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在生物反应器中构建用于高效且与规模无关地扩增人多能干细胞的三维微隔室。

Engineering 3D micro-compartments for highly efficient and scale-independent expansion of human pluripotent stem cells in bioreactors.

作者信息

Cohen Philippe J R, Luquet Elisa, Pletenka Justine, Leonard Andrea, Warter Elise, Gurchenkov Basile, Carrere Jessica, Rieu Clément, Hardouin Jerome, Moncaubeig Fabien, Lanero Michael, Quelennec Eddy, Wurtz Helene, Jamet Emilie, Demarco Maelle, Banal Celine, Van Liedekerke Paul, Nassoy Pierre, Feyeux Maxime, Lefort Nathalie, Alessandri Kevin

机构信息

Université Paris Cité, Imagine Institute, IPSC Core Facility, INSERM UMR U1163, F-75015, Paris, France; Treefrog Therapeutics, F-33600, Pessac, France.

Treefrog Therapeutics, F-33600, Pessac, France.

出版信息

Biomaterials. 2023 Apr;295:122033. doi: 10.1016/j.biomaterials.2023.122033. Epub 2023 Feb 2.

Abstract

Human pluripotent stem cells (hPSCs) have emerged as the most promising cellular source for cell therapies. To overcome the scale-up limitations of classical 2D culture systems, suspension cultures have been developed to meet the need for large-scale culture in regenerative medicine. Despite constant improvements, current protocols that use microcarriers or generate cell aggregates only achieve moderate amplification performance. Here, guided by reports showing that hPSCs can self-organize in vitro into cysts reminiscent of the epiblast stage in embryo development, we developed a physio-mimetic approach for hPSC culture. We engineered stem cell niche microenvironments inside microfluidics-assisted core-shell microcapsules. We demonstrate that lumenized three-dimensional colonies significantly improve viability and expansion rates while maintaining pluripotency compared to standard hPSC culture platforms such as 2D cultures, microcarriers, and aggregates. By further tuning capsule size and culture conditions, we scale up this method to industrial-scale stirred tank bioreactors and achieve an unprecedented hPSC amplification rate of 277-fold in 6.5 days. In brief, our findings indicate that our 3D culture system offers a suitable strategy both for basic stem cell biology experiments and for clinical applications.

摘要

人多能干细胞(hPSC)已成为细胞治疗中最具前景的细胞来源。为克服传统二维培养系统的放大限制,已开发出悬浮培养以满足再生医学中大规模培养的需求。尽管不断改进,但目前使用微载体或生成细胞聚集体的方案仅能实现中等程度的扩增性能。在此,受显示hPSC可在体外自组织形成类似于胚胎发育中胚泡阶段囊肿的报道启发,我们开发了一种用于hPSC培养的仿生方法。我们在微流控辅助的核壳微胶囊内部构建了干细胞生态位微环境。我们证明,与二维培养、微载体和聚集体等标准hPSC培养平台相比,形成管腔的三维集落显著提高了活力和扩增率,同时保持了多能性。通过进一步调整胶囊大小和培养条件,我们将该方法扩大到工业规模的搅拌罐生物反应器,并在6.5天内实现了前所未有的277倍hPSC扩增率。简而言之,我们的研究结果表明,我们的三维培养系统为基础干细胞生物学实验和临床应用都提供了合适的策略。

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