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首页> 外文期刊>The Analyst: The Analytical Journal of the Royal Society of Chemistry: A Monthly International Publication Dealing with All Branches of Analytical Chemistry >Development of a simple bioelectrode for the electrochemical detection of hydrogen peroxide using Pichia pastoris catalase immobilized on gold nanoparticle nanotubes and polythiophene hybrid
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Development of a simple bioelectrode for the electrochemical detection of hydrogen peroxide using Pichia pastoris catalase immobilized on gold nanoparticle nanotubes and polythiophene hybrid

机译:使用固定在金纳米颗粒纳米管和聚噻吩杂化体上的毕赤酵母过氧化氢酶开发一种用于电化学检测过氧化氢的简单生物电极

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In this paper, a simple and innovative electrochemical hydrogen peroxide biosensor has been proposed using catalase (CAT_(pp)) derived from Pichia pastoris as bioelectrocatalyst. The model biocomponent was immobilized on gold nanoparticle nanotubes (AuNPNTs) and polythiophene composite using 1-ethyl-3- (3-dimethylaminopropyl)-carbodiimide and N-hydroxysuccinimide (EDC-NHS) coupling reagent. In this present work, we have successfully synthesized gold nanoparticles (AuNPs) by ultrasonic irradiation. The tubular gold nanostructures containing coalesced AuNPs were obtained by sacrificial template synthesis. The assembly of AuNPNTs onto the graphite (Gr) electrode was achieved via S-Au chemisorption. The latter was pre-coated with electropolymerized thiophene (PTh) to enable S groups to bind AuNPNTs. The combination of AuNPNTs-PTh, i.e., an inorganic-organic hybrid, provides a stable enzyme immobilization platform. The physical morphology of the fabricated biosensor Gr/PTh/AuNPNTs/EDC- NHS/CAT_(pp) was investigated using scanning electron microscopy and energy-dispersive microscopy. The analytical performance of the bioelectrode was examined using cyclic voltammetry, differential pulse voltammetry and chronoamperometry. Operational parameters such as working potential, pH, and thermal stability of the modified electrode were examined. The beneficial analytical characteristics of the proposed electrode were demonstrated. Our results indicate that the Gr/PTh/AuNPNTs/EDC-NHS/ CAT_(pp) bioelectrode exhibits a wide linear range from 0.05 mM to 18.5 mM of H_2O_2, fast response time of 7 s, excellent sensitivity of 26.2 mA mM~(-1) cm~(-2), good detection limit of 0.12 μM and good Michaelis- Menten constant of 1.4 mM. In addition, the bioelectrode displayed good repeatability, high stability and acceptable reproducibility, which can be attributed to the AuNPNTs-PTh composite that provides a biocompatible micro-environment.
机译:在本文中,已经提出了一种简单且创新的电化学过氧化氢生物传感器,该方法使用源自毕赤酵母的过氧化氢酶(CAT_(pp))作为生物电催化剂。使用1-乙基-3-(3-二甲基氨基丙基)-碳二亚胺和N-羟基琥珀酰亚胺(EDC-NHS)偶联剂,将模型生物组分固定在金纳米颗粒纳米管(AuNPNTs)和聚噻吩复合材料上。在本工作中,我们已经通过超声辐照成功合成了金纳米颗粒(AuNPs)。通过牺牲模板合成获得了包含聚结的AuNPs的管状金纳米结构。通过S-Au化学吸附将AuNPNTs组装到石墨(Gr)电极上。后者预涂有电聚合噻吩(PTh),以使S基团能够结合AuNPNT。 AuNPNTs-PTh的组合,即无机-有机杂化物,提供了稳定的酶固定平台。使用扫描电子显微镜和能量分散显微镜研究了制成的生物传感器Gr / PTh / AuNPNTs / EDC-NHS / CAT_(pp)的物理形态。使用循环伏安法,差分脉冲伏安法和计时安培法检查生物电极的分析性能。检查了诸如修饰电极的工作电势,pH和热稳定性等操作参数。证明了所建议电极的有益分析特性。我们的结果表明,Gr / PTh / AuNPNTs / EDC-NHS / CAT_(pp)生物电极表现出从0.05 mM到18.5 mM的H_2O_2宽的线性范围,7 s的快速响应时间,出色的26.2 mA mM〜(- 1)cm〜(-2),良好的检出限为0.12μM,良好的Michaelis- Menten常数为1.4 mM。此外,生物电极显示出良好的可重复性,高稳定性和可接受的重现性,这可归因于提供生物相容性微环境的AuNPNTs-PTh复合材料。

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