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首页> 外文期刊>Journal of Biotechnology >Using computational fluid dynamics (CFD) modeling to understand murine embryonic stem cell aggregate size and pluripotency distributions in stirred suspension bioreactors
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Using computational fluid dynamics (CFD) modeling to understand murine embryonic stem cell aggregate size and pluripotency distributions in stirred suspension bioreactors

机译:使用计算流体动力学(CFD)建模以了解搅拌悬浮生物反应器中的小鼠胚胎干细胞聚集体尺寸和多能性分布

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Computational fluid dynamics (CFD) modeling can be applied to understand hydrodynamics in stirred suspension bioreactors, which can in turn affect cell viability, proliferation, pluripotency and differentiation. In this study, we developed a CFD model to determine the effects of average shear rates and turbulent eddies on the formation and growth of murine embryonic stem cell aggregates. We found a correlation between average eddy size and aggregate size, which depended on bioreactor agitation rates. By relating these computational and biological variables, CFD modeling can predict optimal agitation rates to grow embryonic stem cell aggregates in stirred suspension bioreactors. To examine the effect of hydrodynamics on pluripotency, mESCs cultured in bioreactors under various agitation rates were tested for SSEA-1, Sox-2, and Nanog expression. Cells maintained a minimum of 95% positive expression with no change in the intensity distribution pattern between the different bioreactor conditions. This indicates that the average level of pluripotency marker expression is independent of changes in the hydrodynamic profile and resulting aggregate size distribution. The findings here can be further extended to other cell types that grow as aggregates in stirred suspension bioreactors and offer important insights necessary to realize cell therapies.
机译:计算流体动力学(CFD)建模可以应用于搅拌悬浮生物反应器中的流体动力学,其又可以影响细胞活力,增殖,多能性和分化。在这项研究中,我们开发了一种CFD模型,以确定平均剪切速率和湍流eddies对小鼠胚胎干细胞聚集体的形成和生长的影响。我们发现平均涡尺寸与骨料尺寸之间的相关性,这取决于生物反应器搅拌速率。通过对这些计算和生物变量相关,CFD建模可以预测搅拌悬浮生物反应器中生长胚胎干细胞聚集体的最佳搅拌速率。为了检查流体动力学对多能性的影响,对SSEA-1,SOX-2和纳米表达测试了在各种搅拌速率下的生物反应器中培养的MESC。细胞保持最小95%的阳性表达,在不同的生物反应器条件下的强度分布模式没有变化。这表明多能性标记表达的平均水平与流体动力学曲线的变化无关,并产生聚集尺寸分布。这里的发现可以进一步扩展到其他细胞类型,其作为搅拌悬浮生物反应器中的聚集体生长,并且提供了实现细胞疗法所必需的重要见解。

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