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Augmenting Macrophages Apoptosis Induced by Carnitine Palmitoyl Transferase 1A Inhibition via Acetyl-CoA-Associated
Guochao Shi1,2, Rong Wang3, Chunrong Huang1,2
1Department of Pulmonary and Critical Care Medicine, Ruijin Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai, People's Republic of China.
Abstract:
Macrophage apoptosis contributes to acute lung injury (ALI). However, the relationship between cell metabolism and the apoptosis of macrophages remains unclear. In our study, murine alveolar macrophages (MH-S) were stimulated by lipopolysaccharide (LPS) to induce an apoptosis model; cell viability, mitochondrial membrane potential (MMP) and apoptosis rate were determined. TCA metabolites and fatty acids were measured; qPCR and western blot were used to detect gene and protein expressions. The LPS-induced ALI mice model was established, and pathological changes, inflammatory cytokines, and protein acetylation were evaluated. The results showed that LPS exposure impaired cell viability and increased apoptosis of alveolar macrophages (AM) in a concentration-dependent manner. LPS also downregulated the expression of the FAO rate-limiting enzyme carnitine palmitoyl transferase 1A (CPT1A), which was accompanied by suppression of fatty acid oxidation (FAO) and alterations of the fatty acid profile. CPT1A inhibitor etomoxir also promoted cell apoptosis of AM and decreased MMP. Overexpression of CPT1A ameliorated cell apoptosis of AM induced by LPS. Etomoxir and LPS decreased acetyl-CoA levels, and supplementation of acetyl-CoA prevented LPS-induced cell apoptosis. In addition, LPS led to the alteration of acetylated protein profiles. In vivo study, excessive cell apoptosis, decreased expression of proteins related to FAO, and decreased acetyl-CoA levels were detected in ALI animal models. Acetyl-CoA could relieve the apoptosis and inflammation in the lung induced by LPS. These findings suggested the essential role of CPT1A and acetyl-CoA in cell apoptosis of AM induced by LPS.
Insights
Lipopolysaccharide (LPS) induces acute lung injury by increasing macrophage apoptosis, impairing fatty acid oxidation, and decreasing acetyl-CoA levels. Restoring acetyl-CoA levels can alleviate lung apoptosis and inflammation.
Area of Science:
- Cellular Metabolism
- Immunology
- Pathophysiology
Background:
- Macrophage apoptosis is a key factor in acute lung injury (ALI).
- The link between macrophage metabolism and apoptosis in ALI is not well understood.
Purpose of the Study:
- To investigate the role of cell metabolism, specifically fatty acid oxidation (FAO) and acetyl-CoA, in lipopolysaccharide (LPS)-induced macrophage apoptosis and ALI.
Main Methods:
- Murine alveolar macrophages (MH-S) were stimulated with LPS to model apoptosis.
- Assessed cell viability, mitochondrial membrane potential (MMP), apoptosis rate, TCA metabolites, and fatty acids.
- Utilized qPCR and Western blot for gene and protein expression analysis.
- Established an LPS-induced ALI mouse model to evaluate pathological changes, inflammatory cytokines, and protein acetylation.
Main Results:
- LPS exposure increased macrophage apoptosis and decreased cell viability in a dose-dependent manner.
- LPS downregulated carnitine palmitoyl transferase 1A (CPT1A), suppressing FAO and altering fatty acid profiles.
- CPT1A inhibition and LPS decreased acetyl-CoA levels; acetyl-CoA supplementation protected against apoptosis.
- ALI mouse models showed increased apoptosis, reduced FAO-related proteins, and lower acetyl-CoA.
Conclusions:
- CPT1A and acetyl-CoA play critical roles in LPS-induced macrophage apoptosis.
- Targeting CPT1A and acetyl-CoA metabolism may offer therapeutic strategies for ALI.
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