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通过计算流体动力学建模在搅拌悬浮生物反应器中大规模扩增人脐带间充质干细胞

Large-Scale Expansion of Human Umbilical Cord-Derived Mesenchymal Stem Cells in a Stirred Suspension Bioreactor Enabled by Computational Fluid Dynamics Modeling.

作者信息

Zhang Junhong, Peng Yan, Guo Meijin, Li Chao

机构信息

State Key Laboratory of Bioreactor Engineering, East China University of Science and Technology, 130 Meilong Rd., Shanghai 200237, China.

出版信息

Bioengineering (Basel). 2022 Jun 23;9(7):274. doi: 10.3390/bioengineering9070274.

Abstract

Human umbilical cord-derived mesenchymal stem cells (hUCMSCs) hold great potential to generate novel and curative cell therapy products. However, the current large-scale cultivation of hUCMSCs is based on empirical geometry-dependent methods, limiting the generation of high-quantity and high-quality hUCMSCs for clinical therapy. Herein, we develop a novel scale-up strategy based on computational fluid dynamics (CFD) to effectively expand the hUCMSCs in a 3D tank bioreactor. Using a standardized hUCMSCs line on microcarriers, we successfully translated and expanded the hUCMSCs from a 200 mL spinner flask to a 1.5 L computer-controlled bioreactor by matching the shear environment and suspending the microcarrier. Experimental results revealed that the batch-cultured hUCMSCs in bioreactors with an agitation speed of 40 rpm shared a more favorable growth and physiological state, similar to that run at 45 rpm in a 200 mL spinner flask, showing comparability in both culture systems. Notably, the maximum cell density reached up to 27.3 × 10 cells/mL in fed-batch culture, 2.9 folds of that of batch culture and 20.2 times of seeding cells. As such, efficient process optimization and scale-up expansion of hUCMSCs were achieved in the microcarrier-based bioreactor system by the developed CFD simulation strategy, which provided an alternative toolbox to generate massive and standardized curative cell therapy products.

摘要

人脐带间充质干细胞(hUCMSCs)在开发新型治疗性细胞产品方面具有巨大潜力。然而,目前hUCMSCs的大规模培养基于经验性的几何依赖方法,限制了用于临床治疗的高质量和高数量hUCMSCs的产生。在此,我们开发了一种基于计算流体动力学(CFD)的新型放大策略,以在3D罐式生物反应器中有效扩增hUCMSCs。使用微载体上的标准化hUCMSCs系,我们通过匹配剪切环境和悬浮微载体,成功地将hUCMSCs从200 mL转瓶放大到1.5 L计算机控制的生物反应器中。实验结果表明,在搅拌速度为40 rpm的生物反应器中分批培养的hUCMSCs具有更有利的生长和生理状态,类似于在200 mL转瓶中以45 rpm运行时的状态,在两种培养系统中表现出可比性。值得注意的是,在补料分批培养中,最大细胞密度达到27.3×10个细胞/mL,是分批培养的2.9倍,接种细胞的20.2倍。因此,通过所开发的CFD模拟策略,在基于微载体的生物反应器系统中实现了hUCMSCs的高效工艺优化和放大扩增,这为生产大量标准化的治疗性细胞产品提供了一个替代工具箱。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/38c9/9312327/afd81cd4f999/bioengineering-09-00274-g001.jpg

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