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首页> 外文期刊>Stem cells translational medicine. >Robust Expansion of Human Pluripotent Stem Cells: Integration of Bioprocess Design With Transcriptomic and Metabolomic Characterization
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Robust Expansion of Human Pluripotent Stem Cells: Integration of Bioprocess Design With Transcriptomic and Metabolomic Characterization

机译:人多能干细胞的稳健扩增:生物过程设计与转录组和代谢组学表征的集成。

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Human embryonic stem cells (hESCs) have an enormous potential as a source for cell replacement therapies, tissue engineering, and in vitro toxicology applications. The lack of standardized and robust bioprocesses for hESC expansion has hindered the application of hESCs and their derivatives in clinical settings. We developed a robust and well-characterized bioprocess for hESC expansion under fully defined conditions and explored the potential of transcriptomic and metabolomic tools for a more comprehensive assessment of culture system impact on cell proliferation, metabolism, and phenotype. Two different hESC lines (feeder-dependent and feeder-free lines) were efficiently expanded on xeno-free microcarriers in stirred culture systems. Both hESC lines maintained the expression of stemness markers such as Oct-4, Nanog, SSEA-4, and TRA1-60 and the ability to spontaneously differentiate into the three germ layers. Whole-genome transcriptome profiling revealed a phenotypic convergence between both hESC lines along the expansion process in stirred-tank bioreactor cultures, providing strong evidence of the robustness of the cultivation process to homogenize cellular phenotype. Under low-oxygen tension, results showed metabolic rearrangement with upregulation of the glycolytic machinery favoring an anaerobic glycolysis Warburg-effect-like phenotype, with no evidence of hypoxic stress response, in contrast to two-dimensional culture. Overall, we report a standardized expansion bioprocess that can guarantee maximal product quality. Furthermore, the "omics" tools used provided relevant findings on the physiological and metabolic changes during hESC expansion in environmentally controlled stirred-tank bioreactors, which can contribute to improved scale-up production systems.
机译:人类胚胎干细胞(hESCs)作为细胞替代疗法,组织工程和体外毒理学应用的来源具有巨大的潜力。缺乏用于hESC扩增的标准化且健壮的生物过程阻碍了hESC及其衍生物在临床环境中的应用。我们为hESC在完全限定的条件下扩增建立了强大且特征明确的生物过程,并探索了转录组和代谢组学工具用于更全面评估培养系统对细胞增殖,代谢和表型影响的潜力。在搅拌培养系统中,在无异种微载体上有效地扩增了两种不同的hESC品系(依赖于饲养者的和无饲养者的品系)。两种hESC系均保持了干性标记(如Oct-4,Nanog,SSEA-4和TRA1-60)的表达以及自发分化为三个胚层的能力。全基因组转录组谱分析显示,在搅拌罐式生物反应器培养物中,两个hESC系沿着扩增过程在表型上趋同,这为培养过程使细胞表型均一的鲁棒性提供了有力证据。在低氧张力下,结果显示代谢重排与糖酵解机制的上调有利于厌氧性糖酵解Warburg效应样表型,与二维培养相比没有低氧应激反应的迹象。总体而言,我们报告了可以保证最高产品质量的标准化扩展生物工艺。此外,所使用的“组学”工具提供了有关在环境控制的搅拌罐式生物反应器中hESC扩增过程中生理和代谢变化的相关发现,这可有助于改善规模化生产系统。

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