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Distributed and Lumped Parameter Models for the Characterization of High Throughput Bioreactors

机译:表征高通量生物反应器的分布和集总参数模型

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摘要

Next generation bioreactors are being developed to generate multiple human cell-based tissue analogs within the same fluidic system, to better recapitulate the complexity and interconnection of human physiology [, ]. The effective development of these devices requires a solid understanding of their interconnected fluidics, to predict the transport of nutrients and waste through the constructs and improve the design accordingly. In this work, we focus on a specific model of bioreactor, with multiple input/outputs, aimed at generating osteochondral constructs, i.e., a biphasic construct in which one side is cartilaginous in nature, while the other is osseous. We next develop a general computational approach to model the microfluidics of a multi-chamber, interconnected system that may be applied to human-on-chip devices. This objective requires overcoming several challenges at the level of computational modeling. The main one consists of addressing the multi-physics nature of the problem that combines free flow in channels with hindered flow in porous media. Fluid dynamics is also coupled with advection-diffusion-reaction equations that model the transport of biomolecules throughout the system and their interaction with living tissues and C constructs. Ultimately, we aim at providing a predictive approach useful for the general organ-on-chip community. To this end, we have developed a lumped parameter approach that allows us to analyze the behavior of multi-unit bioreactor systems with modest computational effort, provided that the behavior of a single unit can be fully characterized.
机译:下一代生物反应器正在开发,以在同一流体系统内生成多种基于人类细胞的组织类似物,以更好地概括人类生理学的复杂性和相互联系[,]。这些设备的有效开发需要对它们相互连接的流体系统有深入的了解,以预测养分和废物通过结构的传输并相应地改进设计。在这项工作中,我们专注于具有多个输入/输出的生物反应器的特定模型,旨在生成骨软骨构建体,即,双侧构建体,其中一侧本质上是软骨的,而另一侧是骨质的。接下来,我们将开发一种通用的计算方法来对多腔室互连系统的微流体建模,该系统可应用于芯片上的人机设备。这个目标需要克服计算建模方面的几个挑战。主要内容包括解决该问题的多物理性质,该问题将通道中的自由流与多孔介质中的受阻流结合在一起。流体动力学还与对流扩散反应方程式结合,该方程式对生物分子在整个系统中的运输及其与活组织和C结构的相互作用进行建模。最终,我们旨在提供一种对普通芯片上的器官有用的预测方法。为此,我们开发了一种集总参数方法,允许我们以适度的计算工作量来分析多单元生物反应器系统的行为,前提是可以完全表征单个单元的行为。

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