生物材料
碱性成纤维细胞生长因子
材料科学
运行x2
再生(生物学)
骨钙素
骨愈合
细胞生物学
生物医学工程
化学
碱性磷酸酶
生长因子
体外
成骨细胞
生物
生物化学
纳米技术
解剖
医学
酶
受体
作者
Bin He,Muzi Zhang,Lifeng Yin,Zhengxue Quan,Yunsheng Ou,Wei Huang
标识
DOI:10.1016/j.matdes.2022.110469
摘要
Injectable biomaterials obtain increasing attention for the repair of bone defect due to the advantage of defect margin adaptability and easy handling. Our previous studies found that RADA16 peptide hydrogel could significantly promote bone formation. In order to improve the mechanical force, RADA16 peptide hydrogel was used to fill the porous calcium sulfate/nano-hydroxyapatite (CaSO4/HA) cement biomaterial for the fabrication of RADA16/CaSO4/HA composite biomaterial. Especially, RADA16 peptide hydrogel had the ability to slowly release growth factors for bone regeneration. Here, RADA16/CaSO4/HA composite biomaterials afforded the controlled and sustainable release of basic fibroblast growth factor (bFGF) for more than 32 days. Compared to RADA16/CaSO4/HA biomaterial, RADA16 + bFGF/CaSO4/HA composite biomaterial could further improve in vitro osteogenic differentiation of MC3T3 cells as evidenced by the increased expression of osteogenic markers (i.e. runt-related transcription factor 2 [Runx2], osteocalcin [OCN] and alkaline phosphatase [ALP]) and in vivo bone formation of femoral condyle defects which were confirmed by histological staining and micro-CT analyses. These indicate that bFGF-incorporated RADA16/CaSO4/HA can further improve bone formation through the controlled release of bFGF, which provides a novel injectable biomaterial design to specifically release growth factors for bone defects.
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