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Updated: Mar 19, 2026

Refined Murine Model of Idiopathic Pulmonary Fibrosis
Published on: June 17, 2025
Involvement of PARK2-Mediated Mitophagy in Idiopathic Pulmonary Fibrosis Pathogenesis
Kenji Kobayashi1, Jun Araya2, Shunsuke Minagawa1
1Division of Respiratory Diseases, Department of Internal Medicine, Jikei University School of Medicine, Tokyo 105-8461, Japan; and.
Abstract:
Fibroblastic foci, known to be the leading edge of fibrosis development in idiopathic pulmonary fibrosis (IPF), are composed of fibrogenic myofibroblasts. Autophagy has been implicated in the regulation of myofibroblast differentiation. Insufficient mitophagy, the mitochondria-selective autophagy, results in increased reactive oxygen species, which may modulate cell signaling pathways for myofibroblast differentiation. Therefore, we sought to investigate the regulatory role of mitophagy in myofibroblast differentiation as a part of IPF pathogenesis. Lung fibroblasts were used in in vitro experiments. Immunohistochemical evaluation in IPF lung tissues was performed. PARK2 was examined as a target molecule for mitophagy regulation, and a PARK2 knockout mouse was employed in a bleomycin-induced lung fibrosis model. We demonstrated that PARK2 knockdown-mediated mitophagy inhibition was involved in the mechanism for activation of the platelet-derived growth factor receptor (PDGFR)/PI3K/AKT signaling pathway accompanied by enhanced myofibroblast differentiation and proliferation, which were clearly inhibited by treatment with both antioxidants and AG1296, a PDGFR inhibitor. Mitophagy inhibition-mediated activation of PDGFR signaling was responsible for further autophagy suppression, suggesting the existence of a self-amplifying loop of mitophagy inhibition and PDGFR activation. IPF lung demonstrated reduced PARK2 with concomitantly increased PDGFR phosphorylation. Furthermore, bleomycin-induced lung fibrosis was enhanced in PARK2 knockout mice and subsequently inhibited by AG1296. These findings suggest that insufficient mitophagy-mediated PDGFR/PI3K/AKT activation, which is mainly attributed to reduced PARK2 expression, is a potent underlying mechanism for myofibroblast differentiation and proliferation in fibroblastic foci formation during IPF pathogenesis.
Insights
Reduced mitophagy, linked to lower PARK2, drives myofibroblast activation in idiopathic pulmonary fibrosis (IPF) via PDGFR signaling. This self-amplifying loop promotes fibrosis development.
Area of Science:
- Cell Biology
- Pathology
- Pulmonary Medicine
Background:
- Fibroblastic foci in idiopathic pulmonary fibrosis (IPF) are driven by myofibroblasts.
- Autophagy, particularly mitophagy, influences myofibroblast differentiation.
- Impaired mitophagy increases reactive oxygen species, potentially promoting myofibroblast activation.
Purpose of the Study:
- To investigate the role of mitophagy in myofibroblast differentiation during IPF pathogenesis.
- To explore the regulatory mechanism involving PARK2 and platelet-derived growth factor receptor (PDGFR) signaling.
Main Methods:
- In vitro studies using lung fibroblasts.
- Immunohistochemical analysis of IPF lung tissues.
- PARK2 knockdown and knockout mouse models in bleomycin-induced lung fibrosis.
- Assessment of PDGFR/PI3K/AKT signaling pathway activation.
Main Results:
- PARK2 knockdown inhibited mitophagy, activating the PDGFR/PI3K/AKT pathway, enhancing myofibroblast differentiation and proliferation.
- Antioxidants and a PDGFR inhibitor (AG1296) reversed these effects.
- A self-amplifying loop between mitophagy inhibition and PDGFR activation was identified.
- IPF lungs showed decreased PARK2 and increased PDGFR phosphorylation.
- PARK2 knockout mice exhibited exacerbated lung fibrosis, reduced by AG1296.
Conclusions:
- Insufficient mitophagy, due to reduced PARK2, promotes myofibroblast differentiation and proliferation via PDGFR/PI3K/AKT activation.
- This mechanism contributes to fibroblastic foci formation in IPF.
- Targeting mitophagy or PDGFR signaling may offer therapeutic strategies for IPF.
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