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首页> 外文期刊>Journal of Neuroscience Methods >Improving the reproducibility of hydrogel-coated glutamate microsensors by using an automated dipcoater.
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Improving the reproducibility of hydrogel-coated glutamate microsensors by using an automated dipcoater.

机译:通过使用自动浸涂机提高水凝胶包覆的谷氨酸微传感器的重现性。

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Hydrogel-coated microsensors based on carbon fiber electrodes (CFEs) are promising tools for in vivo analysis of endogeneous compounds such as glutamate. However, their construction generally depends on manual fabrication, which often results in poor reproducibility. The aim of this study was to improve the reproducibility and performance of glutamate microsensors. CFEs (10mum diameter, 300-500mum long) were coated with a cross-linked redox-polymer hydrogel containing l-glutamate oxidase, horseradish peroxidase and ascorbate oxidase. Various parameters that are likely to influence the reproducibility of the glutamate microsensors were studied. It appeared that the most crucial step in determining the microsensor performance is the manual hydrogel-application procedure. To control this procedure an automated dipcoater was constructed, which allowed mechanical application of the hydrogel on the CFE under standardized conditions. Significant improvements in performance were seen when the CFEs were dipcoated for 10min at 37 degrees C. Further improvements were obtained when the automated hydrogel application was combined with other cross-link methods, such as electrodeposition and electrostatic complexation. A crucial factor in determining the microsensor performance is the hydrogel thickness. Microscopic observations revealed that, despite the use of an automated dipcoater, the layer thickness was not constant. By combining the automated dipcoat technique with amperometry, the layer thickness could be indirectly monitored and controlled, which resulted in significant improvements of the reproducibility of the sensors.
机译:基于碳纤维电极(CFE)的水凝胶涂层微传感器是用于体内分析内源性化合物(如谷氨酸)的有前途的工具。然而,它们的构造通常取决于手工制造,这常常导致可再现性差。这项研究的目的是提高谷氨酸微传感器的重现性和性能。 CFE(直径10毫米,长300-500毫米)涂有含有L-谷氨酸氧化酶,辣根过氧化物酶和抗坏血酸氧化酶的交联氧化还原聚合物水凝胶。研究了可能影响谷氨酸微传感器可重复性的各种参数。似乎确定微传感器性能的最关键步骤是手动水凝胶施加程序。为了控制该程序,构建了自动浸涂机,其允许在标准条件下将水凝胶机械施加到CFE上。当将CFE在37摄氏度下浸涂10分钟时,可以看到性能的显着改善。当自动水凝胶应用与其他交联方法(例如电沉积和静电络合)结合使用时,可以得到进一步的改善。确定微传感器性能的关键因素是水凝胶厚度。显微镜观察表明,尽管使用了自动浸涂机,但层厚度不是恒定的。通过将自动浸涂技术与电流分析法相结合,可以间接监控层的厚度,从而显着提高了传感器的可重复性。

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