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An Oxidase-Based Electrochemical Fluidic Sensor with High-Sensitivity and Low-Interference by On-Chip Oxygen Manipulation

机译:基于片上氧气操纵的高灵敏度低干扰的基于氧化酶的电化学流体传感器

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摘要

Utilizing a simple fluidic structure, we demonstrate the improved performance of oxidase-based enzymatic biosensors. Electrolysis of water is utilized to generate bubbles to manipulate the oxygen microenvironment close to the biosensor in a fluidic channel. For the proper enzyme reactions to occur, a simple mechanical procedure of manipulating bubbles was developed to maximize the oxygen level while minimizing the pH change after electrolysis. The sensors show improved sensitivities based on the oxygen dependency of enzyme reaction. In addition, this oxygen-rich operation minimizes the ratio of electrochemical interference signal by ascorbic acid during sensor operation (i.e., amperometric detection of hydrogen peroxide). Although creatinine sensors have been used as the model system in this study, this method is applicable to many other biosensors that can use oxidase enzymes (e.g., glucose, alcohol, phenol, etc.) to implement a viable component for in-line fluidic sensor systems.
机译:利用简单的流体结构,我们证明了基于氧化酶的酶生物传感器的改进性能。利用水的电解产生气泡以操纵流体通道中靠近生物传感器的氧气微环境。为了进行适当的酶反应,开发了一种简单的机械方法来操纵气泡,以使氧含量最大化,同时使电解后的pH值变化最小。基于酶反应的氧依赖性,传感器显示出更高的灵敏度。另外,这种富氧操作在传感器操作期间(即过氧化氢的安培检测)使抗坏血酸引起的电化学干扰信号的比率最小化。尽管在本研究中将肌酐传感器用作模型系统,但该方法适用于许多其他生物传感器,这些传感器可以使用氧化酶(例如葡萄糖,酒精,苯酚等)来实现在线流体传感器的可行组件系统。

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