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酶嵌入微流控装置,用于水包气微滴中葡萄糖的原位检测。

Enzyme incorporated microfluidic device for in-situ glucose detection in water-in-air microdroplets.

机构信息

Key Laboratory of Groundwater Resources and Environment, Ministry of Education, Jilin University, Changchun 130021, China.

Department of Chemical and Biomolecular Engineering (BK21 PLUS Program), Korea Advanced Institute of Science and Technology (KAIST), 291 Daehak-ro, Yuseong-gu, Daejeon 305-701, Republic of Korea.

出版信息

Biosens Bioelectron. 2015 Mar 15;65:220-5. doi: 10.1016/j.bios.2014.10.032. Epub 2014 Oct 18.

Abstract

Droplet generating microfluidic systems can provide miniaturized bioanalytical tools by using the homogenous and high-throughput droplets as nanoreactors. In this study, we demonstrated a sensitive and in-situ glucose monitoring system using water-in-air droplets in an enzyme incorporated microfluidic device. A thin film structure of a glucose oxidase (GOx) enzyme immobilized hydrogel was constructed in the middle of the microfluidic channel, and nanoliter scaled water-in-air droplets which contain a glucose sample, horseradish peroxidase (HRP), and an Amplex Red substrate were generated by flow focusing of water phase with air. Once the droplets passed through the enzyme trapped hydrogel, the droplets temporarily halted and a GOx mediated catalytic reaction with glucose proceeded, resulting in producing fluorescent resorufin products in the droplets. With optimized conditions such as the thickness of a hydrogel film and the size and flowing rate of droplets, fluorescence intensities of the released droplets linearly increased in proportional to the glucose concentration up to 3mM, and the limit of detection was calculated as 6.64µM. A spiked glucose in a real urine sample was also successfully analyzed, and the functionality of the proposed enzyme immobilized microfluidic chip was maintained for at least two weeks without loss of enzymatic activity and detection sensitivity. Thus, our methodology suggests a novel droplet based glucose sensing chip which can monitor glucose in a real-time and high-throughput manner.

摘要

液滴生成微流控系统可以通过使用均质和高通量的液滴作为纳米反应器,提供微型化的生物分析工具。在这项研究中,我们在酶掺入微流控装置中使用气-水乳液滴展示了一种灵敏的原位葡萄糖监测系统。在微流道的中间构建了一层葡萄糖氧化酶(GOx)酶固定化水凝胶的薄膜结构,通过水相与空气的流聚焦生成纳升级的气-水乳液滴,乳液滴中含有葡萄糖样品、辣根过氧化物酶(HRP)和 Amplex Red 底物。一旦乳液滴穿过酶捕获水凝胶,乳液滴暂时停止,GOx 介导的与葡萄糖的催化反应进行,导致乳液滴中产生荧光 Resorufin 产物。在优化的条件下,如水凝胶膜的厚度、乳液滴的大小和流速,释放乳液滴的荧光强度与葡萄糖浓度呈线性增加,最高可达 3mM,检测限计算为 6.64µM。在实际尿液样本中的添加葡萄糖也得到了成功分析,并且所提出的酶固定化微流控芯片的功能至少保持两周,没有酶活性和检测灵敏度的损失。因此,我们的方法提出了一种新颖的基于液滴的葡萄糖传感芯片,可以实时、高通量地监测葡萄糖。

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