材料科学
脚手架
生物相容性
生物医学工程
髓腔
再生(生物学)
3d打印
破骨细胞
组织工程
纳米技术
解剖
细胞生物学
化学
生物
体外
冶金
生物化学
医学
作者
Baoshuai Bai,Junxiang Hao,Mengjie Hou,Tao Wang,Xiaodi Wu,Yanhan Liu,Yiyang Wang,Chengxiang Dai,Yujie Hua,Guangyue Ji,Guangdong Zhou
标识
DOI:10.1021/acsami.2c08422
摘要
Tissue engineering technology provides a promising approach for large-scale bone reconstruction in cases of extensive chest wall defects. However, previous studies did not consider meticulous scaffold design specific to large-scale rib regeneration in terms of three-dimensional (3D) shape, proper porous structures, enough mechanical strength, and osteogenic microenvironments. Thus, there is an urgent need to develop an appropriate bone biomimetic scaffold (BBS) to address this problem. In this study, a BBS with controllable 3D morphology, appropriate mechanical properties, good biocompatibility and biodegradability, porous structure suitable for cell loading, and a biomimetic osteogenic inorganic salt (OIS) microenvironment was successfully prepared by integrating computer-aided design, 3D-printing, cast-molding, and freeze-drying technologies. The addition of the OIS in the scaffold substantially promoted ectopic bone regeneration in vivo, which might be attributed to the activation of osteogenic and angiogenic signaling pathways as well as upregulated expression of osteogenic genes. More importantly, dual long rib defects could be successfully repaired and medullary cavity recanalized by the rib-shaped mature cortical bone, which might be mediated by the activation of osteoclast signaling pathways. Thus, this paper presents a reliable BBS and proposes a new strategy for the repair of large-scale bone defects.
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