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A strategy to determine operating parameters in tissue engineering hollow fiber bioreactors

机译:确定组织工程中空纤维生物反应器中操作参数的策略

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摘要

The development of tissue engineering hollow fiber bioreactors (HFB) requires the optimal design of the geometry and operation parameters of the system. This article provides a strategy for specifying operating conditions for the system based on mathematical models of oxygen delivery to the cell population. Analytical and numerical solutions of these models are developed based on Michaelis–Menten kinetics. Depending on the minimum oxygen concentration required to culture a functional cell population, together with the oxygen uptake kinetics, the strategy dictates the model needed to describe mass transport so that the operating conditions can be defined. If cmin ≫ Km we capture oxygen uptake using zero-order kinetics and proceed analytically. This enables operating equations to be developed that allow the user to choose the medium flow rate, lumen length, and ECS depth to provide a prescribed value of cmin. When , we use numerical techniques to solve full Michaelis–Menten kinetics and present operating data for the bioreactor. The strategy presented utilizes both analytical and numerical approaches and can be applied to any cell type with known oxygen transport properties and uptake kinetics.
机译:组织工程中空纤维生物反应器(HFB)的开发要求对系统的几何形状和操作参数进行最佳设计。本文提供了一种根据向细胞群输送氧气的数学模型为系统指定运行条件的策略。这些模型的解析和数值解决方案是根据Michaelis–Menten动力学开发的。根据培养功能性细胞群所需的最低氧气浓度以及氧气的吸收动力学,该策略决定了描述质量传输所需的模型,以便可以定义操作条件。如果cmin≫ Km,我们将使用零级动力学捕获氧的吸收并进行分析。这使操作方程式得以发展,允许用户选择介质流速,管腔长度和ECS深度以提供规定的cmin值。当时,我们使用数值技术求解完整的Michaelis-Menten动力学,并提供生物反应器的操作数据。提出的策略利用了分析方法和数值方法,并且可以应用于具有已知的氧传输性质和吸收动力学的任何细胞类型。

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