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Isolation and Characterization of Dendritic Cells and Macrophages from the Mouse Intestine
Published on: May 21, 2012
Microbiota-Derived Short-Chain Fatty Acids Promote LAMTOR2-Mediated Immune Responses in Macrophages
Ting Wu1, Hongru Li2, Cong Su3
1Department of Infectious Diseases, The First Affiliated Hospital of Anhui Medical University, Hefei, Anhui, China.
Abstract:
ABSRTACTKlebsiella pneumoniae is a common cause of human-pneumonia-derived sepsis with high morbidity and mortality. The microbiota promotes and maintains host immune homeostasis. The mechanisms by which the gut microbiota affects the host defenses in the respiratory system systematically, however, remain poorly understood. Here, we show that gut microbiota depletion increases susceptibility to extracellular K. pneumoniae infections in terms of increased bacterial burdens in lung and decreased survival rates. Oral supplementation with gut microbiota-derived short-chain fatty acids (SCFAs), subsequently activating G protein-coupled receptor 43 (GPCR43), enhances a macrophage's capacity to phagocytose invading K. pneumoniae Furthermore, SCFAs and GPR43 increase macrophage bacterial clearance by upregulating LAMTOR2, which is further identified as an antibacterial effector and elucidated to facilitate phagosome-lysosome fusion and extracellular signal-regulated kinase (ERK) phosphorylation. Lastly, conditional ablation of Lamtor2 in macrophages decreases their antimicrobial activity, even though mice were pretreated with exogenous SCFA supplementation.IMPORTANCE These observations highlight that SCFAs promote macrophage elimination of K. pneumoniae via a LAMTOR2-dependent signal pathway and suggest that it is possible to intervene in K. pneumoniae pneumonia by targeting the gut microbiota.
Insights
Gut microbiota depletion worsens Klebsiella pneumoniae pneumonia. Supplementing short-chain fatty acids (SCFAs) enhances macrophage defenses via LAMTOR2, improving bacterial clearance and survival.
Area of Science:
- Microbiology
- Immunology
- Host-Microbe Interactions
Background:
- Klebsiella pneumoniae causes severe pneumonia and sepsis.
- The gut microbiota's role in respiratory immunity is not fully understood.
- Gut microbiota influences host immune homeostasis.
Purpose of the Study:
- To investigate how gut microbiota impacts host defense against K. pneumoniae lung infection.
- To elucidate the molecular mechanisms by which gut microbiota metabolites modulate macrophage function.
Main Methods:
- Mice models with gut microbiota depletion and oral SCFA supplementation.
- Assessment of bacterial burden, survival rates, and macrophage phagocytic capacity.
- Analysis of LAMTOR2 expression, phagosome-lysosome fusion, and ERK phosphorylation.
Main Results:
- Gut microbiota depletion increased K. pneumoniae susceptibility and mortality.
- SCFA supplementation enhanced macrophage phagocytosis of K. pneumoniae via GPR43 activation.
- SCFAs and GPR43 upregulated LAMTOR2, promoting bacterial clearance and host survival.
- LAMTOR2 deficiency in macrophages impaired bacterial clearance despite SCFA treatment.
Conclusions:
- Gut microbiota-derived SCFAs enhance macrophage-mediated clearance of K. pneumoniae through a LAMTOR2-dependent pathway.
- Targeting the gut microbiota and SCFA signaling presents a potential therapeutic strategy for K. pneumoniae pneumonia.

