Citation: YANG Da-Wei, CHEN Chao, XIE Qing-Ji, YAO Shou-Zhuo. Comparison of Enzymatic Activities and Electroactivities of Adsorbed Glucose Oxidase on Several Nanomaterial-Modified Electrodes[J]. Acta Physico-Chimica Sinica, ;2013, 29(08): 1727-1734. doi: 10.3866/PKU.WHXB201306042
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The quartz-crystal microbalance technique was used to monitor the adsorption of glucose oxidase ( x) on bare Au, Au-electrodeposited Au (Aued/Au), multiwalled carbon nanotube (MWCNT)- modified Au (MWCNTs/Au), and Au-electrodeposited MWCNT-modified Au (Aued/MWCNTs/Au) electrodes. The mass of x at saturated adsorption was obtained in each case. The amperometric responses of these enzyme electrodes were examined, and the mass-specific bioactivities of the immobilized (adsorbed) x (MSBAi) were evaluated through anodic potentiostatic detection of enzymatically generated H2O2 in the presence of glucose. The direct electrochemistry of adsorbed x was studied by cyclic voltammetry, to obtain the electroactivity percentage of the immobilized (adsorbed) x (EAPi) in each case. We found that the amounts of enzyme adsorbed and the amperometric responses of these enzyme electrodes follow the order MWCNTs/Au > Aued/MWCNTs/Au > Aued/Au > Au; MSBAi follows the order of Au > Aued/MWCNTs/Au > Aued/Au > MWCNTs/Au; and EAPi follows the order of MWCNTs/Au > Aued/MWCNTs/Au > Aued/Au > Au. The experimental data are interpreted based on hydrophobic/hydrophilic interactions among enzyme molecules and the nanomaterials, as well as the amount of adsorbed x. It was also verified that the total enzymatic activity of all the electrode-adsorbed enzyme molecules is positively related to the amperometric responses of the enzyme electrodes. This work is useful in studying the immobilization of enzyme on nanomaterials and thus-prepared amperometric enzyme electrodes.
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