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通过氧控制改善灌注式生物反应器中多能人胚胎干细胞的扩增。

Improving expansion of pluripotent human embryonic stem cells in perfused bioreactors through oxygen control.

机构信息

Instituto de Tecnologia Química e Biológica, Universidade Nova de Lisboa, Oeiras, Portugal.

出版信息

J Biotechnol. 2010 Aug 2;148(4):208-15. doi: 10.1016/j.jbiotec.2010.06.015. Epub 2010 Jun 17.

Abstract

The successful transfer of human embryonic stem cell (hESC) technology and cellular products into clinical and industrial applications needs to address issues of automation, standardization and the generation of relevant cell numbers of high quality. In this study, we combined microcarrier technology and controlled stirred tank bioreactors, to develop an efficient and scalable system for expansion of pluripotent hESCs. We demonstrate the importance of controlling pO(2) at 30% air saturation to improve hESCs growth. This concentration allowed for a higher energetic cell metabolism, increased growth rate and maximum cell concentration in contrast to 5% pO(2) where a shift to anaerobic metabolism was observed, decreasing cell expansion 3-fold. Importantly, the incorporation of an automated perfusion system in the bioreactor enhanced culture performance and allowed the continuous addition of small molecules assuring higher cell concentrations for a longer time period. The expanded hESCs retained their undifferentiated phenotype and pluripotency. Our results show, for the first time, that the use of controlled bioreactors is critical to ensure the production of high quality hESCs. When compared to the standard colony culture, our strategy improves the final yield of hESCs by 12-fold, providing a potential bioprocess to be transferred to clinical and industrial applications.

摘要

将人类胚胎干细胞(hESC)技术和细胞产品成功转化为临床和工业应用,需要解决自动化、标准化以及相关细胞数量的高质量生成等问题。在本研究中,我们结合微载体技术和搅拌式生物反应器,开发了一种高效且可扩展的多能 hESC 扩增系统。我们证明了将 pO(2) 控制在 30%空气饱和度以改善 hESC 生长的重要性。与 5% pO(2)相比,该浓度下观察到细胞代谢向厌氧转变,细胞扩增减少了 3 倍,从而使细胞具有更高的能量代谢、更快的生长速度和更高的最大细胞浓度。重要的是,在生物反应器中加入自动化灌注系统可提高培养性能,并可连续添加小分子,从而保证更长时间内获得更高的细胞浓度。扩增的 hESC 保持其未分化表型和多能性。我们的结果首次表明,使用控制生物反应器对于确保高质量 hESC 的生产至关重要。与标准的集落培养相比,我们的策略将 hESC 的最终产量提高了 12 倍,为转移到临床和工业应用提供了一种潜在的生物工艺。

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