纤维软骨
脚手架
PLGA公司
软骨
软骨发生
生物医学工程
再生(生物学)
材料科学
化学
组织工程
体内
热情
解剖
体外
细胞生物学
关节软骨
骨关节炎
病理
生物
医学
生物技术
替代医学
肌腱
生物化学
作者
Renyi Cheng,Tao Xie,Wen Ma,Peishen Deng,Chaofeng Liu,Yuchen Hong,Changyu Liu,Jinjun Tian,Yanhua Xu
标识
DOI:10.3389/fbioe.2024.1460623
摘要
Articular cartilage defects often involve damage to both the cartilage and subchondral bone, requiring a scaffold that can meet the unique needs of each tissue type and establish an effective barrier between the bone and cartilage. In this study, we used 3D printing technology to fabricate a tri-phasic scaffold composed of PLA/PCL-PLGA/Mg(OH)₂, which includes a cartilage layer, an osteochondral interface, and a bone layer. The scaffold was filled with Velvet antler polypeptides (VAP), and its characterization was assessed using compression testing, XRD, FTIR, SEM, fluorescence microscopy, and EDS. In vitro investigation demonstrated that the scaffold not only supported osteogenesis but also promoted chondrogenic differentiation of fibrocartilage stem cells (FCSCs). n vivo experiments showed that the tri-phasic PLA/PCL-PLGA/Mg(OH)2-VAP scaffold together with FCSC, when transplanted to animal models, increased the recovery of osteochondral defects. Those results demonstrate the promising future of illustrated tri-phasic PLA/PCL-PLGA/Mg(OH)2-VAP scaffold loaded with FCSCs as a new bone and cartilage tissue engineering approach for osteochondral defects treatment.
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