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PGC-1α mediates migrasome secretion accelerating macrophage-myofibroblast transition and contributing to
Yawen Peng1,2, Shuya Mei1,2, Xiaohui Qi3
1Department of Critical Care Medicine, Ren Ji Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai, China.
Abstract:
Sepsis-associated pulmonary fibrosis (SAPF) is a critical pathological stage in the progression of sepsis-induced acute respiratory distress syndrome. While the aggregation and activation of lung fibroblasts are central to the initiation of pulmonary fibrosis, the macrophage-myofibroblast transition (MMT) has recently been identified as a novel source of fibroblasts in this context. However, the mechanisms driving MMT remain inadequately understood. Given the emerging role of migrasomes (novel extracellular vesicles mediating intercellular communication), we investigated their involvement in pulmonary fibrosis. Here we utilized a lipopolysaccharide-induced SAPF mouse model and an in vitro co-culture system of fibroblasts and macrophages to observe the MMT process during SAPF. We found that lipopolysaccharide exposure suppresses PGC-1α expression in lung fibroblasts, resulting in mitochondrial dysfunction and the accumulation of cytosolic mitochondrial DNA (mtDNA). This dysfunction promotes the secretion of mtDNA-containing migrasomes, which, in turn, initiate the MMT process and contribute to fibrosis progression. Notably, the activation of PGC-1α mitigates mitochondrial dysfunction, reduces mtDNA-migrasome release, inhibits MMT and alleviates SAPF. In conclusion, our study identifies the suppression of PGC-1α in lung fibroblasts and the subsequent release of mtDNA migrasomes as a novel mechanism driving MMT in SAPF. These findings suggest that targeting the crosstalk between fibroblasts and immune cells mediated by migrasomes could represent a promising therapeutic strategy for SAPF.
Insights
Sepsis-associated pulmonary fibrosis involves lung fibroblasts releasing mitochondrial DNA in migrasomes, driving fibrosis. Activating PGC-1α can block this process, offering a potential therapeutic target.
Area of Science:
- Cell Biology
- Immunology
- Pulmonary Medicine
Background:
- Sepsis-associated pulmonary fibrosis (SAPF) is a severe complication of acute respiratory distress syndrome.
- Macrophage-myofibroblast transition (MMT) is a newly identified pathway contributing to fibroblast proliferation in SAPF.
- The precise mechanisms governing MMT in SAPF are not fully understood.
Purpose of the Study:
- To investigate the role of migrasomes in the macrophage-myofibroblast transition (MMT) during sepsis-associated pulmonary fibrosis (SAPF).
- To elucidate the underlying molecular mechanisms connecting PGC-1α, mitochondrial dysfunction, and MMT in SAPF.
Main Methods:
- Lipopolysaccharide (LPS)-induced SAPF mouse model.
- In vitro co-culture system of lung fibroblasts and macrophages.
- Analysis of PGC-1α expression, mitochondrial function, and migrasome release.
Main Results:
- LPS exposure reduced PGC-1α in lung fibroblasts, causing mitochondrial dysfunction and cytosolic mitochondrial DNA (mtDNA) accumulation.
- mtDNA-containing migrasomes were secreted, promoting MMT and exacerbating SAPF.
- PGC-1α activation reversed mitochondrial dysfunction, decreased migrasome release, inhibited MMT, and alleviated SAPF.
Conclusions:
- Suppression of PGC-1α in lung fibroblasts and subsequent release of mtDNA-containing migrasomes represent a novel mechanism driving MMT in SAPF.
- Targeting the migrasome-mediated crosstalk between fibroblasts and immune cells presents a potential therapeutic strategy for SAPF.
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