Geissler Matthias, Clime Liviu, Hoa Xuyen D, Morton Keith J, Hébert Harold, Poncelet Lucas, Mounier Maxence, Deschênes Mylène, Gauthier Martine E, Huszczynski George, Corneau Nathalie, Blais Burton W, Veres Teodor
Life Sciences Division, National Research Council of Canada , 75 de Mortagne Boulevard, Boucherville, QC J4B 6Y4, Canada.
Ontario Laboratory Network, Canadian Food Inspection Agency , Building 22, 960 Carling Avenue, Ottawa, ON K1A 0C6, Canada.
Anal Chem. 2015 Oct 20;87(20):10565-72. doi: 10.1021/acs.analchem.5b03085. Epub 2015 Oct 7.
We describe the translation of a cloth-based hybridization array system (CHAS), a colorimetric DNA detection method that is used by food inspection laboratories for colony screening of pathogenic agents, onto a microfluidic chip format. We also introduce an articulated centrifugal platform with a novel fluid manipulation concept based on changes in the orientation of the chip with respect to the centrifugal force field to time the passage of multiple components required for the process. The platform features two movable and motorized carriers that can be reoriented on demand between 0 and 360° during stage rotation. Articulation of the chip can be used to trigger on-the-fly fluid dispensing through independently addressable siphon structures or to relocate solutions against the centrifugal force field, making them newly accessible for downstream transfer. With the microfluidic CHAS, we achieved significant reduction in the size of the cloth substrate as well as the volume of reagents and wash solutions. Both the chip design and the operational protocol were optimized to perform the entire process in a reliable, fully automated fashion. A demonstration with PCR-amplified genomic DNA confirms on-chip detection and identification of Escherichia coli O157:H7 from colony isolates in a colorimetric multiplex assay using rfbO157, fliCH7, vt1, and vt2 genes.
我们描述了一种基于布的杂交阵列系统(CHAS)向微流控芯片形式的转化,CHAS是一种比色DNA检测方法,食品检测实验室用其对病原体进行菌落筛选。我们还介绍了一种铰接式离心平台,它基于芯片相对于离心力场的方向变化,采用了新颖的流体操控概念,以控制该过程所需多种成分的通过时间。该平台具有两个可移动的电动载体,在平台旋转过程中可根据需要在0至360°之间重新定向。芯片的铰接可用于通过独立寻址的虹吸结构触发即时流体分配,或使溶液逆着离心力场重新定位,从而使它们可用于下游转移。借助微流控CHAS,我们显著减小了布基底物的尺寸以及试剂和洗涤溶液的体积。芯片设计和操作流程均经过优化,以可靠、全自动的方式执行整个过程。使用rfbO157、fliCH7、vt1和vt2基因进行的比色多重分析,对PCR扩增的基因组DNA进行的演示证实了从菌落分离物中对大肠杆菌O157:H7的芯片检测和鉴定。