A Microfluidic-based Electrochemical Biochip for Label-free DNA Hybridization Analysis

生物芯片 微流控 纳米技术 实验室晶片 介电谱 小型化 聚二甲基硅氧烷 材料科学 制作 炸薯条 电极 电化学 计算机科学 化学 医学 替代医学 物理化学 病理 电信
作者
Hadar Ben‐Yoav,Peter H. Dykstra,Tanya Gordonov,William E. Bentley,Reza Ghodssi
出处
期刊:Journal of Visualized Experiments [MyJOVE]
卷期号: (91) 被引量:3
标识
DOI:10.3791/51797
摘要

Miniaturization of analytical benchtop procedures into the micro-scale provides significant advantages in regards to reaction time, cost, and integration of pre-processing steps. Utilizing these devices towards the analysis of DNA hybridization events is important because it offers a technology for real time assessment of biomarkers at the point-of-care for various diseases. However, when the device footprint decreases the dominance of various physical phenomena increases. These phenomena influence the fabrication precision and operation reliability of the device. Therefore, there is a great need to accurately fabricate and operate these devices in a reproducible manner in order to improve the overall performance. Here, we describe the protocols and the methods used for the fabrication and the operation of a microfluidic-based electrochemical biochip for accurate analysis of DNA hybridization events. The biochip is composed of two parts: a microfluidic chip with three parallel micro-channels made of polydimethylsiloxane (PDMS), and a 3 x 3 arrayed electrochemical micro-chip. The DNA hybridization events are detected using electrochemical impedance spectroscopy (EIS) analysis. The EIS analysis enables monitoring variations of the properties of the electrochemical system that are dominant at these length scales. With the ability to monitor changes of both charge transfer and diffusional resistance with the biosensor, we demonstrate the selectivity to complementary ssDNA targets, a calculated detection limit of 3.8 nM, and a 13% cross-reactivity with other non-complementary ssDNA following 20 min of incubation. This methodology can improve the performance of miniaturized devices by elucidating on the behavior of diffusion at the micro-scale regime and by enabling the study of DNA hybridization events.
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