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首页> 外文期刊>Chemistry: A European journal >Coupling Activity-Based Detection, Target Amplification, Colorimetric and Fluorometric Signal Amplification, for Quantitative Chemosensing of Fluoride Generated from Nerve Agents
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Coupling Activity-Based Detection, Target Amplification, Colorimetric and Fluorometric Signal Amplification, for Quantitative Chemosensing of Fluoride Generated from Nerve Agents

机译:基于活性的检测,目标放大,比色和荧光信号放大,用于从神经剂产生的氟化物的定量化学溶解

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摘要

The G-class nerve agents, which include sarin, soman, and cyclosarin, react readily with nucleophilic reagents to produce fluoride. Thus, a chemosensing protocol has been designed for these agents that pairs the nucleophilic reactivity of oximates for generating fluoride with an autoinductive target amplification reaction to amplify the quantity of fluoride for facile colorimetric and fluorescent optical quantification. The chemosensing protocol was demonstrated by using the nerve agent surrogate diisopropyl fluorophosphate (DFP) and benzaldoxime as the nucleophile. Autoinductive fluoride amplification responds to fluoride released from DFP by amplifying the fluoride concentration and a yellow reporter molecule. The reporter is a conjugated oligomer with a nominal repeating unit that originates from 4-aminobenzaldehyde. Exposure of the amplified fluoride to a fluoride-specific ratiometric fluorescent reporter provides a fluorescent readout, in which three fluorophores are generated per fluoride. Both colorimetric and fluorescent readouts enable quantitative assays with low micromolar limits of detection for fluoride resulting from DFP. More importantly, this work demonstrates the successful merging of multiple complex reactions for achieving selective, sensitive, and quantitative chemosensing.
机译:包括Sarin,Soman和环素的G级神经试剂随着亲核试剂而易于反应以产生氟化物。因此,设计了化学溶剂方案,用于这些试剂对肟酸盐的亲核反应性与自动诱导靶扩增反应对成对产生氟化物以扩增氟化物的量,以扩大荧光光学量化。通过使用神经剂替代二异丙基氟磷酸(DFP)和苯甲脱氧,作为亲核试剂来证明化学溶剂方案。通过扩增氟化物浓度和黄色报告分子,自动诱导氟化物扩增对从DFP释放的氟化物。报告者是缀合的低聚物,其标称重复单元起源于4-氨基苯甲醛。扩增氟化物暴露于氟化物特异​​性比例荧光报告器提供荧光读数,其中每种氟化物产生三种荧光团。比色和荧光读数都能使具有DFP引起的氟化物的低微能检测限值的定量测定。更重要的是,这项工作表明,用于实现选择性,敏感和定量化学溶解的多种复杂反应的成功合并。

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