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Published on: June 12, 2017
miR-29a-3p Regulates Autophagy by Targeting Akt3-Mediated mTOR in SiO2-Induced Lung Fibrosis
Peiyuan Li1, Xiaohui Hao1,2, Jiaxin Liu1
1School of Public Health, North China University of Science and Technology, Tangshan 063210, China.
Abstract:
Silicosis is a refractory pneumoconiosis of unknown etiology that is characterized by diffuse lung fibrosis, and microRNA (miRNA) dysregulation is connected to silicosis. Emerging evidence suggests that miRNAs modulate pulmonary fibrosis through autophagy; however, its underlying molecular mechanism remains unclear. In agreement with miRNA microarray analysis, the qRT-PCR results showed that miR-29a-3p was significantly decreased in the pulmonary fibrosis model both in vitro and in vivo. Increased autophagosome was observed via transmission electron microscopy in lung epithelial cell models and lung tissue of silicosis mice. The expression of autophagy-related proteins LC3α/β and Beclin1 were upregulated. The results from using 3-methyladenine, an autophagy inhibitor, or rapamycin, an autophagy inducer, together with TGF-β1, indicated that autophagy attenuates fibrosis by protecting lung epithelial cells. In TGF-β1-treated TC-1 cells, transfection with miR-29a-3p mimics activated protective autophagy and reduced alpha-smooth muscle actin and collagen I expression. miRNA TargetScan predicted, and dual-luciferase reporter experiments identified Akt3 as a direct target of miR-29a-3p. Furthermore, Akt3 expression was significantly elevated in the silicosis mouse model and TGF-β1-treated TC-1 cells. The mammalian target of rapamycin (mTOR) is a central regulator of the autophagy process. Silencing Akt3 inhibited the transduction of the mTOR signaling pathway and activated autophagy in TGF-β1-treated TC-1 cells. These results show that miR-29a-3p overexpression can partially reverse the fibrotic effects by activating autophagy of the pulmonary epithelial cells regulated by the Akt3/mTOR pathway. Therefore, targeting miR-29a-3p may provide a new therapeutic strategy for silica-induced pulmonary fibrosis.
Insights
MicroRNA-29a-3p (miR-29a-3p) is decreased in silicosis, a lung fibrosis disease. Restoring miR-29a-3p activates autophagy and protects lung cells, suggesting a new therapeutic strategy for pulmonary fibrosis.
Area of Science:
- Pulmonary Medicine
- Molecular Biology
- Cell Biology
Background:
- Silicosis is a lung disease causing fibrosis, linked to microRNA (miRNA) changes.
- miRNAs may regulate pulmonary fibrosis via autophagy, but the mechanism is unclear.
Purpose of the Study:
- To investigate the role of miR-29a-3p in silica-induced pulmonary fibrosis.
- To elucidate the molecular mechanism involving autophagy and the Akt3/mTOR pathway.
Main Methods:
- Quantitative real-time PCR (qRT-PCR) and miRNA microarray analysis.
- Transmission electron microscopy and Western blotting for autophagy markers.
- Cell transfection, dual-luciferase reporter assays, and pathway inhibition/induction.
Main Results:
- miR-29a-3p was significantly downregulated in silicosis models.
- Autophagosome formation and autophagy-related proteins (LC3α/β, Beclin1) were upregulated.
- miR-29a-3p mimics activated autophagy, reduced fibrosis markers, and targeted Akt3.
- Akt3 inhibition activated autophagy via the mTOR pathway.
Conclusions:
- miR-29a-3p plays a protective role in silicosis by activating autophagy.
- The miR-29a-3p/Akt3/mTOR pathway regulates autophagy in pulmonary epithelial cells.
- Targeting miR-29a-3p offers a potential therapeutic strategy for silica-induced pulmonary fibrosis.
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