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利用壳聚糖/离子液体/酞菁作为固定化表面的 LBL 组装体来提高漆酶传感活性用于儿茶酚检测。

Promoting laccase sensing activity for catechol detection using LBL assemblies of chitosan/ionic liquid/phthalocyanine as immobilization surfaces.

机构信息

Group UVASens, Engineers School, Universidad de Valladolid, 47011 Valladolid, Spain; BioecoUVA Research Institute, Engineers School, Universidad de Valladolid, 47011 Valladolid, Spain.

Group UVASens, Materials Science Department, Universidad de Valladolid, 47011 Valladolid, Spain; BioecoUVA Research Institute, Engineers School, Universidad de Valladolid, 47011 Valladolid, Spain.

出版信息

Bioelectrochemistry. 2020 Apr;132:107407. doi: 10.1016/j.bioelechem.2019.107407. Epub 2019 Dec 4.

Abstract

The performance of electrochemical laccase-based biosensors can be improved by immobilizing the enzyme on composite Layer-by-Layer (LbL) supports in which materials with complementary functions are combined. LbL films are formed by layers combining an electrocatalytic material which favors electron transfer (sulfonated copper phthalocyanine, CuPc), an ionic liquid which enhances the electrical conductivity of the layers (1-butyl-3-methylimidazolium tetrafluoroborate, IL) and a material able to promote enzyme immobilization (chitosan, CHI). Composite films with different structures have been demonstrated to be efficient electrocatalysts, producing an increase in the magnitude of the responses towards catechol. The most intense and reproducible electrocatalytic effect was observed when a layer of the CuPc was placed on top of a layer formed by a mixture of CHI + IL to obtain [CHI + IL|CuPc] films. Biosensors with laccase immobilized on the surface of the LbL layers [CHI + IL|CuPc]|Lac showed mediated electron transfer between the redox enzyme and the film and a reproducibility of device-to-device performance of 4.1%. The amperometric biosensor showed a sensitivity of 0.237 A·M and a linear detection range from 2.4 μM to 26 μM for catechol. The excellent Limit of detection (LOD) of 8.96·10 M (3·σ /m) is one order of magnitude lower than that obtained in similar studies. A Michaelis-Menten constant of 3.16 μM confirms excellent enzyme-substrate affinity.

摘要

电化学漆酶生物传感器的性能可以通过将酶固定在复合层层(LbL)支持物上来提高,其中结合了具有互补功能的材料。LbL 薄膜是通过将有利于电子转移的电催化材料(磺化铜酞菁,CuPc)、增强层电导率的离子液体(1-丁基-3-甲基咪唑四氟硼酸盐,IL)和能够促进酶固定化的材料(壳聚糖,CHI)的层结合形成的。已经证明具有不同结构的复合膜是有效的电催化剂,对儿茶酚的响应幅度增加。当在 CHI+IL 混合物形成的层上放置一层 CuPc 时,观察到最强烈和可重现的电催化效应,从而获得 [CHI+IL|CuPc] 膜。将漆酶固定在 LbL 层表面的生物传感器 [CHI+IL|CuPc]|Lac 显示出氧化还原酶与膜之间的中介电子转移,并且器件之间的重现性为 4.1%。安培生物传感器的灵敏度为 0.237 A·M,儿茶酚的线性检测范围为 2.4 μM 至 26 μM。出色的检测限(LOD)为 8.96·10 M(3·σ/m),比类似研究中获得的检测限低一个数量级。3.16 μM 的米氏常数证实了优异的酶-底物亲和力。

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