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将 3D 打印的镁离子电位传感器集成到微流控装置中用于生物分析。

Integration of 3D printed Mg potentiometric sensors into microfluidic devices for bioanalysis.

机构信息

Department of Chemistry, Washington State University, Pullman, Washington, 99164, USA.

Pharmaceutical Analytical Chemistry Department, Faculty of Pharmacy, The British University in Egypt, El-Sherouk City, 11837, Egypt.

出版信息

Lab Chip. 2024 Aug 20;24(17):4096-4104. doi: 10.1039/d4lc00407h.

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 Mg potentiometric sensor into a 3D printed microfluidic device for the quantification of Mg 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 Mg in sweat, saliva and urine. The 3D printed Mg ion-selective electrode (3Dp-Mg-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 Mg in biofluids. 3Dp-Mg-ISEs selectively measure Mg 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 over 10 hours. Comparison with poly(vinylchloride)-based Mg-ISEs showed distinct advantages to the use of 3Dp-Mg-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 (, low sample volumes, minimal reagent consumption, automation of multiple assays, ), provides exciting opportunities for the realization of the next-generation of point-of-care diagnostic devices.

摘要

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各种重要生物物种提供了一种经济实惠且可靠的方法。电化学传感器的小型化能力,加上其价格合理且信号读出所需的设备简单,使得这些传感器能够在即时护理点使用,在即时护理点,使用非侵入性获得的生物流体进行分析越来越受到研究界的关注。本文介绍了一种 3D 打印镁离子电位传感器的设计、制造和集成,该传感器集成到 3D 打印微流控装置中,用于对低体积生物流体中的镁进行定量分析。该传感器采用功能化的 3D 可打印光固化甲基丙烯酸酯基离子选择性膜,固定在碳网格/环氧树脂固体接触传感器上,用于选择性测定汗液、唾液和尿液中的镁。3D 打印镁离子选择性电极(3Dp-Mg-ISE)提供了 27.5 mV 每 decade 的 Nernst 响应,线性范围为 10 mM 至 39 μM,涵盖了生物流体中镁的正常生理和临床相关水平。3Dp-Mg-ISE 选择性地测量镁,而不是其他生物存在的阳离子(如钠、钾、钙、铵),并且在分析信号中具有高稳定性,在 10 小时内漂移仅为 13 μV h。与基于聚氯乙烯的镁离子传感器相比,3Dp-Mg-ISE 具有明显的优势,稳定性更高,抗生物污垢能力更强,并且非常重要的是,它为选择性和可靠传感器的大规模生产提供了一种简化和快速的方法。3D 打印的小型化能力结合微流分析的优势(如,小样品体积、最小试剂消耗、多个分析的自动化),为实现下一代即时护理诊断设备提供了令人兴奋的机会。

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