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使用壳聚糖和明胶设计具有高强度、生物相容性、可设计形状和特殊中空结构特征的水凝胶。

High strength, biocompatible hydrogels with designable shapes and special hollow-formed character using chitosan and gelatin.

机构信息

School of Materials Science and Engineering, South China University of Technology, Guangzhou, 510640, PR China; National Engineering Research Centre for Tissue Restoration and Reconstruction, Guangzhou, 510006, PR China.

School of Materials Science and Engineering, South China University of Technology, Guangzhou, 510640, PR China; National Engineering Research Centre for Tissue Restoration and Reconstruction, Guangzhou, 510006, PR China; Guangdong Province Key Laboratory of Biomedical Engineering, South China University of Technology, Guanzhou, 510640, PR China.

出版信息

Carbohydr Polym. 2017 Jul 15;168:147-152. doi: 10.1016/j.carbpol.2017.03.069. Epub 2017 Mar 22.

Abstract

Hydrogels with good mechanical properties, excellent biocompatibility and designable shapes are of great importance for their biomedical applications. Herein, a series of high strength, biocompatible hydrogels have been synthesized by integrating sodium citrate into the thermally reversible chitosan/gelatin to form multiple physically crosslinking networks. Besides the ideal formability, a thermal etching or welding method has been developed to program the surface morphology and fabricate hydrogels with complicated shapes freely. More impressively, the special hollow "cup-shaped and tubular" structure has also been constructed by applying an interrupted gelation process in controlled ion crosslinking time and the subsequent dissolving process at 37°C in deionized water. The high strength, biocompatible hydrogels with special internal and external shape adjustable characters, potentially useful in vascular repair and substitutes of cartilage, may further broaden our understanding of the plasticity of the hydrogels.

摘要

具有良好机械性能、优异生物相容性和可设计形状的水凝胶对于它们在生物医学中的应用非常重要。在此,通过将柠檬酸钠整合到热可逆的壳聚糖/明胶中形成多个物理交联网络,合成了一系列高强度、生物相容性的水凝胶。除了理想的可成型性外,还开发了一种热刻蚀或焊接方法来对表面形貌进行编程,从而自由地制造具有复杂形状的水凝胶。更令人印象深刻的是,通过在受控离子交联时间内应用中断凝胶化过程以及随后在 37°C 的去离子水中溶解过程,构建了特殊的中空“杯状和管状”结构。具有特殊内外形状可调特性的高强度、生物相容性水凝胶,可能在血管修复和软骨替代物中具有潜在的用途,这可能进一步拓宽我们对水凝胶可塑性的理解。

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