Enzymatically-mineralized double-network hydrogels with ultrahigh mechanical strength, toughness, and stiffness

被引:9
|
作者
Wang, Li [2 ]
Zhao, Wei [1 ]
Zhao, Yining [2 ]
Li, Wei [1 ]
Wang, Guodong [1 ]
Zhang, Qiang [1 ,2 ]
机构
[1] Naval Med Univ, Changzheng Hosp, Dept Stomatol, Shanghai 200003, Peoples R China
[2] East China Normal Univ, Sch Life Sci, Key Lab Regulatory Biol, Shanghai 200241, Peoples R China
来源
THERANOSTICS | 2023年 / 13卷 / 02期
基金
中国国家自然科学基金;
关键词
hybrid hydrogel; double network; enzymatic mineralization; ultrahigh mechanical properties; subchondral bone defect repair; NANOCOMPOSITE HYDROGELS; CROSS-LINKING; CELLULOSE; COMPOSITES; ULTRASTIFF; STRATEGY; FATIGUE;
D O I
10.7150/thno.77417
中图分类号
R-3 [医学研究方法]; R3 [基础医学];
学科分类号
1001 ;
摘要
Background: Synthetic hydrogels are commonly mechanically weak which limits the scope of their applications.Methods: In this study, we synthesized an organic-inorganic hybrid hydrogel with ultrahigh strength, stiffness, and toughness via enzyme-induced mineralization of calcium phosphate in a double network of bacterial cellulose nanofibers and alginate-Ca2+.Results: Cellulose nanofibers formed the first rigid network via hydrogen binding and templated the deposition of calcium phosphate, while alginate-Ca2+ formed the second energy-dissipating network via ionic interaction. The two networks created a brick-mortar-like structure, in which the "tortuous fracture path" mechanism by breaking the interlaced calcium phosphate-coated bacterial cellulose nanofibers and the hysteresis by unzipping the ionic alginate-Ca2+network made a great contribution to the mechanical properties of the hydrogels.Conclusion: The optimized hydrogel exhibited ultrahigh fracture stress of 48 MPa, Young's modulus of 1329 MPa, and fracture energy of 3013 J/m2, which are barely possessed by the reported synthetic hydrogels. Finally, the hydrogel represented potential use in subchondral bone defect repair in an ex vivo model.
引用
收藏
页码:673 / 684
页数:12
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