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一种使用环状双缩脲/金纳米粒子复合材料检测过氧化氢的新型电化学传感器表面。

A novel electrochemical sensor surface for the detection of hydrogen peroxide using cyclic bisureas/gold nanoparticle composite.

机构信息

Nanoscience Research Laboratory, School of Nano Science and Technology, National Institute of Technology Calicut, Calicut, Kerala, India.

出版信息

Biosens Bioelectron. 2011 Oct 15;28(1):210-5. doi: 10.1016/j.bios.2011.07.020. Epub 2011 Jul 20.

Abstract

A novel electrochemical sensor surface with enhanced sensitivity for the detection of hydrogen peroxide has been developed based on the layer-by-layer assembly of mercapto propionic acid (MPA), cystine-based polymethylene-bridged cyclic bisureas (CBU)/gold nanoparticle (AuNP) and horseradish peroxidase (HRP) on gold electrode. Possibility of a large number of hydrogen bonds, allowed by the chemical and sterical structure of the CBU ensures the proper immobilization of the enzyme in favorable orientation and retention of enzymatic activity. Efficient electron tunneling property of AuNP together with its electrocatalytic activity leads to higher sensitivity in the detection of H(2)O(2). In cyclic voltammetry measurements a cathodic current due to direct electron transfer of HRP is observed which, indicates excellent electrocatalytic activity of the sensor surface. The biosensor surface modified with gold nanoparticle and CBU showed a lower detection limit of 50 nM for hydrogen peroxide. Chronoamperometry is performed at -0.3 V and Michaelis-Menten constant K(M)(app) value is estimated to be 4.5 μM. The newly developed sensor surface showed very high stability, reproducibility and high sensitivity.

摘要

基于金电极上层层组装巯基丙酸(MPA)、基于胱氨酸的亚甲基桥联环双缩胍(CBU)/金纳米粒子(AuNP)和辣根过氧化物酶(HRP),开发了一种用于检测过氧化氢的新型电化学传感器表面,具有增强的灵敏度。CBU 的化学和空间结构允许形成大量氢键,确保了酶在有利的方向上的适当固定和酶活性的保留。AuNP 的高效电子隧道效应及其电催化活性导致在检测 H(2)O(2)时具有更高的灵敏度。在循环伏安测量中,由于 HRP 的直接电子转移观察到阴极电流,这表明传感器表面具有优异的电催化活性。用金纳米粒子和 CBU 修饰的生物传感器表面对过氧化氢的检测下限低至 50 nM。在 -0.3 V 下进行计时安培法,估计 Michaelis-Menten 常数 K(app)值为 4.5 μM。新开发的传感器表面表现出非常高的稳定性、重现性和高灵敏度。

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