热情
细胞生物学
化学
间充质干细胞
软骨发生
纤维软骨
细胞外基质
自愈水凝胶
再生(生物学)
免疫系统
骨髓
干细胞
藤黄蛋白C
肩袖
细胞
微球
细胞迁移
生物医学工程
信号转导
组织工程
炎症
细胞分化
细胞外
静脉注射
生物物理学
作者
Wencai Liu,Yuhao Yu,Hui Xu,Weiming Lin,Xin Wang,Yiming Li,Xiping Jiang,Chenrui Yuan,Yifei Wang,Xinyue Yang,Di Wu,Lingzhi Kong,Weilin Yu,Wei Song,Yaohua He
标识
DOI:10.1016/j.mtbio.2026.102851
摘要
The structural failure of rotator cuff repair is largely attributed to fibrovascular scar formation driven by a persistent inflammatory microenvironment and insufficient fibrocartilage regeneration at the tendon-to-bone interface. To address this, a microfluidic-generated GelMA microsphere system co-encapsulating Zeolitic Imidazolate Framework-8 (ZIF-8) nanoparticles and bone marrow mesenchymal stem cell (BMSC)-derived small extracellular vesicles (sEVs) is developed. This composite system (ZIF-8/sEVs@MS) enables the sustained release of Zn 2+ and sEVs, which synergistically reprogram macrophages (Mφ) from a pro-inflammatory M1 phenotype to a reparative M2 state and restore the CXCL12/CXCR4 axis for endogenous stem cell recruitment. Transcriptomic analysis elucidates that the system reactivates the PI3K/AKT signaling pathway, thereby reversing inflammation-mediated inhibition and driving chondrogenic differentiation. In a rat rotator cuff repair model, the functionalized microspheres significantly enhance fibrocartilaginous enthesis regeneration, biomechanical structural integrity, and limb function. This study establishes a dual-functional "immuno-chondrogenic" strategy that coordinates immune microenvironment modulation with tissue-specific differentiation to facilitate functional tendon-to-bone healing. Graphical abstract: Schematic illustration of the bio-inorganic hybrid microsphere system orchestrating an immuno-chondrogenic microenvironment for tendon-to-bone healing. A) Synthesis of ZIF-8 nanoparticles. B) Isolation and extraction of sEVs from BMSCs. C) Fabrication of the ZIF-8/sEVs@MS composite microspheres via microfluidic droplet generation technology. The ZIF-8 nanoparticles and sEVs are co-encapsulated within a photo-crosslinkable GelMA matrix to ensure uniform morphology and sustained bioactivity. D) In vivo administration and molecular mechanism driving tissue regeneration. Following local injection into the rotator cuff TBI, the microspheres degrade to release zinc ions and sEVs. These bioactive cues synergistically orchestrate the microenvironment by inhibiting a pro-inflammatory M1 phenotype and promoting a reparative M2 phenotype, facilitating the recruitment of endogenous stem cells. Subsequently, the internalization of these cues reactivates the PI3K/AKT signaling pathway, ultimately promoting chondrogenic differentiation and fibrocartilaginous enthesis regeneration.
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