骨单位
生物医学工程
3D生物打印
脚手架
髓腔
材料科学
血管生成
再生(生物学)
骨组织
解剖
组织工程
皮质骨
细胞生物学
生物
医学
癌症研究
作者
Xin Sun,Xin Jiao,Xue Yang,Jie Ma,Tianchang Wang,Wenjie Jin,Wentao Li,Han Yang,Yuanqing Mao,Yaokai Gan,Xiaojun Zhou,Tao Li,Shuai Li,Xiaodong Chen,Jinwu Wang
出处
期刊:Biofabrication
[IOP Publishing]
日期:2022-04-13
卷期号:14 (3): 035008-035008
被引量:27
标识
DOI:10.1088/1758-5090/ac6700
摘要
The integration of three-dimensional (3D) bioprinted scaffold's structure and function for critical-size bone defect repair is of immense significance. Inspired by the basic component of innate cortical bone tissue-osteons, many studies focus on biomimetic strategy. However, the complexity of hierarchical microchannels in the osteon, the requirement of mechanical strength of bone, and the biological function of angiogenesis and osteogenesis remain challenges in the fabrication of osteon-mimetic scaffolds. Therefore, we successfully built mimetic scaffolds with vertically central medullary canals, peripheral Haversian canals, and transverse Volkmann canals structures simultaneously by 3D bioprinting technology using polycaprolactone and bioink loading with bone marrow mesenchymal stem cells and bone morphogenetic protein-4. Subsequently, endothelial progenitor cells were seeded into the canals to enhance angiogenesis. The porosity and compressive properties of bioprinted scaffolds could be well controlled by altering the structure and canal numbers of the scaffolds. The osteon-mimetic scaffolds showed satisfactory biocompatibility and promotion of angiogenesis and osteogenesisin vitroand prompted the new blood vessels and new bone formationin vivo. In summary, this study proposes a biomimetic strategy for fabricating structured and functionalized 3D bioprinted scaffolds for vascularized bone tissue regeneration.
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