Xinfeng Capsule ameliorates RA joint injury by inhibiting cuproptosis via the METTL3/miR-221/222-3p/ATP7A Axis

炎症 医学 药理学 关节囊 软骨细胞 胶囊 接头(建筑物) 化学 细胞损伤 关节软骨 癌症研究 动作(物理) 骨关节炎 作用机理 炎症反应 缺血性损伤 软骨
作者
Hui Wang,Amin Wang,Jian Liu,Nan Zhu,Yunxiang Cao
出处
期刊:Phytomedicine [Elsevier BV]
卷期号:150: 157644-157644 被引量:3
标识
DOI:10.1016/j.phymed.2025.157644
摘要

BACKGROUND: Xinfeng Capsule (XFC), a traditional Chinese herbal formulation, has long been used clinically for rheumatoid arthritis (RA); however, its underlying mechanism remains unclear. OBJECTIVE: This study explored ​whether XFC alleviates RA-induced joint damage by suppressing cuproptosis via modulation of the METTL3/miR-221/222-3p/ATP7A axis. METHODS: Potential therapeutic targets of XFC against RA were predicted using bioinformatic analyses. Adjuvant-induced arthritis (AA) rat models and in vitro chondrocyte injury models were established and allocated to different treatment groups. Dual-luciferase reporter assay confirmed the interaction between miR-221/222-3p and ATP7A. Optimal XFC treatment conditions (10 % for 24 h) were determined with a CCK-8 assay. The expression levels of METTL3, miR-221/222-3p, ATP7A, ATP7B, and key cuproptosis-related markers were assessed by RT-qPCR and western blotting. Functional assays were performed to evaluate cell morphology, reactive oxygen species (ROS), inflammatory cytokines, and intracellular copper accumulation. RESULTS: Bioinformatic analysis identified METTL3 as a pivotal target. In both animal and cell models, XFC markedly downregulated METTL3 and miR-221/222-3p while upregulating ATP7A and ATP7B. The direct targeting of ATP7A by miR-221/222-3p has been previously validated. Molecular docking revealed favorable binding between active XFC components and METTL3. Functionally, XFC suppressed the METTL3/miR-221/222-3p/ATP7A pathway, leading to reduced levels of cuproptosis drivers (FDX1, LIAS, and DLAT), diminished ROS generation, reduced inflammatory cytokine release, and reduced intracellular copper accumulation, thereby mitigating mitochondrial damage and chondrocyte injury. CONCLUSION: This study demonstrated for the first time that XFC protects against RA-related joint injury by inhibiting chondrocyte cuproptosis and inflammation via the METTL3/miR-221/222-3p/ATP7A axis, offering novel mechanistic insights into the therapeutic action of XFC and suggesting a promising strategy for RA management.
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