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首页> 外文期刊>Biosensors & Bioelectronics: The International Journal for the Professional Involved with Research, Technology and Applications of Biosensers and Related Devices >Immobilization and direct electrochemistry of glucose oxidase on a tetragonal pyramid-shaped porous ZnO nanostructure for a glucose biosensor
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Immobilization and direct electrochemistry of glucose oxidase on a tetragonal pyramid-shaped porous ZnO nanostructure for a glucose biosensor

机译:葡萄糖氧化酶在葡萄糖生物传感器的四角锥状多孔ZnO纳米结构上的固定化和直接电化学

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摘要

A tetragonal pyramid-shaped porous ZnO (TPSP-ZnO) nanostructure is used for the immobilization, direct electrochemistry and biosensing of proteins. The prepared ZnO has a large surface area and good biocompatibility. Using glucose oxidase (GOD) as a model, this shaped ZnO is tested for immobilization of proteins and the construction of electrochemical biosensors with good electrochemical performances. The interaction between GOD and TPSP-ZnO is examined by using AFM, N-2 adsorption isotherms and electrochemical methods. The immobilized GOD at a TPSP-ZnO-modified glassy carbon electrode shows a good direct electrochemical behavior, which depends on the properties of the TPSP-ZnO. Based on a decrease of the electrocatalytic response of the reduced form of GOD to dissolved oxygen, the proposed biosensor exhibits a linear response to glucose concentrations ranging from 0.05 to 8.2 mM with a detection limit of 0.01 mM at an applied potential of -0.50 V which has better biosensing properties than those from other morphological ZnO nanoparticles. The biosensor shows good stability, reproducibility, low interferences and can diagnose diabetes very fast and sensitively. Such the TPSP-ZnO nanostructure provides a good matrix for protein immobilization and biosensor preparation. (C) 2008 Elsevier B.V. All rights reserved.
机译:四角锥状多孔ZnO(TPSP-ZnO)纳米结构用于蛋白质的固定化,直接电化学和生物传感。制备的ZnO具有较大的表面积和良好的生物相容性。使用葡萄糖氧化酶(GOD)作为模型,对该形状的ZnO进行了蛋白质固定化和具有良好电化学性能的电化学生物传感器的测试。使用原子力显微镜,N-2吸附等温线和电化学方法检测了GOD与TPSP-ZnO之间的相互作用。固定在TPSP-ZnO修饰的玻璃碳电极上的GOD表现出良好的直接电化学行为,这取决于TPSP-ZnO的性质。基于降低的GOD还原形式对溶解氧的电催化响应,拟议的生物传感器在-0.50 V的施加电势下对0.05至8.2 mM的葡萄糖浓度表现出线性响应,检测极限为0.01 mM。具有比其他形态的ZnO纳米颗粒更好的生物传感性能。该生物传感器显示出良好的稳定性,可重复性,低干扰,并且可以非常快速,灵敏地诊断出糖尿病。 TPSP-ZnO纳米结构为蛋白质固定和生物传感器的制备提供了良好的基质。 (C)2008 Elsevier B.V.保留所有权利。

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