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Model-based analysis and design of a microchannel reactor for tissue engineering

机译:基于模型的组织工程微通道反应器分析与设计

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摘要

Recently developed perfusion micro-bioreactors offer the promise of more physiologic in vitro systems for tissue engineering. Successful application of such bioreactors will require a method to characterize the bioreactor environment required to elicit desired cell function. We present a mathematical model to describe nutrient/growth factor transport and cell growth inside a microchannel bioreactor. Using the model, we first show that the nature of spatial gradients in nutrient concentration can be controlled by both design and operating conditions and are a strong function of cell uptake rates. Next, we extend our model to investigate the spatial distributions of cell-secreted soluble autocrine/paracrine growth factors in the bioreactor. We show that the convective transport associated with the continuous cell culture and possible media recirculation can significantly alter the concentration distribution of the soluble signaling molecules as compared to static culture experiments and hence needs special attention when adapting static culture protocols for the bioreactor. Further, using an unsteady state model, we find that spatial gradients in nutrient/growth factor concentrations can bring about spatial variations in the cell density distribution inside the bioreactor, which can result in lowered working volume of the bioreactor. Finally, we show that the nutrient and spatial limitations can dramatically affect the composition of a co-cultured cell population. Our results are significant for the development, design, and optimization of novel micro-channel systems for tissue engineering. © 2006 Wiley Periodicals, Inc.
机译:最近开发的灌注微生物反应器有望为组织工程提供更多的生理体外系统。这种生物反应器的成功应用将需要一种方法来表征引发期望细胞功能所需的生物反应器环境。我们提出一个数学模型来描述微通道生物反应器内的营养/生长因子转运和细胞生长。使用该模型,我们首先表明营养物浓度的空间梯度性质可以通过设计和操作条件来控制,并且是细胞摄取率的强函数。接下来,我们扩展模型以研究生物反应器中细胞分泌的可溶性自分泌/旁分泌生长因子的空间分布。我们显示,与静态培养实验相比,与连续细胞培养和可能的培养基再循环相关的对流运输可以显着改变可溶性信号分子的浓度分布,因此在为生物反应器调整静态培养方案时需要特别注意。此外,使用非稳态模型,我们发现营养物/生长因子浓度的空间梯度会导致生物反应器内部细胞密度分布的空间变化,从而导致生物反应器的工作量降低。最后,我们表明营养和空间限制会极大地影响共培养细胞群体的组成。我们的结果对于用于组织工程的新型微通道系统的开发,设计和优化具有重要意义。 ©2006 Wiley Periodicals,Inc.

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