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通过优化搅拌器设计,增强在转瓶中微载体上培养的间充质干细胞用于聚集悬浮液。

Enhancing mesenchymal stem cells cultivated on microcarriers in spinner flasks via impeller design optimization for aggregated suspensions.

作者信息

Zhang Botao, Lu Qiaohui, Dai Gance, Zhou Yi, Ye Qian, Zhou Yan, Tan Wen-Song

机构信息

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

出版信息

Bioresour Bioprocess. 2023 Dec 3;10(1):89. doi: 10.1186/s40643-023-00707-7.

Abstract

During the ex vivo expansion of umbilical cord-derived mesenchymal stem cells (hUCMSCs) in a stirred tank bioreactor, the formation of cell-microcarrier aggregates significantly affects cell proliferation and physiological activity, making it difficult to meet the quantity and quality requirements for in vitro research and clinical applications. In this study, computational fluid dynamic (CFD) simulations were used to investigate the effect of an impeller structure in a commercial spinner flask on flow field structure, aggregate formation, and cellular physiological activity. By designing a modified impeller, the aggregate size was reduced, which promoted cell proliferation and stemness maintenance. This study showed that increasing the stirring speed reduced the size of hUCMSC-microcarrier aggregates with the original impeller. However, it also inhibited cell proliferation, decreased activity, and led to spontaneous differentiation. Compared to low stirring speeds, high stirring speeds did not alter the radial flow characteristics and vortex distribution of the flow field, but did generate higher shear rates. The new impeller's design changed the flow field from radial to axial. The use of the novel impeller with an increased axial pumping rate (Q) at a similar shear rate compared to the original impeller resulted in a 43.7% reduction in aggregate size, a 37.4% increase in cell density, and a better preservation of the expression of stemness markers (SOX2, OCT4 and NANOG). Increasing the Q was a key factor in promoting aggregate suspension and size reduction. The results of this study have significant implications for the design of reactors, the optimisation of operating parameters, and the regulation of cellular physiological activity during MSC expansion.

摘要

在搅拌罐生物反应器中对脐带间充质干细胞(hUCMSCs)进行体外扩增时,细胞 - 微载体聚集体的形成会显著影响细胞增殖和生理活性,难以满足体外研究和临床应用的数量和质量要求。在本研究中,采用计算流体动力学(CFD)模拟来研究商用转瓶中叶轮结构对流场结构、聚集体形成和细胞生理活性的影响。通过设计一种改良叶轮,聚集体尺寸减小,从而促进了细胞增殖和干性维持。本研究表明,提高搅拌速度会减小采用原始叶轮时hUCMSC - 微载体聚集体的尺寸。然而,这也会抑制细胞增殖、降低活性并导致自发分化。与低搅拌速度相比,高搅拌速度并未改变流场的径向流动特性和涡旋分布,但会产生更高的剪切速率。新叶轮的设计将流场从径向变为轴向。与原始叶轮相比,在相似剪切速率下使用轴向泵送速率(Q)增加的新型叶轮,使聚集体尺寸减小了43.7%,细胞密度增加了37.4%,并且更好地保留了干性标志物(SOX2、OCT-4和NANOG)的表达。增加Q是促进聚集体悬浮和尺寸减小的关键因素。本研究结果对反应器设计、操作参数优化以及间充质干细胞扩增过程中细胞生理活性的调控具有重要意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3dcf/10992254/4601e3416cd4/40643_2023_707_Fig1_HTML.jpg

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