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首页> 外文期刊>Enzyme and Microbial Technology >Probing fundamental film parameters of immobilized enzymes-Towards enhanced biosensor performance. Part II-Electroanalytical estimation of immobilized enzyme performance
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Probing fundamental film parameters of immobilized enzymes-Towards enhanced biosensor performance. Part II-Electroanalytical estimation of immobilized enzyme performance

机译:探查固定化酶的基本胶片参数-增强生物传感器性能。第二部分-固定化酶性能的电分析估计

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摘要

The method of immobilization of a protein has a great influence on the overall conformation, and hence, functioning of the protein. Thus, a greater understanding of the events undergone by the protein during immobilization is key to manipulating the immobilization method to produce a strategy that influences the advantages of immobilization while minimizing their disadvantages in biosensor design. In this, the second paper of a two-part series, we have assessed the kinetic parameters of thin-film lac-case monolayers, covalently attached to SAMs differing in spacer-arm length and lateral density of spacer arms. This was achieved using chronoamperometry and an electroactive product (p-benzoquinone), which was modeled in a non-linear regressional fashion to extract the relevant parameters. Finally, comparisons between the kinetic parameters presented in this paper and the rheological parameters of laccase monolayers immobilized in the same manner (Part I of this two paper series) were performed.Improvements in the maximal enzyme-catalysed current, i_(max), the apparent Michaelis-Menten constant, K_m and the apparent biosensor sensitivity were noted for most of the surfaces with increasing linker length. Decreasing the lateral density of the spacer-arms brought about a general improvement in these parameters, which is attributed to the decrease in multiple points of immobilization undergone by functional proteins. Finally, comparisons between rheological data and kinetics data showed that the degree of viscosity exhibited by protein films has a negative influence on attached protein layers, while enhanced protein hydration levels (assessed piezoelectrically from data obtained in Paper 1) has a positive effect on those surfaces comprising rigidly bound protein layers.
机译:固定蛋白质的方法对整体构象有很大影响,因此对蛋白质的功能也有很大的影响。因此,对蛋白质在固定过程中发生的事件的更多了解是操纵固定方法以产生可影响固定化优点同时最小化其在生物传感器设计中的不利影响的策略的关键。在这是两部分系列的第二篇文章中,我们评估了共价连接至SAM的薄膜lac-case单层薄膜的动力学参数,这些SAM的间隔臂长度和间隔臂的侧向密度不同。这是通过计时电流分析法和电活性产物(对苯醌)实现的,该产物以非线性回归方式建模以提取相关参数。最后,对本文提出的动力学参数和以相同方式固定的漆酶单层的流变参数进行了比较(这两个论文系列的第一部分)。最大酶催化电流i_(max),随着连接体长度的增加,大多数表面都出现了明显的Michaelis-Menten常数K_m和明显的生物传感器敏感性。间隔臂的侧向密度的降低带来了这些参数的总体改善,这归因于功能蛋白所经历的多个固定点的减少。最后,流变数据和动力学数据之间的比较表明,蛋白质膜表现出的粘度程度对附着的蛋白质层具有负面影响,而增强的蛋白质水合水平(根据论文1中的数据进行压电评估)对这些表面具有正面影响包括刚性结合的蛋白质层。

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