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Monitoring and Controlling Oxygen Levels in Microfluidic Devices

机译:监测和控制微流体装置中的氧气水平

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Mammalian cell culture has been traditionally performed in a static oxygen concentration of 21 mol %. However, oxygen level in vivo is significantly more hypoxic with an average oxygen concentration of 3 mol % to 5 mol %. In addition, many cells within the body experience dynamic oxygen levels. Such differences in oxygen tension have been shown to affect cell behavior, and controlling and monitoring oxygen level is crucial in creating biomimetic cell culture conditions. Previously, we have developed a luminescence-based oxygen sensor capable of monitoring cellular oxygen consumption rates in a multi-well plate format that is compatible with conventional cell microscopy techniques (e.g. phase contrast and fluorescence imaging). In the current study, we demonstrate successful integration of this oxygen sensor into a multi-layer microfluidic cell culture device. The oxygen sensor provides a facile method for continuous monitoring of on-chip oxygen levels. Polydimethyl-siloxane (PDMS) based microfluidic cell culture devices are permeable to oxygen, allowing physiologically relevant oxygen environments to be generated. Control channels are incorporated to enable on-chip control of dissolved oxygen tension. Finite element simulations and experimental measurements are in excellent agreement in monitoring oxygen diffusion through the PDMS to generate stable oxygen gradients and rapidly changing conditions on-chip. Further, on-chip calibration matches sensitivities measured outside of the microfludic environment. Cells will be monitored during culture in this microfluidic system under physiologically relevant oxygen environments.
机译:哺乳动物细胞培养物传统上以21摩尔%的静态氧浓度进行。然而,体内的氧气水平明显更缺氧,平均氧浓度为3摩尔%至5mol%。此外,身体内的许多细胞体验动态氧气水平。已经显示出这种氧气张力差异影响细胞行为,控制和监测氧水平对于产生生物摩擦细胞培养条件至关重要。以前,我们开发了一种基于发光的氧传感器,其能够以与常规细胞显微镜技术相容的多孔板形式监测细胞氧气消耗率(例如相位对比度和荧光成像)。在目前的研究中,我们证明了将该氧气传感器的成功集成到多层微流体细胞培养装置中。氧传感器提供了一种用于连续监测片上氧水平的容易方法。基于聚二甲基 - 硅氧烷(PDMS)的微流体细胞培养装置对氧可渗透,允许产生生理上相关的氧环境。掺入控制通道,以实现对溶解氧张力的片上控制。有限元模拟和实验测量在监测通过PDMS的氧气扩散方面具有很好的一致性,以产生稳定的氧梯度和芯片上快速变化的条件。此外,片上校准与微氟环境外部测量的敏感性匹配。在生理相关的氧环境下该微流体系统中的培养过程中将监测细胞。

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