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Pesticide Residues Identification by Optical Spectrum in the Time-Sequence of Enzyme Inhibitors Performed on Microfluidic Paper-Based Analytical Devices (µPADs)

机译:在微流纸基分析设备(µPAD)上通过酶抑制剂的时间序列通过光谱鉴定农药残留

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摘要

Pesticides vary in the level of poisonousness, while a conventional rapid test card only provides a general “absence or not” solution, which cannot identify the various genera of pesticides. In order to solve this problem, we proposed a seven-layer paper-based microfluidic chip, integrating the enzyme acetylcholinesterase (AChE) and chromogenic reaction. It enables on-chip pesticide identification via a reflected light intensity spectrum in time-sequence according to the different reaction efficiencies of pesticide molecules and assures the optimum temperature for enzyme activity. After pretreatment of figures of reflected light intensity during the 15 min period, the figures mainly focused on the reflected light variations aroused by the enzyme inhibition assay, and thus, the linear discriminant analysis showed satisfying discrimination of imidacloprid (Y = −1.6525X − 139.7500), phorate (Y = −3.9689X − 483.0526), and avermectin (Y = −2.3617X − 28.3082). The correlation coefficients for these linearity curves were 0.9635, 0.8093, and 0.9094, respectively, with a 95% limit of agreement. Then, the avermectin class chemicals and real-world samples (i.e., lettuce and rice) were tested, which all showed feasible graphic results to distinguish all the chemicals. Therefore, it is feasible to distinguish the three tested kinds of pesticides by the changes in the reflected light spectrum in each min (15 min) via the proposed chip with a high level of automation and integration.
机译:农药的毒性程度各不相同,而常规的快速检测卡仅提供一般的“不存在”或“不存在”的解决方案,无法识别各种农药类型。为了解决这个问题,我们提出了一种七层纸基微流控芯片,该芯片整合了乙酰胆碱酯酶(AChE)和显色反应。它可以根据农药分子的不同反应效率,通过反射光强度谱按时间顺序进行片上农药鉴定,并确保酶活性的最佳温度。在对15分钟内的反射光强度数据进行预处理之后,这些数据主要集中在酶抑制测定法引起的反射光变化上,因此,线性判别分析显示吡虫啉具有令人满意的区分度(Y = -1.6525X-139.7500 ),磷酸根(Y = −3.9689X − 483.0526)和阿维菌素(Y = −2.3617X − 28.3082)。这些线性曲线的相关系数分别为0.9635、0.8093和0.9094,一致性限制为95%。然后,对阿维菌素类化学药品和真实样品(即生菜和大米)进行了测试,所有这些都显示了可行的图形结果以区分所有化学药品。因此,通过提出的具有高度自动化和集成水平的芯片,通过每分钟(15分钟)内反射光谱的变化来区分三种被测农药是可行的。

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