Bundesanstalt für Materialforschung und -prüfung (BAM), Richard-Willstätter-Str. 11, D-12489 Berlin, Germany.
Bundesanstalt für Materialforschung und -prüfung (BAM), Richard-Willstätter-Str. 11, D-12489 Berlin, Germany.
Biosens Bioelectron. 2018 Jan 15;99:244-250. doi: 10.1016/j.bios.2017.07.053. Epub 2017 Jul 22.
Fluorescent sensory MIP (molecularly imprinted polymer) particles were combined with a droplet-based 3D microfluidic system for the selective determination of a prototype small-molecule analyte of environmental concern, 2,4-dichlorophenoxyacetic acid or 2,4-D, at nanomolar concentration directly in water samples. A tailor-made fluorescent indicator cross-linker was thus designed that translates the binding event directly into an enhanced fluorescence signal. The phenoxazinone-type cross-linker was co-polymerized into a thin MIP layer grafted from the surface of silica microparticles following a RAFT (reversible addition-fragmentation chain transfer) polymerization protocol. While the indicator cross-linker outperformed its corresponding monomer twin, establishment of a phase-transfer protocol was essential to guarantee that the hydrogen bond-mediated signalling mechanism between the urea binding site on the indicator cross-linker and the carboxylate group of the analyte was still operative upon real sample analysis. The latter was achieved by integration of the fluorescent core-shell MIP sensor particles into a modular microfluidic platform that allows for an in-line phase-transfer assay, extracting the analyte from aqueous sample droplets into the organic phase that contains the sensor particles. Real-time fluorescence determination of 2,4-D down to 20nM was realized with the system and applied for the analysis of various surface water samples collected from different parts of the world.
荧光感应分子印迹聚合物(MIP)颗粒与基于液滴的 3D 微流控系统相结合,用于选择性测定环境关注的原型小分子分析物 2,4-二氯苯氧乙酸或 2,4-D,直接在纳米摩尔浓度的水样中进行。因此,设计了一种定制的荧光指示剂交联剂,可将结合事件直接转化为增强的荧光信号。该吩恶嗪酮型交联剂通过 RAFT(可逆加成-断裂链转移)聚合协议共聚到接枝在硅胶微球表面的薄 MIP 层中。虽然指示剂交联剂优于其相应的单体,但建立相转移协议对于保证氢键介导的指示剂交联剂上的脲结合位点与分析物的羧基之间的信号机制在实际样品分析中仍然有效是至关重要的。后者通过将荧光核壳 MIP 传感器颗粒集成到模块化微流控平台中实现,该平台允许进行在线相转移测定,将分析物从水样液滴中提取到含有传感器颗粒的有机相中。该系统可实时测定 2,4-D 低至 20nM,并应用于分析来自世界各地不同地区的各种地表水样品。