自愈水凝胶
化学
明胶
磁性纳米粒子
骨愈合
纳米颗粒
干细胞
生物医学工程
矿化(土壤科学)
再生(生物学)
生物物理学
牙囊
纳米技术
共价键
氧化铁纳米粒子
间充质干细胞
复合数
细胞包封
静磁学
组织工程
球体
再生医学
骨组织
毛囊
材料科学
作者
Peishen Deng,Manhong Zheng,Bing Du,Changyu Liu,R C Cheng,C. Liu,Fang Wang,Hangyu Dong,Yan Shan,Yanhua Xu
摘要
Abstract Repairing large-scale craniomaxillofacial bone defects is hindered by a limited availability of stem-cell sources and a low osteogenic efficiency. To address these challenges, Fe3O4 nanoparticles were modified with methacrylic anhydride (MAA), which helped to introduce photopolymerizable methacryloyl groups, resulting in MAA–Fe3O4 nanoparticles that exhibit excellent magnetic properties and colloidal stability. These nanoparticles were incorporated into gelatin methacryloyl (GelMA) and covalently crosslinked to form an injectable, photocurable GelMA–Fe3O4 magnetic composite hydrogel. This hydrogel provided a three-dimensional culture microenvironment for human dental follicle stem cells (hDFSCs), and upon encapsulation, osteogenesis was significantly enhanced under a 100 mT static magnetic field (SMF). In vitro, GelMA–Fe3O4 hydrogels demonstrated increased porosity and improved mechanical properties, thereby significantly promoting hDFSCs proliferation, adhesion and spreading. Additionally, under SMF exposure, the expression of osteogenesis-related genes and proteins, including alkaline phosphatase (ALP), Runx2, Col-I and OPN, was significantly upregulated. In a rat calvarial defect model, bone mineralization centers with multi-site distribution were observed in the GelMA–Fe3O4 + SMF group as early as 4 weeks postoperatively, leading to high-quality defect repair. The limitations of traditional ‘peripheral-to-center’ unidirectional repair were overcome by this model of synchronous multi-site osteogenesis, maximizing bone regeneration with a minimal number of stem cells and providing an efficient, controllable tissue-engineering strategy for the clinical treatment of craniomaxillofacial bone defects.
科研通智能强力驱动
Strongly Powered by AbleSci AI