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Fabrication of Multiple-Layered Hydrogel Scaffolds with Elaborate Structure and Good Mechanical Properties via 3D Printing and Ionic Reinforcement

材料科学 生物相容性 制作 脚手架 自愈水凝胶 聚合物 化学工程 离子键合 盐(化学) 组织工程 弹性模量 离子液体 壳聚糖 纳米技术 复合材料 离子 生物医学工程 高分子化学 有机化学 化学 冶金 替代医学 病理 工程类 医学 催化作用
作者
Xiaotong Wang,Changzheng Wei,Bin Cao,Lixia Jiang,Yongtai Hou,Jiang Chang
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:10 (21): 18338-18350 被引量:53
标识
DOI:10.1021/acsami.8b04116
摘要

A major challenge in three-dimensional (3D) printing of hydrogels is the fabrication of stable constructs with high precision and good mechanical properties and biocompatibility. Existing methods typically feature complicated reinforcement steps or use potentially toxic components, such as photocuring polymers and crosslinking reagents. In this study, we used a thermally sensitive hydrogel, hydroxybutyl chitosan (HBC), for 3D-printing applications. For the first time, we demonstrated that this modified polysaccharide is affected by the specific ion effect. As the salt concentration was increased and stronger kosmotropic anions were used, the lower critical solution temperature of the HBC decreased and the storage modulus was improved, indicating a more hydrophobic structure and stronger molecular chain interactions. On the basis of the thermosensitivity and the ion effects of HBC, a 25-layered hydrogel scaffold with strong mechanical properties and an elaborate structure was prepared via a 3D-printing method and one-step ionic post-treatment. In particular, the scaffold treated with 10% NaCl solution exhibited a tunable elastic modulus of 73.2 kPa to 40 MPa and excellent elastic recovery, as well as biodegradability and cytocompatibility, suggesting the potential for its applications to cartilage tissue repair. By simply controlling the temperature and salt concentrations, this novel approach provides a convenient and green route to improving the structural accuracy and regulating the properties of 3D-printed hydrogel constructs.
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