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Electrosynthesis of Janus Alginate Hydrogel Microcapsules with Programmable Shapes for Cell Encapsulation

机译:Janus海藻酸盐水凝胶微胶囊的电合成,具有用于细胞包封的可编程形状

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Hydrogel microcapsules provide well-defined and biocompatible platforms for 3D cell culture, which is greatly desired for replacing, or enhancing the function of damaged human tissue and in vitro tissue regeneration. Since Alginate-poly-L-lysine alginate microcapsules can provide a liquified environment for biomaterials, traditional fabrication methods such as microfluidic gelation can tune the size and biochemical properties of hydrogel microcapsule, but still, undergo tremendous challenges while tuning the morphology of the hydrogel microcapsules. In this work, we proposed a novel approach to fabricate Janus Alginate-Poly-L-lysine Alginate microcapsule with controllable shape and size based on a two-step hydrogel electrodeposition method. The microelectrode device (fluorine-doped tin oxide (FTO) glass) was etched into two insulating parts by laser processing. After the first step, the electrodeposition solution was removed by adding HEPES solution. During secondary electrodeposition, a higher voltage was employed, since the entrapped hydrogel and unremoved HEPES solution remains upon the surface of the fluorine-doped tin oxide (FTO) glass. After the two-step deposition, the 2D hydrogel Janus structures were detached from the FTO glass. Then they were immersed in Poly-L-lysine solution. Then the 3D Alginate-poly-L-lysine alginate (APA) microcapsules were successfully fabricated and incubated for further observation. We have demonstrated a successful encapsulation of HepG-2 cells in the half of the APA hydrogel microcapsule and the cells are cultured for several days and Janus APA microcapsules are embedded with fluorescence-labelled and non-labelled HepG2 cells to monitor the cell morphology, distribution, as well as their proliferation.
机译:水凝胶微胶囊提供用于3D细胞培养的明确定义的和生物相容性平台,这对于替换或增强受损人体组织和体外组织再生的功能非常需要。由于藻酸盐 - 聚-L-赖氨酸海藻酸盐微胶囊可以提供用于生物材料的液化环境,因此传统的制造方法如微流体凝胶化可以调节水凝胶微胶囊的尺寸和生化特性,但仍然在调整水凝胶微胶囊的形态时经历巨大的挑战。在这项工作中,我们提出了一种基于两步水凝胶电沉积法的可控形状和尺寸来制造Janus藻酸盐 - 聚-L-赖氨酸藻酸盐微胶囊的新方法。通过激光加工将微电极器件(氟掺杂的氧化锡(FTO)玻璃)蚀刻成两个绝缘部件。在第一步之后,通过添加HEPES溶液除去电沉积溶液。在二次电沉积期间,采用较高的电压,因为夹带的水凝胶和未知的HEPES溶液保留在氟掺杂的氧化锡(FTO)玻璃的表面上。在两步沉积之后,将2D水凝胶Janus结构与FTO玻璃分离。然后将它们浸入聚-L-赖氨酸溶液中。然后成功制造3D藻酸盐 - 聚-L-赖氨酸藻酸盐(APA)微胶囊并孵育以进一步观察。我们已经证明了APA水凝胶微胶囊的一半成功封装了HepG-2细胞,并且将细胞培养数天,Janus APA微胶囊嵌入荧光标记和未标记的HepG2细胞以监测细胞形态,分布以及他们的增殖。

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