软骨发生
生物粘附
再生(生物学)
脚手架
间充质干细胞
细胞疗法
关节炎
生物医学工程
组织工程
透明质酸
再生医学
药物输送
软骨
化学
控制释放
医学
透明软骨
自愈水凝胶
类风湿性关节炎
纳米医学
滑膜炎
生物材料
固体脂质纳米粒
炎性关节炎
材料科学
药理学
壳聚糖
软骨细胞
癌症研究
炎症
联合疗法
基质(化学分析)
纳米载体
纳米纤维
作者
Yuelin Hu,Liwei Yan,Dejia Xv,Jinhui Ran,Yue Hou,Jingcheng Zheng,Zhouhao Wu,Xin Kuai,Xiong Lu,Chaoming Xie,Lu Han
出处
期刊:Small
[Wiley]
日期:2026-02-10
卷期号:22 (21): e11882-e11882
标识
DOI:10.1002/smll.202511882
摘要
Rheumatoid arthritis (RA) progressively develops from inflammatory synovitis to irreversible osteochondral destruction, with current clinical interventions offering only transient immunosuppression and lacking regenerative potential. Herein, we develop a bioadhesive scaffold integrating inflammation-responsive methotrexate (MTX) nanoparticles and chondrogenic miRNA-140 delivery systems for synergistic immunomodulation and osteochondral regeneration in advanced RA. The adhesive scaffold matrix consists of collagen and polydopamine-modified-hyaluronic acid (PDA/HA), crosslinked with polyethylene glycol diglycidyl ether (PEGDE), which provides robust mesenchymal stem cell adhesion and prolongs nanomedicine retention while establishing a regenerative microenvironment. The engineered system features MMP-labile polydopamine-doped lipid nanoparticles (PLNP) that rapidly release MTX in inflammatory conditions to suppress synovitis, working in concert with reactive oxygen species-scavenging gallic acid-modified chitosan nanoparticles (GC) that protect and effectively deliver miRNA-140 to restore chondrogenesis. In collagen-induced advanced arthritis models, this dual-stage therapy demonstrated sequential therapeutic action by initial immunomodulation followed by structural regeneration, yielding complete osteochondral restoration characterized by hyaline cartilage formation with physiological matrix features and integrated subchondral bone restoration. This work represents a significant progress in advanced RA treatment by transitioning from symptomatic management to true disease modification, combining precise immunomodulation with functional tissue regeneration through intelligent biomaterial design.
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