再生(生物学)
生物相容性
生物医学工程
富血小板纤维蛋白
骨愈合
牙槽
材料科学
纤维蛋白
静电纺丝
生物材料
明胶
骨组织
纳米纤维
化学
牙科
纳米技术
细胞生物学
解剖
医学
复合材料
生物化学
免疫学
生物
冶金
聚合物
作者
Lin Zhang,Yunsheng Dong,Yufei Liu,Xiangsheng Liu,Zhitao Wang,Jinpeng Wan,Xinyi Yu,Shufang Wang
标识
DOI:10.1016/j.ijbiomac.2023.126960
摘要
Periodontal defect seriously affects people's life health and quality. Guided tissue regeneration (GTR) and guided bone regeneration (GBR) have made great progress in periodontal disease treatment, but some deficiencies existed in commercial materials of GTR and GBR. For obtaining better therapeutic effects, multifunctional composite scaffolds containing different biological macromolecules were developed in this study. Chitosan/poly (γ-glutamic acid)/nano-hydroxyapatite hydrogels (CP/nHA) made by electrostatic interactions and lyophilization were filled in the bone defects to achieve osteogenesis. Platelet-rich fibrin (PRF) extracted from blood could accelerate bone formation by releasing various bioactive substances as middle layer of composite scaffolds. Polycaprolactone/gelatin nanofibers (PG) prepared by electrospinning were attached to the junction of soft and hard tissue, which could prevent fibrous tissue from infiltrating into bone defects. The composite scaffolds showed good morphology, biocompatibility, cell barriers and osteogenic differentiation in vitro. The excellent ability of bone formation was verified by implantation of triple-layered composite scaffolds into alveolar bone defects in rabbit in vivo. The hierarchical structure was conducive to personalized customization to meet the needs of different defects. All in all, the multifunctional scaffolds could play important roles of GTR and GBR in alveolar bone regeneration and provide good application prospect for bone repair in clinic.
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