CNRS, LAAS, 7 avenue du colonel Roche, F-31400 Toulouse, France; Université de Toulouse, UPS, LAAS, F-31400 Toulouse, France.
Université du Québec à Montréal, 201 Président Kennedy, Montréal, Canada.
Biosens Bioelectron. 2016 May 15;79:568-73. doi: 10.1016/j.bios.2015.12.050. Epub 2015 Dec 19.
The present work was dedicated to the development of a lab-on-chip device for water toxicity analysis and more particularly herbicide detection in water. It consists in a portable system for on-site detection composed of three-electrode electrochemical microcells, integrated on a fluidic platform constructed on a glass substrate. The final goal is to yield a system that gives the possibility of conducting double, complementary detection: electrochemical and optical and therefore all materials used for the fabrication of the lab-on-chip platform were selected in order to obtain a device compatible with optical technology. The basic detection principle consisted in electrochemically monitoring disturbances in metabolic photosynthetic activities of algae induced by the presence of Diuron herbicide. Algal response, evaluated through oxygen (O2) monitoring through photosynthesis was different for each herbicide concentration in the examined sample. A concentration-dependent inhibition effect of the herbicide on photosynthesis was demonstrated. Herbicide detection was achieved through a range (blank - 1 µM Diuron herbicide solution) covering the limit of maximum acceptable concentration imposed by Canadian government (0.64 µM), using a halogen white light source for the stimulation of algal photosynthetic apparatus. Superior sensitivity results (limit of detection of around 0.1 µM) were obtained with an organic light emitting diode (OLED), having an emission spectrum adapted to algal absorption spectrum and assembled on the final system.
本工作致力于开发一种用于水质毒性分析,特别是水中除草剂检测的芯片实验室设备。它由三个电极电化学微电池组成,集成在一个构建在玻璃基底上的流体平台上,是一种用于现场检测的便携式系统。最终目标是开发一种能够进行双重互补检测的系统:电化学和光学,因此,用于制造芯片实验室平台的所有材料都经过选择,以获得与光学技术兼容的设备。基本检测原理是通过监测存在于 Diuron 除草剂时藻类光合作用代谢活动的干扰来电化学监测。藻类的反应通过光合作用监测氧气 (O2) 来评估,对于所检查样品中的每种除草剂浓度都不同。证明了除草剂对光合作用具有浓度依赖性抑制作用。通过使用卤钨白光光源刺激藻类光合作用装置,在涵盖加拿大政府规定的最大允许浓度(0.64 μM)的范围(空白 - 1 μM Diuron 除草剂溶液)内实现了除草剂的检测,使用卤钨白光光源刺激藻类光合作用装置。使用有机发光二极管 (OLED) 获得了更高的灵敏度结果(约 0.1 μM 的检测限),该有机发光二极管具有适合藻类吸收光谱的发射光谱,并组装在最终系统上。