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Three-Dimensional Neural Differentiation of Embryonic Stem Cells with ACM Induction in Microfibrous Matrices in Bioreactors

机译:生物反应器中微纤维基质中ACM诱导胚胎干细胞的三维神经分化

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摘要

The clinical use of pluripotent stem cell (PSC)-derived neural cells requires an efficient differentiation process for mass production in a bioreactor. Toward this goal, neural differentiation of murine embryonic stem cells (ESCs) in three-dimensional (3D) polyethylene ter-ephthalate microfibrous matrices was investigated in this study. To streamline the process and provide a platform for process integration, the neural differentiation of ESCs was induced with astrocyte-conditioned medium without the formation of embryoid bodies, starting from undifferentiated ESC aggregates expanded in a suspension bioreactor. The 3D neural differentiation was able to generate a complex neural network in the matrices. When compared to 2D differentiation, 3D differentiation in microfibrous matrices resulted in a higher percentage of nestin-positive cells (68% vs. 54%) and upregulated gene expressions of nestin, Nurrl, and tyrosine hydroxylase. High purity of neural differentiation in 3D microfibrous matrix was also demonstrated in a spinner bioreactor with 74% nestin + cells. This study demonstrated the feasibility of a scalable process based on 3D differentiation in microfibrous matrices for the production of ESC-derived neural cells.
机译:多能干细胞(PSC)衍生的神经细胞的临床使用需要在生物反应器中进行大规模生产的有效分化过程。为了实现这一目标,本研究研究了在三维(3D)聚对苯二甲酸乙二醇酯微纤维基质中鼠胚胎干细胞(ESC)的神经分化。为了简化过程并为过程集成提供平台,使用星形胶质细胞条件培养基诱导ESC的神经分化,而无需形成胚状体,这是从在悬浮生物反应器中扩增的未分化ESC聚集体开始的。 3D神经分化能够在矩阵中生成复杂的神经网络。与2D分化相比,微纤维基质中的3D分化导致巢蛋白阳性细胞百分比更高(68%比54%),并且巢蛋白,Nurrl和酪氨酸羟化酶的基因表达上调。在具有74%巢蛋白+细胞的旋转生物反应器中,还证明了3D微纤维基质中神经分化的高纯度。这项研究证明了在微纤维基质中基于3D分化的可扩展过程用于生产ESC衍生的神经细胞的可行性。

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