脚手架
生物医学工程
化学
软骨发生
骨保护素
软骨
细胞生物学
间充质干细胞
再生(生物学)
组织工程
体内
基质(化学分析)
透明软骨
体外
细胞外基质
PLGA公司
间质细胞
再生医学
解剖
细菌纤维素
原位
骨髓
离体
干细胞
材料科学
软骨细胞
骨组织
生物物理学
作者
Yixuan Huang,Xiangmei Wang,Shu Hao,Xiaoxue Tan,Jiahao Fu,Guangquan Sun,Xiaohong Jiang,Dongping Sun,Chuntao Chen,Luning Sun,Xin Liu
标识
DOI:10.1016/j.mtadv.2025.100671
摘要
Regenerating critical-sized osteochondral defects poses a significant challenge due to the need to simultaneously restore biphasic tissue structures and reconstruct a mechanically stable osteochondral interface. Transcriptomic analysis has identified Matrix Metalloproteinase-2 (MMP2), Matrix Metalloproteinase-9 (MMP9), and Osteoprotegerin (OPG) as crucial regulatory genes in this repair process. Molecular docking analysis suggests that the natural compound icariin (ICA) can bind to and potentially modulate these genes. To address this, we developed a biomimetic biphasic scaffold using in situ bacterial cellulose (BC) growth technology combined with ICA-loaded PLGA microspheres (ICA@PLGA). The scaffold comprises a cartilage layer of BC hydrogel and a bone layer of a 3D-printed PLGA/β-TCP composite. Characterization confirmed strong interfacial integration through a three-dimensional interlocking architecture and hydrogen-bonding network, enabling sustained release of ICA. In vitro studies demonstrated enhanced osteogenic and chondrogenic differentiation of bone marrow mesenchymal stem cells (BMSCs) by the scaffold. In vivo evaluation in rabbit femoral head osteochondral defect model further validated the scaffold's ability to promote synchronized osteochondral repair and regeneration by regulating MMP2/MMP9 expression and OPG levels. Histological and radiological analyses revealed regenerated tissues resembling native subchondral bone and hyaline cartilage, with anisotropic collagen fiber alignment. This study introduces an integrated therapeutic approach that combines biomimetic scaffold design with targeted molecular regulation for treating critical-sized osteochondral defects in clinical settings.
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