莱茵衣藻
杀虫剂
微流控
藻类
荧光
衣原体
自来水
环境化学
化学
光合作用
极限氧浓度
氧气
纳米技术
材料科学
环境科学
环境工程
植物
生物
生态学
有机化学
突变体
物理
基因
量子力学
生物化学
作者
Islam Bogachan Tahirbegi,Josef Ehgartner,Philipp Sulzer,Silvia E. Zieger,Alice Kasjanow,Mirco Paradiso,Martin Štrobl,Dominique Bouwes,Torsten Mayr
标识
DOI:10.1016/j.bios.2016.08.014
摘要
The necessities of developing fast, portable, cheap and easy to handle pesticide detection platforms are getting attention of scientific and industrial communities. Although there are some approaches to develop microchip based pesticide detection platforms, there is no compact microfluidic device for the complementary, fast, cheap, reusable and reliable analysis of different pesticides. In this work, a microfluidic device is developed for in-situ analysis of pesticide concentration detected via metabolism/photosynthesis of Chlamydomonas reinhardtii algal cells (algae) in tap water. Algae are grown in glass based microfluidic chip, which contains integrated optical pH and oxygen sensors in a portable system for on-site detection. In addition, intrinsic algal fluorescence is detected to analyze the pesticide concentration in parallel to pH and oxygen sensors with integrated fluorescence detectors. The response of the algae under the effect of different concentrations of pesticides is evaluated and complementary inhibition effects depending on the pesticide concentration are demonstrated. The three different sensors allow the determination of various pesticide concentrations in the nanomolar concentration range. The miniaturized system provides the fast quantification of pesticides in less than 10 min and enables the study of toxic effects of different pesticides on Chlamydomonas reinhardtii green algae. Consequently, the microfluidic device described here provides fast and complementary detection of different pesticides with algae in a novel glass based microfluidic device with integrated optical pH, oxygen sensors and algal fluorescence.
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