Sinomenine regulates the AKT/FOXO3/GLUL pathway to inhibit pulmonary fibroblast-to-myofibroblast transition via α7nAChR against rheumatoid arthritis associated interstitial lung disease

青藤碱 类风湿性关节炎 间质性肺病 医学 过渡(遗传学) 癌症研究 肺病 疾病 药理学 免疫学 关节炎 病理 发病机制 化学
作者
Muqiu Liu,Huaizhi Du,Junhui Zheng,Min Liu,Zhihao Jiang,Jieying Huang,Sihe Jiang,Lang Yi,Lingyu Zhang,Y C Li,Qun Du,Liang Liu,H. Ni,Xiaojun Zhang,Hua Zhou,Yan Dong
出处
期刊:Pharmacological Research [Elsevier BV]
卷期号:231: 108332-108332
标识
DOI:10.1016/j.phrs.2026.108332
摘要

Rheumatoid arthritis-associated interstitial lung disease (RA-ILD) is a severe extra-articular manifestation with limited treatment options. Identifying anti-arthritic agents that concurrently protect against ILD is clinically significant. Sinomenine (SIN), a natural alkaloid used clinically to treat RA, shows potential anti-fibrotic activity, but its efficacy and mechanism in RA-ILD remain unclear. Here, integrative bioinformatic analyses identified ILD-associated signature characterized by upregulated CHRNA7 (encoding α7nAChR) and downregulated GLUL, specifically in pulmonary fibroblasts and myofibroblasts, and GLUL was a crucial mediator between RA and ILD. In the adjuvant-induced arthritis (AIA) model with pulmonary inflammatory and fibrotic remodeling, the phenotype that recapitulates early-stage RA-ILD, pulmonary ACh and α7nAChR expression were observed upregulated. SIN ameliorated arthritis and pulmonary lesions, suppressed pulmonary α7nAChR signaling, inhibited AKT/FOXO3 activation, restored GLUL expression and improved autophagy-related changes in this model. Microscale thermophoresis (MST), molecular docking and molecular dynamics simulation supported a direct binding between SIN and α7nAChR. In vitro, α7nAChR activation with PNU-282987 promoted fibroblast-to-myofibroblast transition (FMT), whereas its genetic knockdown inhibited FMT, suppressed AKT/FOXO3 activation, and restored GLUL expression in TGF-β-stimulated MRC-5 cells. We confirmed direct FOXO3 binding to the GLUL promoter by ChIP-qPCR. SIN inhibited FMT and regulated the AKT/FOXO3/GLUL axis in an α7nAChR-dependent manner. Pharmacological inhibition and siRNA-mediated knockdown of GLUL abolished SIN-mediated regulation of mTOR-autophagy signaling and FMT. Our findings identify the α7nAChR/AKT/FOXO3/GLUL axis as a novel fibrotic driver and highlight SIN as a potential therapeutic candidate to inhibit RA-ILD by targeting this axis.
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