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Amperometric Bioelectronic Tongue for glucose determination

机译:安培生物电子舌用于测定葡萄糖

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Abstract An amperometric Bioelectronic Tongue is reported for glucose determination that contains eight sensor electrodes constructed using different metal electrodes (Pt, Au), oxidoreductase enzymes (glucose oxidase, ascorbate oxidase, uricase), and membrane coatings (Nafion, chitosan). The response to varying concentrations of glucose, ascorbic acid, uric acid, and acetaminophen was tested for two models, concentration determination by current density measurements at individual electrodes and concentration determination by a linear regression model for the entire electrode array. The reduced chi-squared for the full array model was found to be about one order of magnitude lower than that for the individual-electrode model. Discrimination of glucose from chemical interference by the other three species is accomplished through a combination of enzyme catalysis, metal electrocatalysis, and membrane surface charge. The benefit of incorporating enzyme electrodes into the sensor array is illustrated by the lower correlation coefficients between different enzyme electrodes relative to non-enzyme coated electrodes. This approach can be more generally applied to detection of other substrates of oxidoreductase enzymes.
机译:摘要据报道,用于测定葡萄糖的安培生物电子舌包含八个传感器电极,这些电极由不同的金属电极(Pt,Au),氧化还原酶(葡萄糖氧化酶,抗坏血酸氧化酶,尿酸酶)和膜涂层(Nafion,壳聚糖)构成。对于两个模型,测试了葡萄糖,抗坏血酸,尿酸和对乙酰氨基酚对不同浓度的响应,通过单个电极上的电流密度测量确定浓度,并通过整个电极阵列的线性回归模型确定浓度。发现全阵列模型的减少的卡方比单个电极模型的减少的卡方约低一个数量级。通过将酶催化,金属电催化和膜表面电荷相结合,可以将葡萄糖与其他三种物质的化学干扰区分开。将酶电极结合到传感器阵列中的好处通过不同酶电极之间相对于非酶涂层电极的较低相关系数来说明。该方法可以更普遍地应用于氧化还原酶的其他底物的检测。

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