Integration of 3D printed Mg2+ potentiometric sensors into microfluidic devices for bioanalysis†

IF 6.1 2区 工程技术 Q1 BIOCHEMICAL RESEARCH METHODS Lab on a Chip Pub Date : 2024-07-26 DOI:10.1039/D4LC00407H
Sarah Farahani, Dalton L. Glasco, Manar M. Elhassan, Pedaballi Sireesha and Jeffrey G. Bell
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Abstract

Electrochemical sensors provide an affordable and reliable approach towards the detection and monitoring of important biological species ranging from simple ions to complex biomolecules. The ability to miniaturize electrochemical sensors, coupled with their affordability and simple equipment requirements for signal readout, permits the use of these sensors at the point-of-care where analysis using non-invasively obtainable biofluids is receiving growing interest by the research community. This paper describes the design, fabrication, and integration of a 3D printed Mg2+ potentiometric sensor into a 3D printed microfluidic device for the quantification of Mg2+ in low-sample volume biological fluids. The sensor employs a functionalized 3D printable photocurable methacrylate-based ion-selective membrane affixed to a carbon-mesh/epoxy solid-contact transducer for the selective determination of Mg2+ in sweat, saliva and urine. The 3D printed Mg2+ ion-selective electrode (3Dp-Mg2+-ISE) provided a Nernstian response of 27.5 mV per decade with a linear range of 10 mM to 39 μM, covering the normal physiological and clinically relevant levels of Mg2+ in biofluids. 3Dp-Mg2+-ISEs selectively measure Mg2+ over other biologically present cations – sodium, potassium, calcium, ammonium – as well as provide high stability in the analytical signal with a drift of just 13 μV h−1 over 10 hours. Comparison with poly(vinylchloride)-based Mg2+-ISEs showed distinct advantages to the use of 3Dp-Mg2+-ISEs, with respect to stability, resilience towards biofouling and importantly providing a streamlined and rapid approach towards mass production of selective and reliable sensors. The miniaturization capabilities of 3D printing coupled with the benefits of microfluidic analysis (i.e., low sample volumes, minimal reagent consumption, automation of multiple assays, etc.), provides exciting opportunities for the realization of the next-generation of point-of-care diagnostic devices.

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将 3D 打印 Mg2+ 电位传感器集成到微流控设备中用于生物分析
电化学传感器为检测和监测从简单离子到复杂生物分子等重要生物物种提供了一种经济可靠的方法。电化学传感器的微型化能力,加上其经济性和信号读取的简单设备要求,使得这些传感器可以在医疗点使用,在医疗点使用无创生物流体进行分析正受到研究界越来越多的关注。本文介绍了一种三维打印 Mg2+ 电位传感器的设计、制造以及与三维打印微流控装置的集成,用于定量检测低样品量生物液体中的 Mg2+。该传感器采用了功能化的可打印三维光固化甲基丙烯酸酯基离子选择膜,并与碳网/环氧树脂固体接触传感器相连,用于选择性测定汗液、唾液和尿液中的 Mg2+。三维打印的 Mg2+ 离子选择电极(3Dp-Mg2+-ISE)提供了 27.5 mV/decade 的 Nernstian 响应,线性范围为 10 mM 至 39 μM,涵盖了生物液体中 Mg2+ 的正常生理和临床相关水平。3Dp-Mg2+-ISEs 可选择性地测量 Mg2+,而非生物中存在的其他阳离子(钠、钾、钙、铵),而且分析信号稳定性高,10 小时内漂移仅为 13 μV/hr。与基于聚(氯乙烯)的 Mg2+-ISEs 相比,3Dp-Mg2+-ISEs 在稳定性、抗生物污染方面具有明显优势,更重要的是,它为大规模生产选择性可靠的传感器提供了一种简化、快速的方法。三维打印的微型化能力加上微流体分析的优势(即样品量小、试剂消耗量少、多种检测自动化等),为实现下一代护理点诊断设备提供了令人兴奋的机遇。
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来源期刊
Lab on a Chip
Lab on a Chip 工程技术-化学综合
CiteScore
11.10
自引率
8.20%
发文量
434
审稿时长
2.6 months
期刊介绍: Lab on a Chip is the premiere journal that publishes cutting-edge research in the field of miniaturization. By their very nature, microfluidic/nanofluidic/miniaturized systems are at the intersection of disciplines, spanning fundamental research to high-end application, which is reflected by the broad readership of the journal. Lab on a Chip publishes two types of papers on original research: full-length research papers and communications. Papers should demonstrate innovations, which can come from technical advancements or applications addressing pressing needs in globally important areas. The journal also publishes Comments, Reviews, and Perspectives.
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