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扩大用于人类多能干细胞神经定向分化的化学成分明确的基于聚集体的悬浮培养系统。

Scaling up a chemically-defined aggregate-based suspension culture system for neural commitment of human pluripotent stem cells.

作者信息

Miranda Cláudia C, Fernandes Tiago G, Diogo M Margarida, Cabral Joaquim M S

机构信息

Department of Bioengineering and iBB - Institute for Bioengineering and Biosciences, Instituto Superior Técnico, Universidade de Lisboa, Lisbon, Portugal.

出版信息

Biotechnol J. 2016 Dec;11(12):1628-1638. doi: 10.1002/biot.201600446. Epub 2016 Nov 17.

Abstract

The demand of high cell numbers for applications in cellular therapies and drug screening requires the development of scalable platforms capable to generating highly pure populations of tissue-specific cells from human pluripotent stem cells. In this work, we describe the scaling-up of an aggregate-based culture system for neural induction of human induced pluripotent stem cells (hiPSCs) under chemically-defined conditions. A combination of non-enzymatic dissociation and rotary agitation was successfully used to produce homogeneous populations of hiPSC aggregates with an optimal (140 μm) and narrow distribution of diameters (coefficient of variation of 21.6%). Scalable neural commitment of hiPSCs as 3D aggregates was performed in 50 mL spinner flasks, and the process was optimized using a factorial design approach, involving parameters such as agitation rate and seeding density. We were able to produce neural progenitor cell cultures, that at the end of a 6-day neural induction process contained less than 3% of Oct4-positive cells and that, after replating, retained more than 60% of Pax6-positive neural cells. The results here presented should set the stage for the future generation of a clinically relevant number of human neural progenitors for transplantation and other biomedical applications using controlled, automated and reproducible large-scale bioreactor culture systems.

摘要

细胞疗法和药物筛选应用中对高细胞数量的需求,要求开发可扩展的平台,能够从人多能干细胞中生成高度纯化的组织特异性细胞群体。在这项工作中,我们描述了在化学成分明确的条件下,用于人诱导多能干细胞(hiPSC)神经诱导的基于聚集体的培养系统的放大过程。成功地将非酶解离和旋转搅拌相结合,以产生具有最佳直径(140μm)且直径分布狭窄(变异系数为21.6%)的hiPSC聚集体均匀群体。作为3D聚集体的hiPSC的可扩展神经定向分化在50 mL转瓶中进行,并使用析因设计方法对该过程进行了优化,涉及搅拌速率和接种密度等参数。我们能够产生神经祖细胞培养物,在6天的神经诱导过程结束时,Oct4阳性细胞含量低于3%,并且在重新接种后,保留了超过60%的Pax6阳性神经细胞。本文展示的结果应为未来使用可控、自动化和可重复的大规模生物反应器培养系统,生成临床上相关数量的用于移植和其他生物医学应用的人神经祖细胞奠定基础。

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