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Spatially Resolved Measurement of Dissolved Oxygen in Multistream Microfluidic Devices

机译:多流微流控设备中溶解氧的空间分辨测量

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摘要

Dissolved oxygen (DO) is an important parameter with significant effect on cellular development and function. Micron-scale laminar flow and hydrodynamic focusing provide ideal tools for the generation of controlled chemical micro-environments and their application as stimuli to cells. In this paper, we demonstrate the generation and characterization of multistream laminar flow and hydrodynamically focused sample streams with defined dissolved oxygen concentrations on chip. A solid-state oxygen sensor layer was integrated into PDMS-based microchannels and calibrated. Several combinations of sample and buffer streams with concentrations ranging from 0 to 34 mg/l DO were generated and measured for up to three independent parallel flow streams. In addition, diffusion-based stream broadening measured with the sensor was used to determine the coefficient of diffusion of ${hbox{O}} _{2}$ in the flow medium. The devices have the potential to provide novel insights into cell biology and improve the relevance of in vitro cell assays.
机译:溶解氧(DO)是重要的参数,对细胞的发育和功能有重大影响。微米级的层流和流体动力聚焦为产生受控化学微环境并将其作为对细胞的刺激应用提供了理想的工具。在本文中,我们演示了芯片上定义了溶解氧浓度的多流层流和流体动力聚焦样品流的产生和表征。将固态氧传感器层集成到基于PDMS的微通道中并进行校准。生成了浓度范围为0至34 mg / l DO的样品流和缓冲流的几种组合,并测量了多达三个独立的平行流。另外,用传感器测量的基于扩散的流变宽被用于确定$ {hbox {O}} _ {2} $在流动介质中的扩散系数。该设备有可能为细胞生物学提供新颖的见解,并提高体外细胞测定的相关性。

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