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氧化锌材料作为酶活性烟酰胺腺嘌呤二核苷酸光电化学再生的有效阳极。

ZnO Materials as Effective Anodes for the Photoelectrochemical Regeneration of Enzymatically Active NAD.

机构信息

Escuela de Ingeniería Bioquímica, Pontificia Universidad Católica de Valparaíso, Av. Brasil 2085, 2340000 Valparaiso, Chile.

Department of Applied Science and Technology, Politecnico di Torino, C.so Duca degli Abruzzi 24, 10129 Turin, Italy.

出版信息

ACS Appl Mater Interfaces. 2021 Mar 10;13(9):10719-10727. doi: 10.1021/acsami.0c20630. Epub 2021 Mar 1.

Abstract

This work reports the study of ZnO-based anodes for the photoelectrochemical regeneration of the oxidized form of nicotinamide adenine dinucleotide (NAD). The latter is the most important coenzyme for dehydrogenases. However, the high costs of NAD limit the use of such enzymes at the industrial level. The influence of the ZnO morphologies (flower-like, porous film, and nanowires), showing different surface area and crystallinity, was studied. The detection of diluted solutions (0.1 mM) of the reduced form of the coenzyme (NADH) was accomplished by the flower-like and the porous films, whereas concentrations greater than 20 mM were needed for the detection of NADH with nanowire-shaped ZnO-based electrodes. The photocatalytic activity of ZnO was reduced at increasing concentrations of NAD because part of the ultraviolet irradiation was absorbed by the coenzyme, reducing the photons available for the ZnO material. The higher electrochemical surface area of the flower-like film makes it suitable for the regeneration reaction. The illumination of the electrodes led to a significant increase on the NAD regeneration with respect to both the electrochemical oxidation in dark and the only photochemical reaction. The tests with formate dehydrogenase demonstrated that 94% of the regenerated NAD was enzymatically active.

摘要

这项工作研究了基于 ZnO 的阳极在光电化学再生氧化型烟酰胺腺嘌呤二核苷酸 (NAD) 中的应用。NAD 是脱氢酶最重要的辅酶。然而,NAD 的高成本限制了此类酶在工业水平上的应用。研究了不同形貌(花状、多孔膜和纳米线)的 ZnO 对其的影响,这些形貌具有不同的比表面积和结晶度。花状和多孔膜可以检测到稀释溶液(0.1mM)中的辅酶还原型(NADH),而对于纳米线状 ZnO 基电极,需要大于 20mM 的浓度才能检测到 NADH。随着 NAD 浓度的增加,ZnO 的光催化活性降低,因为辅酶部分吸收了紫外光,减少了可用于 ZnO 材料的光子。花状薄膜具有更高的电化学表面积,因此适合于再生反应。电极的光照导致 NAD 再生的显著增加,相对于黑暗中的电化学氧化和仅有的光化学反应而言。使用甲酸脱氢酶的测试表明,再生的 NAD 中 94%具有酶活性。

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