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Improving the Direct Electron Transfer in Monolithic Bioelectrodes Prepared by Immobilization of FDH Enzyme on Carbon-Coated Anodic Aluminum Oxide Films

机译:通过将FDH酶固定在碳包覆阳极氧化铝膜上制备的整体式生物电极中改善直接电子转移

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The present work reports the preparation of binderless carbon-coated porous films and the study of their performance as monolithic bioanodes. The films were prepared by coating anodic aluminum oxide (AAO) films with a thin layer of nitrogen-doped carbon by chemical vapor deposition. The films have cylindrical straight pores with controllable diameter and length. These monolithic films were used directly as bioelectrodes by loading the films with D-fructose dehydrogenase (FDH), an oxidoreductase enzyme that catalyzes the oxidation of D-fructose to 5-keto-D-fructose. The immobilization of the enzymes was carried out by physical adsorption in liquid phase and with an electrostatic attraction method. The latter method takes advantage of the fact that FDH is negatively charged during the catalytic oxidation of fructose. Thus the immobilization was performed under the application of a positive voltage to the CAAO film in a FDH-fructose solution in McIlvaine buffer (pH 5) at 25 oC. As a result, the FDH modified electrodes with the latter method show much better electrochemical response than that with the conventional physical adsorption method. Due to the singular porous structure of the monolithic films, which consists of an array of straight and parallel nanochannels, it is possible to rule out the effect of the diffusion of the D-fructose into the pores. Thus the improvement in the performance upon using the electrostatic attraction method can be ascribed not only to a higher uptake, but also to a more appropriate molecule orientation of the enzyme units on the surface of the electrodes.
机译:本工作报道了无粘合剂碳涂层多孔膜的制备及其作为整体式生物阳极性能的研究。通过化学气相沉积法在阳极氧化铝(AAO)薄膜上涂覆一层薄薄的氮掺杂碳来制备薄膜。该膜具有直径和长度可控的圆柱形直孔。通过将D-果糖脱氢酶(FDH)加载到膜中,这些单片膜直接用作生物电极,DH是一种催化D-果糖氧化为5-酮-D-果糖的氧化还原酶。酶的固定化是通过液相物理吸附和静电吸引法进行的。后一种方法利用了在果糖催化氧化过程中FDH带负电这一事实。因此,在25oC的McIlvaine缓冲液(pH 5)中的FDH-果糖溶液中,在对CAAO膜施加正电压的条件下进行固定。结果,用后一种方法的FDH修饰的电极表现出比常规物理吸附方法更好的电化学响应。由于整体膜的奇异多孔结构由直的和平行的纳米通道阵列组成,因此可以排除D-果糖扩散到孔中的影响。因此,使用静电吸引方法时性能的改善不仅可以归因于较高的吸收,而且可以归因于电极表面上酶单元的更合适的分子取向。

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