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使用壳聚糖生物聚合物的复杂微结构化3D表面。

Complex microstructured 3D surfaces using chitosan biopolymer.

作者信息

Fernandez Javier G, Mills Christopher A, Samitier Josep

机构信息

Institute for Bioengineering of Catalonia, Barcelona, Spain.

出版信息

Small. 2009 Mar;5(5):614-20. doi: 10.1002/smll.200800907.

Abstract

A technique for producing micrometer-scale structures over large, nonplanar chitosan surfaces is described. The technique makes use of the rheological characteristics (deformability) of the chitosan to create freestanding, three-dimensional scaffolds with controlled shapes, incorporating defined microtopography. The results of an investigation into the technical limits of molding different combinations of shapes and microtopographies are presented, highlighting the versatility of the technique when used irrespectively with inorganic or delicate organic moulds. The final, replicated scaffolds presented here are patterned with arrays of one-micrometer-tall microstructures over large areas. Structural integrity is characterized by the measurement of structural degradation. Human umbilical vein endothelial cells cultured on a tubular scaffold show that early cell growth is conditioned by the microtopography and indicate possible uses for the structures in biomedical applications. For those applications requiring improved chemical and mechanical resistance, the structures can be replicated in poly(dimethyl siloxane).

摘要

本文描述了一种在大型非平面壳聚糖表面制备微米级结构的技术。该技术利用壳聚糖的流变特性(可变形性)来创建具有可控形状的独立三维支架,并融入特定的微观形貌。文中展示了对不同形状和微观形貌组合成型技术极限的研究结果,突出了该技术在使用无机或精细有机模具时的通用性。这里展示的最终复制支架在大面积上具有一微米高的微结构阵列图案。通过测量结构降解来表征结构完整性。在管状支架上培养的人脐静脉内皮细胞表明,早期细胞生长受微观形貌的影响,并指出了这些结构在生物医学应用中的潜在用途。对于那些需要提高化学和机械抗性的应用,这些结构可以复制到聚二甲基硅氧烷中。

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