脚手架
丝素
间充质干细胞
生物医学工程
明胶
再生(生物学)
组织工程
材料科学
复合数
化学
丝绸
细胞生物学
复合材料
医学
生物化学
生物
作者
Yunsheng Dong,Hui Xiao,Jie Wang,Tingting Yang,Kang Naiqi,Jiaxing Huang,Wei Chen,Yufei Liu,Qiang Yang,Shufang Wang
标识
DOI:10.1016/j.ijbiomac.2023.123659
摘要
Repairing extensive bone defects that cannot self-heal has been a clinical challenge. The construction of scaffolds with osteogenic activity through tissue engineering can provide an effective strategy for bone regeneration. This study utilized gelatin, silk fibroin, and Si3N4 as scaffold materials to prepare silicon-functionalized biomacromolecules composite scaffolds using three-dimensional printing (3DP) technology. This system delivered positive outcomes when Si3N4 levels were 1 % (1SNS). The results showed that the scaffold had a porous reticular structure with a pore size of 600-700 μm. The Si3N4 nanoparticles were distributed uniformly in the scaffold. The scaffold could release Si ions for up to 28 days. In vitro experiments showed that the scaffold had good cytocompatibility, promoting the osteogenic differentiation of mesenchymal stem cells (MSCs). In vivo experiments on bone defects in rats showed that the 1SNS group facilitated bone regeneration. Therefore, the composite scaffold system showed potential for application in bone tissue engineering.
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