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被动驱动微流控装置,操作简单,可用于核酸检测中纳升级液滴分析的开发。

Passively driven microfluidic device with simple operation in the development of nanolitre droplet assay in nucleic acid detection.

机构信息

Institute of Biomedical Engineering, College of Electrical and Computer Engineering, National Yang Ming Chiao Tung University, 1001 Ta-Hseh Rd., Hsinchu, Taiwan.

Department of Electrical and Computer Engineering, College of Electrical and Computer Engineering, National Yang Ming Chiao Tung University, Hsinchu, Taiwan.

出版信息

Sci Rep. 2021 Oct 25;11(1):21019. doi: 10.1038/s41598-021-00470-9.

Abstract

Since nucleic acid amplification technology has become a vital tool for disease diagnosis, the development of precise applied nucleic acid detection technologies in point-of care testing (POCT) has become more significant. The microfluidic-based nucleic acid detection platform offers a great opportunity for on-site diagnosis efficiency, and the system is aimed at user-friendly access. Herein, we demonstrate a microfluidic system with simple operation that provides reliable nucleic acid results from 18 uniform droplets via LAMP detection. By using only micropipette regulation, users are able to control the nanoliter scale of the droplets in this valve-free and pump-free microfluidic (MF) chip. Based on the oil enclosure method and impermeable fabrication, we successfully preserved the reagent inside the microfluidic system, which significantly reduced the fluid loss and condensation. The relative standard deviation (RSD) of the fluorescence intensity between the droplets and during the heating process was < 5% and 2.0%, respectively. Additionally, for different nucleic acid detection methods, the MF-LAMP chip in this study showed good applicability to both genome detection and gene expression analysis.

摘要

由于核酸扩增技术已成为疾病诊断的重要工具,因此在即时检测(POCT)中开发精确的应用核酸检测技术变得更为重要。基于微流控的核酸检测平台为现场诊断效率提供了绝佳机会,该系统旨在实现用户友好的访问。在此,我们展示了一种具有简单操作的微流控系统,通过 LAMP 检测可从 18 个均匀的液滴中提供可靠的核酸结果。仅通过微量移液器调节,用户即可控制该无阀和无泵微流控(MF)芯片中纳升级别的液滴。基于密封方法和不渗透的制造工艺,我们成功地将试剂保留在微流控系统内部,这显著减少了流体损失和冷凝。液滴之间以及加热过程中荧光强度的相对标准偏差(RSD)分别小于 5%和 2.0%。此外,对于不同的核酸检测方法,本研究中的 MF-LAMP 芯片对于基因组检测和基因表达分析均具有良好的适用性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5e6d/8549005/a2d22b6fd1fa/41598_2021_470_Fig1_HTML.jpg

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