Jeon Jinhyeok, Choi Namhyun, Chen Hao, Moon Joung-Il, Chen Lingxin, Choo Jaebum
Department of Bionano Technology, Hanyang University, Ansan 15588, South Korea.
Lab Chip. 2019 Feb 12;19(4):674-681. doi: 10.1039/c8lc01180j.
In the last two decades, microfluidic technology has emerged as a highly efficient tool for the study of various chemical and biological reactions. Recently, we reported that high-throughput detection of various concentrations of a reagent is possible using a continuous gradient microfluidic channel combined with a surface-enhanced Raman scattering (SERS) detection platform. In this continuous flow regime, however, the deposition of nanoparticle aggregates on channel surfaces induces the "memory effect," affecting both sensitivity and reproducibility. To resolve this problem, a SERS-based gradient droplet system was developed. Herein, the serial dilution of a reagent was achieved in a stepwise manner using microfluidic concentration gradient generators. Then various concentrations of a reagent generated in different channels were simultaneously trapped into the tiny volume of droplets by injecting an oil mixture into the channel. Compared to the single-phase regime, this two-phase liquid/liquid segmented flow regime allows minimization of resident time distributions of reagents through localization of reagents in encapsulated droplets. Consequently, the sample stacking problem could be solved using this system because it greatly reduces the memory effect. We believe that this SERS-based gradient droplet system will be of significant utility in simultaneously monitoring chemical and biological reactions for various concentrations of a reagent.
在过去二十年中,微流控技术已成为研究各种化学和生物反应的高效工具。最近,我们报道了使用连续梯度微流控通道结合表面增强拉曼散射(SERS)检测平台,可以对各种浓度的试剂进行高通量检测。然而,在这种连续流动状态下,纳米颗粒聚集体在通道表面的沉积会引发“记忆效应”,影响灵敏度和重现性。为了解决这个问题,开发了一种基于SERS的梯度液滴系统。在此,使用微流控浓度梯度发生器以逐步方式实现试剂的连续稀释。然后,通过将油混合物注入通道,将在不同通道中产生的各种浓度的试剂同时捕获到微小体积的液滴中。与单相状态相比,这种两相液/液分段流动状态通过将试剂定位在封装的液滴中来最小化试剂的停留时间分布。因此,使用该系统可以解决样品堆积问题,因为它大大降低了记忆效应。我们相信,这种基于SERS的梯度液滴系统在同时监测各种浓度试剂的化学和生物反应方面将具有重要用途。