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首页> 外文期刊>Journal of Electroanalytical Chemistry: An International Journal Devoted to All Aspects of Electrode Kinetics, Interfacial Structure, Properties of Electrolytes, Colloid and Biological Electrochemistry >Electrochemical laccase sensor based on 3-methylthiophene/3-thiopheneacetic acid/bis(3,4-ethylenedioxythiophene)-Nnonylacridone as a new polymer support
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Electrochemical laccase sensor based on 3-methylthiophene/3-thiopheneacetic acid/bis(3,4-ethylenedioxythiophene)-Nnonylacridone as a new polymer support

机译:基于3-甲基噻吩/ 3-噻吩乙酸/双(3,4-乙撑二氧噻吩)-壬基内酯的电化学漆酶传感器作为新型聚合物载体

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摘要

An amperometric biosensing electrode was constructed by immobilization of laccase in an electrochemically synthesized copolymer based on N-alkylacridone derivative on a Pt electrode. Laccase from Cerrena unicolor has been successfully immobilized (electrolytic deposition) on the surface of thin film built of 3- methylthiophene/3-thiopheneacetic acid/2,7-bis[2-(3,4-etylenedioxythiophene)]-N-nonylacridone. A clearly defined reduction current according to the phenolic compound presence was observed in cyclic voltammetry, which attributed to the reduction of enzymatically produced quinone on the electrode surface. The immersion of the laccase-coated electrode in solution with substrate generated large catalytic currents easily recorded by cyclic voltammetry at low potential scan rates. The response of the biosensing platform is evaluated in the presence of hydroquinone (HQ) and syringaldazine, used as phenolic enzymatic substrates. The system exhibits a clear electrocatalytic activity and the substrates can be amperometrically determined at -0.10 V vs. SCE. Considering the fact, that the immobilization strategy showed high efficiency, obtained results suggest that the method for phenoloxidase immobilization has a great potential of enabling high throughput fabrication of bioelectronic devices.
机译:通过将漆酶固定在基于N-烷基ac啶酮衍生物的电化学合成共聚物中的Pt电极上,构建了安培生物传感电极。来自Cerrena unicolor的漆酶已成功地固定(电解沉积)在由3-甲基噻吩/ 3-噻吩乙酸/ 2,7-双[2-(3,4-乙烯二氧噻吩)]-N-壬基甲酮构成的薄膜表面上。在循环伏安法中观察到了根据酚类化合物存在而明确定义的还原电流,这归因于电极表面酶促生成的醌的还原。将涂有漆酶的电极浸入具有基质的溶液中会产生大的催化电流,该电流很容易通过循环伏安法以低电势扫描速率记录下来。在用作苯酚酶底物的对苯二酚(HQ)和丁香醛嗪的存在下评估生物传感平台的响应。该系统表现出明显的电催化活性,可以在-0.10 V vs. SCE的条件下通过电流法测定底物。考虑到该固定化策略显示出高效率的事实,获得的结果表明,用于酚氧化酶固定化的方法具有实现高产量制造生物电子器件的巨大潜力。

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