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血红蛋白在氧化铜纳米线束中的直接电化学

Direct electrochemistry of hemoglobin immobilized in CuO nanowire bundles.

机构信息

Department of Chemistry, Key Laboratory of Bioorganic Phosphorus Chemistry and Chemical Biology, Tsinghua University, Beijing 100084, China.

出版信息

Talanta. 2010 Nov 15;83(1):162-6. doi: 10.1016/j.talanta.2010.08.056. Epub 2010 Sep 8.

Abstract

It is one of main challenges to find the suitable materials to enhance the direct electron transfer between the electrode and redox protein for direct electrochemistry field. Nano-structured metal oxides have attracted considerable interest because of unique properties, well biocompatibility, and good stability. In this paper, the copper oxide nanowire bundles (CuO NWBs) were prepared via a template route, and the bioelectrochemical performances of hemoglobin (Hb) on the CuO NWBs modified glass carbon electrodes (denoted as Hb-CuO NWBs/GC) were studied. TEM and XRD were used to characterize the morphology and structure of the as synthesized CuO NWBs. Fourier transform-infrared spectroscopy (FT-IR) proved that Hb in the CuO NWBs matrix could retain its native secondary structure. A pair of well-defined and quasi-reversible redox peaks at approximately -0.325 V (vs. Ag/AgCl saturated KCl) were shown in the cyclic voltammogram curve for the Hb-CuO NWBs/GC electrode, which indicated the direct electrochemical behavior. The Hb-CuO NWBs/GC electrode also displayed a good electrocatalytic activity toward the reduction of hydrogen peroxide. These results indicate that the CuO NWBs are good substrates for immobilization of biomolecules and might be promising in the fields of (bio) electrochemical analysis.

摘要

找到合适的材料来增强电极和氧化还原蛋白之间的直接电子转移,是直接电化学领域的主要挑战之一。纳米结构金属氧化物由于具有独特的性质、良好的生物相容性和良好的稳定性而引起了相当大的兴趣。本文通过模板法制备了氧化铜纳米线束(CuO NWBs),并研究了血红蛋白(Hb)在氧化铜纳米线束修饰的玻碳电极(记为 Hb-CuO NWBs/GC)上的生物电化学性能。TEM 和 XRD 用于表征合成的 CuO NWBs 的形态和结构。傅里叶变换红外光谱(FT-IR)证明 Hb 在 CuO NWBs 基体中可以保留其天然的二级结构。在 Hb-CuO NWBs/GC 电极的循环伏安曲线上显示出一对约为-0.325 V(相对于 Ag/AgCl 饱和 KCl)的良好定义且准可逆的氧化还原峰,表明存在直接电化学行为。Hb-CuO NWBs/GC 电极对过氧化氢的还原也表现出良好的电催化活性。这些结果表明,CuO NWBs 是固定生物分子的良好基质,在(生物)电化学分析领域可能具有广阔的应用前景。

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