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iPSC 及其衍生物在多个谱系中的可扩展扩增。

Scalable expansion of iPSC and their derivatives across multiple lineages.

机构信息

Cell Therapy R&D, Novo Nordisk A/S, Novo Nordisk Park 1, 2760 Måløv, Denmark.

Fraunhofer Project Center for Stem Cell Process Engineering, Fraunhofer Institute for Biomedical Engineering IBMT, Neunerplatz 2, 97082 Würzburg, Germany.

出版信息

Reprod Toxicol. 2022 Sep;112:23-35. doi: 10.1016/j.reprotox.2022.05.007. Epub 2022 May 17.

Abstract

Induced pluripotent stem cell (iPSC) technology enabled the production of pluripotent stem cell lines from somatic cells from a range of known genetic backgrounds. Their ability to differentiate and generate a wide variety of cell types has resulted in their use for various biomedical applications, including toxicity testing. Many of these iPSC lines are now registered in databases and stored in biobanks such as the European Bank for induced pluripotent Stem Cells (EBiSC), which can streamline the quality control and distribution of these individual lines. To generate the quantities of cells for banking and applications like high-throughput toxicity screening, scalable and robust methods need to be developed to enable the large-scale production of iPSCs. 3D suspension culture platforms are increasingly being used by stem cell researchers, owing to a higher cell output in a smaller footprint, as well as simpler scaling by increasing culture volume. Here we describe our strategies for successful scalable production of iPSCs using a benchtop bioreactor and incubator for 3D suspension cultures, while maintaining quality attributes expected of high-quality iPSC lines. Additionally, to meet the increasing demand for "ready-to-use" cell types, we report recent work to establish robust, scalable differentiation protocols to cardiac, neural, and hepatic fate to enable EBiSC to increase available research tools.

摘要

诱导多能干细胞(iPSC)技术使人们能够从多种已知遗传背景的体细胞中产生多能干细胞系。它们的分化能力和生成多种细胞类型的能力,使得它们在各种生物医学应用中得到了应用,包括毒性测试。现在,许多这些 iPSC 系已经在数据库中注册,并存储在生物库中,如欧洲诱导多能干细胞银行(EBiSC),这可以简化这些个体系的质量控制和分配。为了生成用于存储和高通量毒性筛选等应用的细胞数量,需要开发可扩展和稳健的方法来实现 iPSC 的大规模生产。由于 3D 悬浮培养平台具有更高的细胞产量和更小的占地面积,以及通过增加培养体积来实现更简单的扩展,因此越来越受到干细胞研究人员的青睐。在这里,我们描述了使用台式生物反应器和 3D 悬浮培养的孵育箱成功地进行可扩展生产 iPSC 的策略,同时保持了高质量 iPSC 系所期望的质量属性。此外,为了满足对“即用型”细胞类型的日益增长的需求,我们报告了最近建立稳健、可扩展的分化方案的工作,以实现心脏、神经和肝脏命运,使 EBiSC 能够增加可用的研究工具。

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