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用于非侵入性生物流体表征的温度依赖性微流控阻抗光谱技术。

Temperature-dependent microfluidic impedance spectroscopy for non-invasive biofluid characterization.

作者信息

Wade Tom, Kar-Narayan Sohini

机构信息

Department of Materials Science and Metallurgy, University of Cambridge, 27 Charles Babbage Road, Cambridge CB3 0FS, United Kingdom.

出版信息

Biomicrofluidics. 2025 May 1;19(3):034101. doi: 10.1063/5.0255847. eCollection 2025 May.

Abstract

Remote health monitoring has the potential to enable individuals to take control of their own health and well-being and to facilitate a transition toward preventative and personalized healthcare. Sweat can be sampled non-invasively and contains a wealth of information about the metabolic state of an individual, making it an excellent candidate for remote health monitoring. An accurate, rapid, and low-cost biofluid characterization technique is required to enable the widespread use of remote health monitoring. We previously introduced microfluidic impedance spectroscopy for the detection of electrolyte concentration in fluids, whereby a novel device architecture, measurement method, and analysis technique were presented for the characterization of cationic species. The purely electrical nature of this measurement technique removes the intermediate steps inherent in common rival technologies such as optical and electrochemical sensing, offering a range of advantages. In this work, we investigate the effect of temperature on microfluidic impedance spectroscopy of ionic species commonly present in biofluids. We find that the impedance spectra and concentration determination are temperature-dependent; remote health monitoring devices must be calibrated appropriately as they are likely to experience temperature fluctuations. Importantly, we demonstrate the ability of the method to measure the concentration of anionic species alongside that of cationic species, enabling the detection of chloride and lactate, which are useful biomarkers for hydration, cystic fibrosis, fatigue, sepsis, and hypoperfusion. We show that the presence of neutral species does not impair accurate determination of ionic concentration, thus, demonstrating the suitability of microfluidic impedance spectroscopy for non-invasive biofluid characterization.

摘要

远程健康监测有潜力使个人能够掌控自己的健康和幸福,并促进向预防性和个性化医疗保健的转变。汗液可以通过非侵入性方式采集,并且包含有关个体代谢状态的丰富信息,使其成为远程健康监测的理想选择。需要一种准确、快速且低成本的生物流体表征技术,以实现远程健康监测的广泛应用。我们之前介绍了用于检测流体中电解质浓度的微流控阻抗谱,其中提出了一种新颖的设备架构、测量方法和分析技术,用于阳离子物种的表征。这种测量技术的纯电学性质消除了诸如光学和电化学传感等常见竞争技术中固有的中间步骤,具有一系列优势。在这项工作中,我们研究了温度对生物流体中常见离子物种的微流控阻抗谱的影响。我们发现阻抗谱和浓度测定与温度有关;远程健康监测设备可能会经历温度波动,因此必须进行适当校准。重要的是,我们证明了该方法能够同时测量阴离子物种和阳离子物种的浓度,从而能够检测氯化物和乳酸,它们是用于水合作用、囊性纤维化、疲劳、败血症和灌注不足的有用生物标志物。我们表明中性物种的存在不会影响离子浓度的准确测定,因此证明了微流控阻抗谱适用于非侵入性生物流体表征。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2576/12048175/9cf7a80ca056/BIOMGB-000019-034101_1-g001.jpg

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