Lee Sangjun, Park Sungmin, Kim Wonseok, Moon Suhong, Kim Ho-Young, Lee Hyomin, Kim Sung Jae
Department of Electrical and Computer Engineering, Seoul National University, Seoul 08826, South Korea.
Department of Chemical and Biological Engineering, Jeju National University, Jeju 63243, South Korea.
Biomicrofluidics. 2019 May 30;13(3):034113. doi: 10.1063/1.5092789. eCollection 2019 May.
Among various preconcentration strategies using nanofluidic platforms, a nanoscale electrokinetic phenomenon called ion concentration polarization (ICP) has been extensively utilized due to several advantages such as high preconcentration factor and no need of complex buffer exchange process. However, conventional ICP preconcentrator had difficulties in the recovery of preconcentrated sample and complicated buffer channels. To overcome these, bufferchannel-less radial micro/nanofluidic preconcentrator was developed in this work. Radially arranged microchannel can maximize the micro/nano membrane interface so that the samples were preconcentrated from each microchannel. All of preconcentrated plugs moved toward the center pipette tip and can be easily collected by just pulling out the tip installed at the center reservoir. For a simple and cost-effective fabrication, a commercial printer was used to print the nanoporous membrane as "Nafion-junction device." Various analytes such as polystyrene particle, fluorescent dye, and dsDNA were preconcentrated and extracted with the recovery ratio of 85.5%, 79.0%, and 51.3%, respectively. Furthermore, we used a super inkjet printer to print the silver electrode instead of nanoporous membrane to preconcentrate either type of charged analytes as "printed-electrode device." A Faradaic reaction was used as the main mechanism, and we successfully demonstrated the preconcentration of either negatively or positively charged analytes. The presented bufferchannel-less radial preconcentrator would be utilized as a practical and handy platform for analyzing low-abundant molecules.
在使用纳米流体平台的各种预浓缩策略中,一种称为离子浓度极化(ICP)的纳米级电动现象因其具有高预浓缩因子和无需复杂缓冲液交换过程等优点而被广泛应用。然而,传统的ICP预浓缩器在回收预浓缩样品和构建复杂的缓冲通道方面存在困难。为了克服这些问题,本文开发了一种无缓冲通道的径向微纳流体预浓缩器。径向排列的微通道可以使微纳膜界面最大化,从而使样品从每个微通道中得到预浓缩。所有预浓缩的塞子都向中心移液管尖端移动,只需拔出安装在中心储液器处的尖端就可以轻松收集。为了实现简单且经济高效的制造,使用商用打印机将纳米多孔膜打印成“Nafion结装置”。对聚苯乙烯颗粒、荧光染料和双链DNA等多种分析物进行了预浓缩和提取,回收率分别为85.5%、79.0%和51.3%。此外,我们使用超级喷墨打印机打印银电极而非纳米多孔膜,以此作为“印刷电极装置”对任何一种带电分析物进行预浓缩。以法拉第反应作为主要机制,我们成功地展示了对带负电或带正电分析物的预浓缩。所提出的无缓冲通道径向预浓缩器将作为分析低丰度分子的实用且便捷的平台。