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TRAF2 regulates the progression of pulmonary fibrosis through β-catenin-Snail signaling pathway

Bibliographic Data

ID22077643
AuthorsZhijie Wan (0000-0001-7656-8653), Jingwen Gu, Wanli Duan (0000-0001-7618-6604), Yuanyuan Chen (0009-0004-1012-8646), Shuya Song, Jingyu Luo (0000-0001-6853-3071), Xide Zhang, Yanyong Yang (Shanghai Medical College of Fudan University, corresponding author), Fu Gao (0000-0002-9792-8248, Shanghai Medical College of Fudan University, corresponding author), Ying Xu (0000-0001-6344-9612, corresponding author)
Year2025
Volume13
Pages1582860-1582860
Publication date2025-05-14
Peer ReviewedYes
Open AccessYes
TypeARTICLE
VenueFrontiers in Public Health (JOURNAL)
Journal identifiersISSN: 2296-2565 • E-ISSN: 2296-2565
PublisherFrontiers Media SA (PUBLISHER • CH)
DOI10.3389/fpubh.2025.1582860
PMID40438045
OpenAlexW4410380492
LanguageEN
References cited36

Introduction: Pulmonary fibrosis (PF) is a devastating lung disease characterized by excessive extracellular matrix deposition and impaired pulmonary function, with limited therapeutic options. The pathogenesis of PF involves a complex network of molecular events, including epithelial-mesenchymal transition (EMT), activation of fibroblasts, and dysregulated tissue remodeling. Recent studies have identified TRAF2 (TNF receptor-associated factor 2) as a potential modulator of fibrosis, while its precise mechanism remains unclear. Methods: We assessed TRAF2 expression and subcellular localization via immunofluorescence and Western blot. TRAF2 knockdown was achieved through siRNA transfection. Protein and mRNA levels of molecules were detected using wb and RT-qPCR. Molecular interactions (TRAF2/β-catenin/Snail) were validated by co-immunoprecipitation assays. HE staining and Masson staining were quantified. Results: We demonstrate that TRAF2 translocates to the nucleus after fibrosis induction and is positively correlated with disease severity. TRAF2 knockdown significantly reduced collagen deposition and myofibroblast activation, thereby alleviating fibrosis. Furthermore, we investigate the molecular mechanisms by which TRAF2 regulates pulmonary fibrosis, specifically its interaction with β-catenin and Snail, which promotes β-catenin-mediated transcriptional activation and facilitates EMT. These findings offer novel insights into the role of TRAF2 in pulmonary fibrosis, suggesting that TRAF2 may provide a promising therapeutic strategy for this debilitating disease. Discussion: Our study provides valuable insights into the role of TRAF2 in pulmonary fibrosis, while the precise molecular mechanisms by which TRAF2 interacts with β-catenin and Snail in fibrosis remain unclear. Future studies should aim to explore the mechanisms of TRAF2 in more detail, particularly how it interfaces with fibrotic mediators and cellular processes

Bioinformatics · Biology · Catenin · Fibrosis · Pulmonary fibrosis · Signal transduction · Snail · TRAF2 · Wnt signaling pathway · Interstitial Lung Diseases and Idiopathic Pulmonary Fibrosis · Lung Cancer Treatments and Mutations · Medicine · Neonatal Respiratory Health Research · Cancer Research · Cell Biology · Immunology · Internal Medicine

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