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三维打印具有超强界面结合力的相反电荷水凝胶。

Three-Dimensional Bioprinting of Oppositely Charged Hydrogels with Super Strong Interface Bonding.

机构信息

Singapore Center for 3D Printing, School of Mechanical and Aerospace Engineering , Nanyang Technological University , 50 Nanyang Avenue , Singapore 639798 , Singapore.

出版信息

ACS Appl Mater Interfaces. 2018 Apr 4;10(13):11164-11174. doi: 10.1021/acsami.7b19730. Epub 2018 Mar 21.

Abstract

A novel strategy to improve the adhesion between printed layers of three-dimensional (3D) printed constructs is developed by exploiting the interaction between two oppositely charged hydrogels. Three anionic hydrogels [alginate, xanthan, and κ-carrageenan (Kca)] and three cationic hydrogels [chitosan, gelatin, and gelatin methacrylate (GelMA)] are chosen to find the optimal combination of two oppositely charged hydrogels for the best 3D printability with strong interface bonding. Rheological properties and printability of the hydrogels, as well as structural integrity of printed constructs in cell culture medium, are studied as functions of polymer concentration and the combination of hydrogels. Kca2 (2 wt % Kca hydrogel) and GelMA10 (10 wt % GelMA hydrogel) are found to be the best combination of oppositely charged hydrogels for 3D printing. The interfacial bonding between a Kca layer and a GelMA layer is proven to be significantly higher than that of the bilayered Kca or bilayered GelMA because of the formation of polyelectrolyte complexes between the oppositely charged hydrogels. A good cell viability of >96% is obtained for the 3D-bioprinted Kca-GelMA construct. This novel strategy has a great potential for 3D bioprinting of layered constructs with a strong interface bonding.

摘要

开发了一种新策略,通过利用两种带相反电荷的水凝胶之间的相互作用来提高三维(3D)打印结构中打印层之间的附着力。选择了三种阴离子水凝胶[藻酸盐、黄原胶和κ-卡拉胶(Kca)]和三种阳离子水凝胶[壳聚糖、明胶和明胶甲基丙烯酰胺(GelMA)],以找到两种带相反电荷的水凝胶的最佳组合,从而实现最佳的 3D 可打印性和强界面结合力。研究了水凝胶的流变性能和可打印性,以及在细胞培养基中打印结构的结构完整性,作为聚合物浓度和水凝胶组合的函数。发现 Kca2(2wt%Kca 水凝胶)和 GelMA10(10wt%GelMA 水凝胶)是 3D 打印中带相反电荷的水凝胶的最佳组合。由于带相反电荷的水凝胶之间形成了聚电解质复合物,因此 Kca 层和 GelMA 层之间的界面结合力明显高于双层 Kca 或双层 GelMA 的界面结合力。3D 生物打印的 Kca-GelMA 结构的细胞存活率>96%。这种新策略对于具有强界面结合力的分层结构的 3D 生物打印具有很大的潜力。

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