脚手架
生物相容性
运行x2
聚乳酸
表面改性
材料科学
生物医学工程
组织工程
3d打印
化学
成骨细胞
体外
复合材料
生物化学
聚合物
医学
冶金
物理化学
作者
Xiao Liu,Jianpeng Gao,Xiang Cui,Shaobo Nie,Xiaoyong Wu,Licheng Zhang,Peifu Tang,Jianheng Liu,Ming Li
出处
期刊:Bioengineering
[MDPI AG]
日期:2023-08-29
卷期号:10 (9): 1019-1019
被引量:3
标识
DOI:10.3390/bioengineering10091019
摘要
The treatment of critical-size bone defects remains a complicated clinical challenge. Recently, bone tissue engineering has emerged as a potential therapeutic approach for defect repair. This study examined the biocompatibility and repair efficacy of hydroxyapatite-mineralized bionic polylactic acid (PLA) scaffolds, which were prepared through a combination of 3D printing technology, plasma modification, collagen coating, and hydroxyapatite mineralization coating techniques. Physicochemical analysis, mechanical testing, and in vitro and animal experiments were conducted to elucidate the impact of structural design and microenvironment on osteogenesis. Results indicated that the PLA scaffold exhibited a porosity of 84.1% and a pore size of 350 μm, and its macrostructure was maintained following functionalization modification. The functionalized scaffold demonstrated favorable hydrophilicity and biocompatibility and promoted cell adhesion, proliferation, and the expression of osteogenic genes such as ALP, OPN, Col-1, OCN, and RUNX2. Moreover, the scaffold was able to effectively repair critical-size bone defects in the rabbit radius, suggesting a novel strategy for the treatment of critical-size bone defects.
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