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A graphene oxide amplification platform tagged with tyrosinase-zinc oxide quantum dot hybrids for the electrochemical sensing of hydroxylated polychlorobiphenyls

机译:标记有酪氨酸酶-氧化锌量子点杂化体的氧化石墨烯扩增平台,用于电化学检测羟基化的多氯联苯

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摘要

Graphene oxide can act as an amplification platform for the immobilization of a hybrid structure composed of tyrosinase (Tyr) and zinc oxide quantum dots (ZnO QDs). This article describes how this platform increases the sensitivity for the detection of hydroxylated polychlorobiphenyls (OH-PCBs).The adsorption of Tyr (with low isoelectric point) on the positively charged surface of ZnO QDs is based on electrostatic interactions. The scanning electron microscopic images and UV-vis spectroscopic analysis demonstrated the adsorption of Tyr on ZnO QDs. The stepwise assembly process of the fabricated biosensor was characterized by cyclic voltammetry and electrochemical impedance spectroscopy. The synthesized ZnO QDs and graphene oxide were characterized by Raman spectroscopy, infrared spectroscopy, X-ray diffraction and scanning electron microscopic techniques. The determination of OH-PCBs was carried out by using square wave voltammetry over the concentration range of 2.8-27.65 μM with a detection limit of 0.15 μM with good reproducibility, selectivity and acceptable stability. The high value of surface coverage of ZnO QDs and small value of Michaelis-Menten constant (K~(app)_M) confirmed an excellent loading of the Tyr and a high affinity of the biosensor toward the detection of OH-PCBs. This biosensor and the described sensing platform offer a great potential for rapid, cost-effective and on-field analysis of OH-PCBs.
机译:氧化石墨烯可以用作固定化由酪氨酸酶(Tyr)和氧化锌量子点(ZnO QDs)组成的杂化结构的扩增平台。本文介绍了该平台如何提高检测羟基化多氯联苯(OH-PCBs)的灵敏度.Tyr(低等电点)在ZnO量子点带正电的表面上的吸附基于静电相互作用。扫描电子显微镜图像和紫外可见光谱分析表明,Tyr在ZnO QDs上的吸附。通过循环伏安法和电化学阻抗谱表征了所制备生物传感器的逐步组装过程。通过拉曼光谱,红外光谱,X射线衍射和扫描电子显微镜技术对合成的ZnO量子点和氧化石墨烯进行了表征。 OH-PCBs的测定采用方波伏安法在2.8-27.65μM的浓度范围内进行,检测限为0.15μM,具有良好的重现性,选择性和可接受的稳定性。 ZnO QDs的高表面覆盖率值和Michaelis-Menten常数(K〜(app)_M)小值证实了Tyr的出色负载和生物传感器对OH-PCBs的高亲和力。这种生物传感器和上述传感平台为快速,低成本和现场分析OH-PCB提供了巨大的潜力。

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