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Updated: Sep 17, 2025

Assessment of Mitochondrial Health in Cancer-Associated Fibroblasts Isolated from 3D Multicellular Lung Tumor Spheroids
Published on: October 21, 2022
PGC1α inhibits SiO2-induced fibrosis by regulating the mitochondrial respiratory chain
Shupeng Liu1, Yue Zhang1, Hongli Wang1
1School of Public Health, North China University of Science and Technology, Tangshan, Hebei, 063210, China.
Abstract:
Silicosis is a fibrotic disease caused by long-term inhalation of SiO2 particles that currently has no effective treatment. Therefore, it is very important to elucidate its pathogenesis and develop novel therapeutic methods. Macrophages are the first line of defense against inhaled dust in the lungs, while mitochondria are critical for regulation of macrophages, thus mitochondrial dysfunction has been shown to play an important role in SiO2-induced pulmonary fibrosis. In this study, we found that PGC1α expression was reduced in SiO2-induced macrophages, mitochondrial respiratory chain was impaired, and fibrosis was enhanced in fibroblasts. In addition, overexpression of PGC1α improved mitochondrial respiratory chain damage and mitigated SiO2-induced fibrosis. Therefore, increasing the expression of PGC1α can inhibit silicosis fibrosis by ameliorating mitochondrial respiratory chain damage. The present study highlight a novel mechanism that PGC1α may participate in SiO2-induced fibrosis by regulating the mitochondrial respiratory chain, suggesting that PGC1α may be an effective therapeutic target for silicosis.
Insights
Silicosis fibrosis, caused by silica particle inhalation, involves mitochondrial dysfunction. Increasing PGC1α expression ameliorates this damage, offering a potential therapeutic strategy for this lung disease.
Area of Science:
- Pulmonary Medicine
- Cell Biology
- Toxicology
Background:
- Silicosis is a severe lung fibrotic disease with no effective treatment.
- Inhaled silica particles (SiO2) trigger inflammatory responses and fibrosis.
- Mitochondrial dysfunction in macrophages is implicated in silica-induced lung injury.
Purpose of the Study:
- To investigate the role of PGC1α in silica-induced lung fibrosis.
- To explore PGC1α's impact on macrophage mitochondrial function and fibroblast activity.
- To identify PGC1α as a potential therapeutic target for silicosis.
Main Methods:
- Studied PGC1α expression in silica-exposed macrophages.
- Assessed mitochondrial respiratory chain function.
- Evaluated the effect of PGC1α overexpression on SiO2-induced fibrosis in fibroblasts.
Main Results:
- Silica exposure reduced PGC1α expression, impaired mitochondrial respiration, and enhanced fibroblast fibrosis.
- Overexpression of PGC1α improved mitochondrial function and mitigated silica-induced fibrosis.
- PGC1α demonstrated a protective role against silica-induced lung damage.
Conclusions:
- PGC1α plays a critical role in regulating mitochondrial respiratory chain function in silicosis.
- Increasing PGC1α expression can ameliorate mitochondrial damage and inhibit silicosis fibrosis.
- PGC1α represents a promising therapeutic target for treating silicosis.
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