Design of 2D chitosan scaffolds via electrochemical structuring.

Biomatter Pub Date : 2014-01-01 Epub Date: 2014-06-18 DOI:10.4161/biom.29506
Lina Altomare, Elena Guglielmo, Elena Maria Varoni, Serena Bertoldi, Andrea Cochis, Lia Rimondini, Luigi De Nardo
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引用次数: 11

Abstract

Chitosan (CS) is a versatile biopolymer whose morphological and chemico-physical properties can be designed for a variety of biomedical applications. Taking advantage of its electrolytic nature, cathodic polarization allows CS deposition on electrically conductive substrates, resulting in thin porous structures with tunable morphology. Here we propose an easy method to obtain CS membranes with highly oriented micro-channels for tissue engineering applications, relying on simple control of process parameters and cathodic substrate geometry. Cathodic deposition was performed on two different aluminum grids in galvanostatic conditions at 6.25 mA cm(-2) from CS solution [1g L(-1)] in acetic acid (pH 3.5). Self-standing thin scaffolds were cross linked either with genipin or epichlorohydrin, weighted, and observed by optical and electron microscopy. Swelling properties at pH 5 and pH 7.4 have been also investigated and tensile tests performed on swollen samples at room temperature. Finally, direct and indirect assays have been performed to evaluate the cytotoxicity at 24 and 72 h. Thin scaffolds with two different oriented porosities (1000 µm and 500 µm) have been successfully fabricated by electrochemical techniques. Both cross-linking agents did not affected the mechanical properties and cytocompatibility of the resulting structures. Depending on the pH, these structures show interesting swelling properties that can be exploited for drug delivery systems. Moreover, thanks to the possibility of controlling the porosity and the micro-channel orientation, they should be used for the regeneration of tissues requiring a preferential cells orientation, e.g., cardiac patches or ligament regeneration.

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基于电化学结构的二维壳聚糖支架设计。
壳聚糖(CS)是一种多用途的生物聚合物,其形态和化学物理性质可用于多种生物医学用途。利用其电解性质,阴极极化允许CS沉积在导电衬底上,从而产生具有可调谐形貌的薄多孔结构。在这里,我们提出了一种简单的方法来获得具有高度定向微通道的CS膜,用于组织工程应用,依赖于简单的工艺参数控制和阴极衬底几何形状。在恒电流条件下,从CS溶液[1g L(-1)]到乙酸(pH为3.5)中,在6.25 mA cm(-2)下对两个不同的铝栅格进行阴极沉积。独立的薄支架与吉尼平或环氧氯丙烷交联,称重,并通过光学和电子显微镜观察。还研究了pH 5和pH 7.4下的膨胀特性,并在室温下对膨胀样品进行了拉伸试验。最后,进行了直接和间接测定,以评估24和72 h时的细胞毒性。通过电化学技术成功制备了两种不同取向孔隙度(1000µm和500µm)的薄支架。两种交联剂均不影响所得结构的力学性能和细胞相容性。根据pH值的不同,这些结构显示出有趣的膨胀特性,可以用于药物输送系统。此外,由于可以控制孔隙度和微通道取向,它们可以用于需要优先细胞取向的组织的再生,例如心脏补片或韧带再生。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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