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Reproduction of Large-Scale Bioreactor Conditions on Microfluidic Chips

机译:在微流控芯片上复制大规模生物反应器条件

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摘要

Microbial cells in industrial large-scale bioreactors are exposed to fluctuating conditions, e.g., nutrient concentration, dissolved oxygen, temperature, and pH. These inhomogeneities can influence the cell physiology and metabolism, e.g., decelerate cell growth and product formation. Microfluidic systems offer new opportunities to study such effects in great detail by examining responses to varying environmental conditions at single-cell level. However, the possibility to reproduce large-scale bioreactor conditions in microscale cultivation systems has not yet been systematically investigated. Hence, we apply computational fluid dynamics (CFD) simulations to analyze and compare three commonly used microfluidic single-cell trapping and cultivation devices that are based on (i) mother machines (MM), (ii) monolayer growth chambers (MGC), and (iii) negative dielectrophoresis (nDEP). Several representative time-variant nutrient concentration profiles are applied at the chip entry. Responses to these input signals within the studied microfluidic devices are comparatively evaluated at the positions of the cultivated cells. The results are comprehensively presented in a Bode diagram that illustrates the degree of signal damping depending on the frequency of change in the inlet concentration. As a key finding, the MM can accurately reproduce signal changes that occur within 1 s or slower, which are typical for the environmental conditions observed by single cells in large-scale bioreactors, while faster changes are levelled out. In contrast, the nDEP and MGC are found to level out signal changes occurring within 10 s or faster, which can be critical for the proposed application.
机译:工业大规模生物反应器中的微生物细胞暴露于变化的条件下,例如营养物浓度,溶解氧,温度和pH。这些不均匀性可影响细胞生理和新陈代谢,例如,减速细胞生长和产物形成。通过检查单细胞水平对变化的环境条件的响应,微流体系统提供了新的机会来更详细地研究这种效应。然而,尚未系统地研究在微型培养系统中繁殖大规模生物反应器条件的可能性。因此,我们应用计算流体动力学(CFD)模拟来分析和比较三种基于(i)母机(MM),(ii)单层生长室(MGC)和(iii)负介电电泳(nDEP)。在芯片入口处应用了几种代表性的时变营养物浓度曲线。在所研究的微流体装置中,对这些输入信号的响应在培养细胞的位置进行了比较评估。结果在伯德图中得到了全面展示,该图说明了取决于入口浓度变化频率的信号衰减程度。一项重要发现是,MM可以准确再现1 s或更慢时间内发生的信号变化,这对于大型生物反应器中单个细胞所观察到的环境条件而言是典型的,而更快的变化却被消除了。相反,发现nDEP和MGC可以使10秒或更短时间内发生的信号变化趋于平稳,这对于建议的应用而言可能至关重要。

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