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基于氧化石墨烯磁性纳米复合材料的芯片酶微反应器的构建及其在农药超灵敏检测中的应用。

Construction of graphene oxide magnetic nanocomposites-based on-chip enzymatic microreactor for ultrasensitive pesticide detection.

机构信息

Department of Chemistry, Nanchang University, Nanchang 330031, China.

出版信息

J Chromatogr A. 2013 Nov 8;1315:28-35. doi: 10.1016/j.chroma.2013.09.046. Epub 2013 Sep 18.

DOI:10.1016/j.chroma.2013.09.046
PMID:24084001
Abstract

A new strategy for facile construction of graphene oxide magnetic nanocomposites (GO/Fe3O4 MNCs)-based on-chip enzymatic microreactor and ultrasensitive pesticide detection has been proposed. GO/Fe3O4 MNCs were first prepared through an in situ chemical deposition strategy. Then, acetylcholinesterase (AChE) was adsorbed onto the GO/Fe3O4 surface to form GO/Fe3O4/AChE MNCs which was locally packed into PDMS microchannel simply with the help of external magnetic field to form an on-chip enzymatic microreactor. The constructed GO/Fe3O4/AChE MNCs-based enzymatic microreactor not only have the magnetism of Fe3O4 NPs that make them conveniently manipulated by an external magnetic field, but also have the larger surface and excellent biocompatibility of graphene which can incorporate much more AChE molecules and well maintain their biological activity. On the basis of the AChE inhibition principle, a novel on-chip enzymatic microreactor was constructed for analyzing dimethoate which is usually used as a model of organophosphorus pesticides. Under optimal conditions, a linear relationship between the inhibition rates of AChE and the concentration of dimethoate from 1 to 20 μgL(-1) with a detection limit of 0.18 μgL(-1) (S/N=3) was obtained. The developed electrophoretic and magnetic-based chip exhibited excellent reproducibility and stability with no decrease in the activity of enzyme for more than 20 repeated measurements over one week period, which provided a new and promising tool for the analysis of enzyme inhibitors with low cost and excellent performance.

摘要

提出了一种基于芯片的酶微反应器的新策略,用于简便构建氧化石墨烯磁性纳米复合材料(GO/Fe3O4 MNCs),并用于超灵敏农药检测。首先通过原位化学沉积策略制备 GO/Fe3O4 MNCs。然后,将乙酰胆碱酯酶(AChE)吸附到 GO/Fe3O4 表面上,形成 GO/Fe3O4/AChE MNCs,借助外部磁场简单地将其局部包装到 PDMS 微通道中,形成芯片上的酶微反应器。构建的 GO/Fe3O4/AChE MNCs 基酶微反应器不仅具有 Fe3O4 NPs 的磁性,使其可以通过外部磁场方便地操作,而且具有更大的表面积和优异的生物相容性的石墨烯,可以结合更多的 AChE 分子,并很好地保持其生物活性。基于 AChE 抑制原理,构建了一种新型的芯片上酶微反应器,用于分析通常用作有机磷农药模型的乐果。在最佳条件下,AChE 的抑制率与乐果浓度之间呈现出 1 到 20 μgL(-1) 的线性关系,检测限为 0.18 μgL(-1)(S/N=3)。所开发的基于电泳和磁场的芯片具有出色的重现性和稳定性,在一周的时间内,超过 20 次重复测量后,酶的活性没有下降,为低成本和高性能的酶抑制剂分析提供了一种新的有前途的工具。

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