On-chip measurement of pH using a microcantilever: a biomimetic design approach

Alireza Tajeddin, N. Mustafaoglu, M. Yapici
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引用次数: 1

Abstract

In vitro organ models used for drug discovery and delivery must recapitulate actual physiological parameters, including pH, for more reliable results. Monitoring pH is both important and challenging in many processes. At the scale of physiological environments of microfluidic organ chip models, additional fluctuations in pH can lead to organ dysfunction and there are natural mechanisms to control this. In this work, a microfluidic pH sensor-embedded chip was designed to monitor pH that can be connected to the main organ-on-chip culture. The mechanism consists of separation and sensing with a buffer system that is also found in the cell cytoplasm, so it is a biomimetic approach. The deflection of the pH-sensing cantilever was improved by applying finite element methods to obtain better sensitivity and wider detection range for different concentrations of hydrogen ions in the buffer reaction chamber.
用微悬臂测量芯片上的pH值:一种仿生设计方法
用于药物发现和输送的体外器官模型必须重现实际的生理参数,包括pH值,以获得更可靠的结果。在许多过程中监测pH值既重要又具有挑战性。在微流控器官芯片模型的生理环境尺度上,pH值的额外波动会导致器官功能障碍,并且存在自然机制来控制这一点。在这项工作中,设计了一个微流体pH传感器嵌入式芯片来监测pH值,可以连接到主要的器官芯片培养。该机制包括分离和感应,缓冲系统也存在于细胞质中,因此是一种仿生方法。采用有限元方法改进了ph传感悬臂梁的挠度,对缓冲反应室中不同浓度的氢离子具有更好的灵敏度和更宽的检测范围。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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