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Dynamic three-dimensional micropatterned cell co-cultures within photocurable and chemically degradable hydrogels

机译:在可光固化和可化学降解的水凝胶中进行动态三维微模式细胞共培养

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In this paper we report on the development of dynamically controlled three-dimensional (3D) micropatterned cellular co-cultures within photocurable and chemically degradable hydrogels. Specifically, we generated dynamic co-cultures of micropatterned murine embryonic stem (mES) cells with human hepatocellular carcinoma (HepG2) cells within 3D hydrogels. HepG2 cells were used due to their ability to direct the differentiation of mES cells through secreted paracrine factors. To generate dynamic co-cultures, mES cells were first encapsulated within micropatterned photocurable poly(ethylene glycol) (PEG) hydrogels. These micropatterned cell-laden PEG hydrogels were subsequently surrounded by calcium alginate (Ca-Alg) hydrogels containing HepG2 cells. After 4 days, the co-culture step was halted by exposing the system to sodium citrate solution, which removed the alginate gels and the encapsulated HepG2 cells. The encapsulated mES cells were then maintained in the resulting cultures for 16 days and cardiac differentiation was analysed. We observed that the mES cells that were exposed to HepG2 cells in the co-cultures generated cells with higher expression of cardiac genes and proteins, as well as increased spontaneous beating. Due to its ability to control the 3D microenvironment of cells in a spatially and temporally regulated manner, the method presented in this study is useful for a range of cell-culture applications related to tissue engineering and regenerative medicine. Copyright (c) 2013 John Wiley & Sons, Ltd.
机译:在本文中,我们报告了在可光固化和可化学降解的水凝胶中动态控制的三维(3D)微图案细胞共培养物的发展。具体来说,我们在3D水凝胶中生成了微模式小鼠胚胎干(mES)细胞与人肝细胞癌(HepG2)细胞的动态共培养物。使用HepG2细胞是因为它们具有通过分泌的旁分泌因子指导mES细胞分化的能力。为了产生动态共培养,首先将mES细胞封装在微图案化的可光固化的聚乙二醇(PEG)水凝胶中。这些微图案化的充满细胞的PEG水凝胶随后被含有HepG2细胞的藻酸钙(Ca-Alg)水凝胶包围。 4天后,通过将系统暴露于柠檬酸钠溶液中来停止共培养步骤,这除去了藻酸盐凝胶和包封的HepG2细胞。然后将包封的mES细胞在所得培养物中维持16天,并分析心脏分化。我们观察到,在共培养物中暴露于HepG2细胞的mES细胞产生了具有更高心脏基因和蛋白质表达以及自发搏动增加的细胞。由于它具有以时空调节方式控制细胞3D微环境的能力,因此本研究中提出的方法可用于与组织工程和再生医学有关的一系列细胞培养应用。版权所有(c)2013 John Wiley&Sons,Ltd.

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