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Computational Fluid Dynamics Investigation of the Effect of the Fluid-Induced Shear Stress on Hepatocyte Sandwich Perfusion Culture

机译:计算流体动力学对肝细胞夹层灌注培养的流体诱导的剪切应力影响

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摘要

Primary hepatocyte in vitro culture is a challenging area in liver tissue engineering. Hepatocyte viability and functions drop significantly after isolation step. The perfusion culture is a promising culture method to maintain cell viability and function in vitro for long term. Hepatocytes cultured in perfusion condition have better oxygen and nutrient supply due to improved mass transfer. The metabolite wastes excreted by cells can also be removed effectively in the perfused flow, avoiding local accumulation of these wastes which deteriorates cell functions. However, hepatocytes are sensitive to shear stress associated with the flow rate in perfusion culture and are shielded by sinusoidal endothelial cells in the liver to avoid direct exposure to shear stress. Fluid-induced high shear stress in perfusion culture may cause detrimental effect on hepatocyte viability and functions. In the current study, we simulated the profile of fluid-induced shear stress under different flow rate in our sandwich perfusion bioreactor using computation fluid dynamics (CFD) method, and investigated the effect of shear stress on the cell function. The results indicated that hepatocyte function can be maintained in long term under moderate shear stress in perfusion culture.
机译:主要肝细胞体外培养是肝组织工程中的一个具有挑战性的区域。分离步骤后肝细胞活力和功能显着降低。灌注培养是一种有前途的培养方法,以保持细胞活力和在体外功能长期。由于改善的传质,在灌注条件下培养的肝细胞具有更好的氧气和营养供应。通过细胞排出的代谢物废物也可以有效地在灌注的流动中被除去,避免这些废物的局部积累,这些废物劣化细胞功能。然而,肝细胞对与灌注培养物中的流速相关的剪切应力敏感,并且通过肝脏中的正弦内皮细胞屏蔽,以避免直接暴露于剪切应力。灌注培养中的流体诱导的高剪切应力可能导致对肝细胞活力和功能的不利影响。在目前的研究中,我们使用计算流体动力学(CFD)方法模拟了在夹层灌注生物反应器中的不同流速下的流体诱导的剪切应力的轮廓,并研究了剪切应力对细胞功能的影响。结果表明,在灌注培养中的中等剪切应力下可以长期保持肝细胞功能。

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