基于电沉积法的海藻酸盐水凝胶聚赖氨酸微胶囊的形状控制生产:形状控制微胶囊

Zeyang Liu, Masaru Takeuchi, M. Nakajima, Y. Hasegawa, T. Fukuda, Qiang Huang
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引用次数: 2

摘要

在这项研究中,我们描述了一种制造形状控制海藻酸钙凝胶微胶囊的新方法。采用电沉积法构建了具有预定形状的海藻酸-聚l -赖氨酸(PLL)水凝胶微胶囊。首先,用碳酸钙颗粒电解海藻酸盐溶液中的水,诱导海藻酸盐在微图电极上凝胶化,形成二维凝胶结构。然后,这些结构将从电极表面分离,并用海藻酸盐- pll微胶囊系统进行处理。通过基于微模式几何约束和电沉积参数的被动控制,我们成功地制备了不同形状(如球棒和立方)的海藻酸钙- pll微胶囊。海藻酸钙微胶囊的形状和大小可以通过调节电极上微图案的几何设计和沉积电压来调节。研究了尺寸形状可控海藻酸钙- pll微胶囊的制备条件及影响因素。该方法可为组织工程生物相容性支架的制备提供更准确、更有创造性的研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Shape-controlled production of alginate hydrogel-poly-L-lysine microcapsules based on electrodeposition method: Shape-controlled microcapsules
In this study, we describe a novel method of fabricating shape-controlled calcium alginate gel microcapsules. Alginate-poly-L-lysine (PLL) hydrogel microcapsules with predefined shapes were constructed based on electrodeposition method. Firstly, electrolysis of water in alginate solutions with calcium carbonate particles induced alginate gelation on micro-patterned electrode to form 2D gel structures. Then, these structures will be detached from the electrode surface and treated with the alginate-PLL microcapsules system. By passive control based on the micro-pattern geometric confinement and electrodeposition parameters, we succeeded in producing calcium alginate-PLL microcapsules with diverse shapes (such as sphere rod and cubic). The shape and size of the calcium alginate microcapsules could be tuned by adjusting the geometric design of micro-pattern on electrode and the apply voltage of electrodepostion. The preparation conditions of size- and shape-controlled calcium alginate-PLL microcapsules and influence factors were studied. This proposed method can lead to more accurate and creative studies of fabricating biocompatibility scaffold for tissue engineering.
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