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Sample pre-concentration with high enrichment factors at a fixed location in paper-based microfluidic devices

机译:在纸基微流控设备中的固定位置对样品进行高浓度富集的预浓缩

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摘要

The lack of sensitivity is a major problem among microfluidic paper-based analytical devices (mu PADs) for early disease detection and diagnosis. Accordingly, the present study presents a method for improving the enrichment factor of low-concentration biomarkers by using shallow paper-based channels realized through a double-sided wax-printing process. In addition, the enrichment factor is further enhanced by exploiting the ion concentration polarization (ICP) effect on the cathodic side of the nanoporous membrane, in which a stationary sample plug is obtained. The occurrence of ICP on the shallow-channel mu PAD is confirmed by measuring the current-voltage response as the external voltage is increased from 0 to 210 V (or the field strength from 0 to 1.05 x 10(4) V m(-1)) over 600 s. In addition, to the best of our knowledge, the electroosmotic flow (EOF) speed on the mu PAD fabricated with a wax-channel is measured for the first time using a current monitoring method. The experimental results show that for a fluorescein sample, the concentration factor is increased from 130-fold in a conventional full-thickness paper channel to 944-fold in the proposed shallow channel. Furthermore, for a fluorescein isothiocyanate-labeled bovine serum albumin (FITC-BSA) sample, the proposed shallow-channel mu PAD achieves an 835-fold improvement in the concentration factor. The concentration technique presented here provides a novel strategy for enhancing the detection sensitivity of mu PAD applications.
机译:敏感性的缺乏是用于早期疾病检测和诊断的基于微流体纸质分析设备(mu PAD)的主要问题。因此,本研究提出了一种通过使用通过双面蜡印刷工艺实现的浅纸基通道来改善低浓度生物标志物的富集因子的方法。此外,通过利用纳米多孔膜阴极侧的离子浓度极化(ICP)效应进一步提高了富集因子,其中获得了固定的样品塞。通过在外部电压从0增大到210 V时(或场强从0增大到1.05 x 10(4)V m(-1)时测量电流-电压响应来确认ICP在浅通道mu PAD上的出现))600秒以上。此外,据我们所知,使用电流监测方法首次测量了用蜡通道制造的mu PAD上的电渗流(EOF)速度。实验结果表明,对于荧光素样品,浓度因子从常规全厚度纸质通道的130倍增加到建议的浅通道的944倍。此外,对于荧光素异硫氰酸酯标记的牛血清白蛋白(FITC-BSA)样品,拟议的浅通道mu PAD的浓缩系数提高了835倍。这里介绍的浓缩技术提供了一种增强mu PAD应用检测灵敏度的新颖策略。

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