明胶
细菌纤维素
化学
纤维素
纤维
成骨细胞
再生(生物学)
头盖骨
流变学
透明质酸
材料科学
化学工程
生物物理学
体内
体外
复合材料
解剖
细胞生物学
生物化学
医学
生物技术
工程类
生物
作者
Xucai Wang,Shijia Tang,Senlin Chai,Peng Wang,Jianghui Qin,Wenhui Pei,Huiyang Bian,Qing Jiang,Caoxing Huang
标识
DOI:10.1016/j.carbpol.2021.118342
摘要
The naturally tight entanglement of fibers in bacterial cellulose (BC) results in low printability when BC is used as a bioink for printing scaffolds. In this study, neat BC was treated by TEMPO-mediated oxidation (TO-BC) and maleic acid (MA-BC) to prepare homogeneous BC dispersions to fabricate scaffolds for bone regeneration. Results showed that the treatments released individual fibrils in the corresponding uniform dispersions without impairing inherent crystalline properties. Compared with TO-BC, MA-BC hybridized with gelatin could endow the gel with improved rheological properties and compression modulus for 3D printing. Both TO-BC and MA-BC dispersions showed good osteoblast viability. However, MA-BC possessed more pronounced ability to express osteogenic marker genes and formation of mineralized nodules in vitro . Compared with TO-BC-based gelatin scaffolds, MA-BC-based gelatin scaffolds showed a better ability to stimulate the regeneration of rat calvaria, demonstrating a higher bone mineral density of newly formed bone and trabecular thickness in vivo . • TEMPO and MA treatments can liberate individual fibrils in BC dispersion. • MA treated BC endows gelatin with better compression modulus for 3D printing. • MA treated BC shows best performance for bone regeneration in vitro and in vivo .
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