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半胱氨酸标记蛋白在电极表面的硫醇-烯点击化学固定化。

Immobilization of Cysteine-Tagged Proteins on Electrode Surfaces by Thiol-Ene Click Chemistry.

机构信息

Laboratoire de Chimie Physique et Microbiologie pour l'Environnement (LCPME), UMR7564 CNRS - Université de Lorraine , 405, rue de Vandoeuvre, F-54600 Villers-lès-Nancy, France.

Microbiology, Saarland University , Campus, Geb. A1.5, D-66123 Saarbruecken, Germany.

出版信息

ACS Appl Mater Interfaces. 2016 Jul 13;8(27):17591-8. doi: 10.1021/acsami.6b02364. Epub 2016 Jun 29.

Abstract

Thiol-ene click chemistry can be exploited for the immobilization of cysteine-tagged dehydrogenases in an active form onto carbon electrodes (glassy carbon and carbon felt). The electrode surfaces have been first modified with vinylphenyl groups by electrochemical reduction of the corresponding diazonium salts generated in situ from 4-vinylaniline. The grafting process has been optimized in order to not hinder the electrochemical regeneration of NAD(+)/NADH cofactor and soluble mediators such as ferrocenedimethanol and Cp*Rh(bpy)Cl. Having demonstrated the feasibility of thiol-ene click chemistry for attaching ferrocene moieties onto those carbon surfaces, the same approach was then applied to the immobilization of d-sorbitol dehydrogenases with cysteine tag. These proteins can be effectively immobilized (as pointed out by XPS), and the cysteine tag (either 1 or 2 cysteine moieties at the N terminus of the polypeptide chain) was proven to maintain the enzymatic activity of the dehydrogenase upon grafting. The bioelectrode was applied to electroenzymatic enantioselective reduction of d-fructose to d-sorbitol, as a case study.

摘要

硫醇-烯点击化学可用于将半胱氨酸标记的脱氢酶以活性形式固定在碳电极(玻碳和碳纤维毡)上。首先通过电化学还原原位生成的 4-乙烯基苯胺的重氮盐,将乙烯基苯基基团接枝到电极表面上。为了不阻碍 NAD(+)/NADH 辅因子和可溶介体(如二茂铁二甲醇和[Cp*Rh(bpy)Cl](+)的电化学再生,优化了接枝过程。在证明了硫醇-烯点击化学将二茂铁部分附着到这些碳表面的可行性之后,然后将相同的方法应用于带有半胱氨酸标签的 d-山梨醇脱氢酶的固定化。这些蛋白质可以有效地固定化(如 XPS 所指出的),并且在接枝时,半胱氨酸标签(多肽链的 N 末端的 1 或 2 个半胱氨酸部分)被证明保持了脱氢酶的酶活性。将生物电极应用于 d-果糖对映选择性电化学还原为 d-山梨醇的研究。

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