脚手架
羧甲基纤维素
生物医学工程
组织工程
材料科学
微型多孔材料
生物相容性材料
微观结构
复合材料
医学
冶金
钠
作者
Tianxing Gong,Zhili Zhang,Xinyu Liu,Yufan Wang,Jingqiu Zhou,Shun Wang,Xinwei Liu,Hongxu Jin,Zhiying Zhao,Hongxu Jin,Zhiying Zhao
标识
DOI:10.1016/j.ijbiomac.2023.126658
摘要
In tissue engineering, scaffold microstructures and mechanical cues play a significant role in regulating stem cell differentiation, proliferation, and infiltration, offering a promising strategy for osteochondral tissue repair. In this present study, we aimed to develop a facile method to fabricate an acellular hydrogel scaffold (AHS) with tunable mechanical stiffness and microstructures using carboxymethyl cellulose (CMC). The impacts of the degree of crosslinking, crosslinker length, and matrix density on the AHS were investigated using different characterization methods, and the in vitro biocompatible of AHS was also examined. Our CMC-based AHS showed tunable mechanical stiffness ranging from 50 kPa to 300 kPa and adjustable microporous size between 50 μm and 200 μm. In addition, the AHS was also proven biocompatible and did not negatively affect rabbit bone marrow stem cells' dual-linage differentiation into osteoblasts and chondrocytes. In conclusion, our approach may present a promising method in osteochondral tissue engineering.
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