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细胞色素c的形态依赖性电化学和电催化活性

Morphology-dependent electrochemistry and electrocatalytical activity of cytochrome c.

作者信息

Liu Haiqing, Tian Yang, Deng Zifeng

机构信息

Department of Chemistry, Tongji University, Shanghai, PR China.

出版信息

Langmuir. 2007 Aug 28;23(18):9487-94. doi: 10.1021/la700817y. Epub 2007 Aug 1.

Abstract

The morphology-dependent electrochemistry and electrocatalytical activity of cytochrome c (cyt. c) were investigated at pyramidal, rodlike, and spherical gold nanostructures directly electrodeposited onto sputtered gold surfaces. Direct, reversible electron transfer of cyt. c, for the first time, was realized at nanorod-like and nanopyramidal gold surfaces without any mediators or promoters, while no redox reaction was observed at the nanospherical gold electrode. The electrochemical properties of cyt. c vary with the shape of gold nanostructures with respect to the reversibility of electrode reactions, kinetic parameters, the formal potentials (E0'), and charge-transport resistance (Rct), suggesting shape-dependent mechanisms for the electrode reactions of cyt. c. The experimental results manifest that cyt. c was stably immobilized on the nanostructured gold electrodes with different conformational changes of the heme microenvironment. Consequently, not only the electroactivity, but also the inherent biological activity of the immobilized cyt. c strongly depended on the shape of the electrode surfaces. The facilitated electron transfer combined with the intrinsic catalytical activity of cyt. c substantially constructed a third-generation H2O2 biosensor with high selectivity, quick response time, large linear range, and good sensitivity. The electrocatalytical activity of the immobilized cyt. c toward H2O2 was also found to be morphology dependent, and the linear range of H2O2 detection could be tuned by means of employing the nanostructured gold surfaces with different shapes.

摘要

在直接电沉积到溅射金表面的金字塔形、棒状和球形金纳米结构上,研究了细胞色素c(cyt. c)的形态依赖性电化学和电催化活性。首次在纳米棒状和纳米金字塔形金表面实现了cyt. c的直接、可逆电子转移,无需任何媒介物或促进剂,而在纳米球形金电极上未观察到氧化还原反应。cyt. c的电化学性质随金纳米结构的形状而变化,涉及电极反应的可逆性、动力学参数、形式电位(E0')和电荷转移电阻(Rct),表明cyt. c的电极反应存在形状依赖性机制。实验结果表明,cyt. c通过血红素微环境的不同构象变化稳定地固定在纳米结构金电极上。因此,固定化cyt. c的电活性以及固有生物活性都强烈依赖于电极表面的形状。cyt. c促进的电子转移与固有催化活性相结合,构建了一种具有高选择性、快速响应时间、大线性范围和良好灵敏度的第三代H2O2生物传感器。还发现固定化cyt. c对H2O2的电催化活性也依赖于形态,并且可以通过采用不同形状的纳米结构金表面来调节H2O2检测的线性范围。

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