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D-Amino acid oxidase bio-functionalized platforms: Toward an enhanced enzymatic bio-activity

机译:D-氨基酸氧化酶生物功能化平台:增强酶促生物活性

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The purpose of this work is to study the adsorption process and surface bio-activity of His-tagged D-amino acid oxidase (DAAO) from Rhodotorula gracilis (His(6)-RgDAAO) as the first step for the development of an electrochemical bio-functionalized platform. With such a purpose this work comprises: (a) the His(6)-RgDAAO bio-activity in solution determined by amperometry, (b) the adsorption mechanism of His(6)-RgDAAO on bare gold and carboxylated modified substrates in the absence (substrate/COO) and presence of Ni(II) (substrate/COO- + Ni(II)) determined by reflectometry, and (c) the bio-activity of the His(6)-RgDAAO bio-functionalized platforms determined by amperometry. Comparing the adsorption behavior and bio-activity of His(6)-RgDAAO on these different solid substrates allows understanding the contribution of the diverse interactions responsible for the platform performance. His(6)-RgDAAO enzymatic performance in solution is highly improved when compared to the previously used pig kidney (pk) DAAO. His(6)-RgDAAO exhibits an amperometrically detectable bio-activity at concentrations as low as those expected on a bio-functional platform; hence, it is a viable bio-recognition element of D-amino acids to be coupled to electrochemical platforms. Moreover, His(6)-RgDAAO bio-functionalized platforms exhibit a higher surface activity than pkDAAO physically adsorbed on gold. The platform built on Ni(II) modified substrates present enhanced bio-activity because the surface complexes histidine-Ni(II) provide with site-oriented, native-like enzymes. The adsorption mechanism responsible of the excellent performance of the bio-functionalized platform takes place in two steps involving electrostatic and bio-affinity interactions whose prevalence depends on the degree of surface coverage. (C) 2015 Elsevier B.V. All rights reserved.
机译:这项工作的目的是研究细纹红球藻(His(6)-RgDAAO)的His标记的D-氨基酸氧化酶(DAAO)的吸附过程和表面生物活性,这是开发电化学生物技术的第一步功能化的平台。为此目的,这项工作包括:(a)通过安培法测定的溶液中的His(6)-RgDAAO生物活性,(b)在不存在的条件下,His(6)-RgDAAO在裸金和羧化改性底物上的吸附机理(底物/ COO)和Ni(II)(底物/ COO- + Ni(II))的存在,通过反射法确定,以及(c)通过电流分析法确定的His(6)-RgDAAO生物功能化平台的生物活性。比较His(6)-RgDAAO在这些不同的固体基质上的吸附行为和生物活性,可以了解负责平台性能的各种相互作用的贡献。与以前使用的猪肾(pk)DAAO相比,His(6)-RgDAAO在溶液中的酶促性能得到了极大的改善。 His(6)-RgDAAO在低至生物功能平台上预期浓度的条件下,可显示出安培检测的生物活性。因此,D-氨基酸是一种可行的生物识别元件,可与电化学平台偶联。此外,与物理吸附在金上的pkDAAO相比,His(6)-RgDAAO生物功能化平台具有更高的表面活性。在Ni(II)修饰的底物上构建的平台具有增强的生物活性,因为组氨酸-Ni(II)的表面复合物可提供定点的天然酶。负责生物功能化平台出色性能的吸附机制分两步进行,涉及静电和生物亲和力相互作用,其流行程度取决于表面覆盖程度。 (C)2015 Elsevier B.V.保留所有权利。

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