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固定于磁性纳米颗粒-壳聚糖膜中的血红蛋白的直接电化学与电催化作用

Direct electrochemistry and electrocatalysis of hemoglobin immobilized in a magnetic nanoparticles-chitosan film.

作者信息

Zheng Na, Zhou Xia, Yang Weiying, Li Xiangjun, Yuan Zhuobin

机构信息

College of Chemistry and Chemical Engineering, Graduate University of Chinese Academy of Sciences, Beijing 100049, China.

出版信息

Talanta. 2009 Aug 15;79(3):780-6. doi: 10.1016/j.talanta.2009.05.002. Epub 2009 May 12.

Abstract

Magnetic nanoparticles (Fe(3)O(4)) were synthesized by a chemical coprecipitation method. X-ray diffraction (XRD) and transmission electron microscope (TEM) were used to confirm the crystallite structure and the particle's radius. The Fe(3)O(4) nanoparticles and chitosan (CS) were mixed to form a matrix in which haemoglobin (Hb) can be immobilized for the fabrication of H(2)O(2) biosensor. The Fe(3)O(4)-CS-Hb film exhibited a pair of well-defined and quasi-reversible cyclic voltammetric peaks due to the redox of Hb-heme Fe (III)/Fe (II) in a pH 7.0 phosphate buffer. The formal potential of Hb-heme Fe(III)/Fe(II) couple varied linearly with the increase of pH in the range of 4.0-10.0 with a slope of 46.5 mV pH(-1), indicating that electron transfer was accompanied with single proton transportation in the electrochemical reaction. The surface coverage of Hb immobilized on Fe(3)O(4)-CS film glassy carbon electrode was about 1.13 x 10(-10)mol cm(-2). The heterogeneous electron transfer rate constant (k(s)) was 1.04 s(-1), indicating great facilitation of the electron transfer between Hb and magnetic nanoparticles-chitosan modified electrode. The modified electrode showed excellent electrocatalytic activity toward oxygen and hydrogen peroxide reduction. The apparent Michaelis-Menten constant K(M)(app) for H(2)O(2) was estimated to be 38.1 micromol L(-1).

摘要

采用化学共沉淀法合成了磁性纳米颗粒(Fe(3)O(4))。利用X射线衍射(XRD)和透射电子显微镜(TEM)确定微晶结构和颗粒半径。将Fe(3)O(4)纳米颗粒与壳聚糖(CS)混合形成一种基质,可在其中固定血红蛋白(Hb)以制备H(2)O(2)生物传感器。在pH 7.0的磷酸盐缓冲溶液中,由于Hb-血红素Fe(III)/Fe(II)的氧化还原作用,Fe(3)O(4)-CS-Hb膜呈现出一对定义明确且准可逆的循环伏安峰。Hb-血红素Fe(III)/Fe(II)电对的形式电位在4.0-10.0范围内随pH升高呈线性变化,斜率为46.5 mV pH(-1),表明在电化学反应中电子转移伴随着单个质子的传输。固定在Fe(3)O(4)-CS膜玻碳电极上的Hb的表面覆盖度约为1.13 x 10(-10)mol cm(-2)。异相电子转移速率常数(k(s))为1.04 s(-1),表明Hb与磁性纳米颗粒-壳聚糖修饰电极之间的电子转移得到了极大促进。修饰电极对氧气和过氧化氢的还原表现出优异的电催化活性。H(2)O(2)的表观米氏常数K(M)(app)估计为38.1 μmol L(-1)。

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