to synthesis of bioactive molecules, kynurenic acid and 3-OH-kynurenine in Pa. The kynurenine pathway in Pa is critical to produce anthranilate, a crucial precursor of some Pa virulence factors. Metabolites (anthranilate, kynurenine, kynurenic acid) are produced at sustained levels both ex vivo and in vivo leading to a possible immunomodulatory interplay between bacteria and host. These data may imply that pulmonary infection with bacteria highly expressing the kynurenine pathway enzymes could influence the equilibrium of the host's tryptophan metabolic pathway, known to be involved in the immune response to infection. Further studies are needed to explore the effects of these metabolic changes on the pathophysiology of Pa infection.
Insights
Pseudomonas aeruginosa (Pa) produces kynurenine metabolites that may impact host immune responses during lung infections. Understanding these bacterial pathways could reveal new therapeutic targets for antibiotic resistance.
Area of Science:
- Microbiology
- Biochemistry
- Immunology
Background:
- Pseudomonas aeruginosa (Pa) causes severe healthcare-associated pneumonia.
- Increasing antibiotic resistance necessitates novel therapeutic strategies.
- Host immunomodulation presents a potential alternative treatment target.
Purpose of the Study:
- To investigate the poorly understood kynurenine pathway in Pa.
- To identify and quantify kynurenine metabolites produced by Pa.
- To assess the relevance of these metabolites in vivo.
Main Methods:
- Liquid chromatography-mass spectrometry (LC-MS) for metabolite analysis.
- Ex vivo culture of different Pa strains.
- In vivo murine model of acute lung injury.
Main Results:
- Pa secretes clinically relevant levels of kynurenines (μM to mM) ex vivo.
- Evidence suggests functional kynurenine aminotransferase and monooxygenase in Pa.
- The bacterial kynurenine pathway is essential for anthranilate production.
Conclusions:
- Pa synthesizes bioactive kynurenine metabolites, including kynurenic acid and 3-OH-kynurenine.
- The kynurenine pathway is critical for Pa virulence factor precursor production.
- Bacterial kynurenine metabolites may modulate host immune responses during infection.
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