基于 CuSeNP 纳米酶的儿茶酚氧化酶模拟酶活性的 Cr(III) 价态荧光检测。

IF 5.3 2区 化学 Q1 CHEMISTRY, ANALYTICAL Microchimica Acta Pub Date : 2024-07-30 DOI:10.1007/s00604-024-06576-x
Ya Ruan, Qiulan Li, Dezhi Yang, Yaling Yang
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引用次数: 0

摘要

以组氨酸、乙二胺和硒酸钠为前驱体,采用一步微波消解法合成了硒化铜纳米粒子(CuSeNP)。所制备的 CuSeNPs 具有优异的儿茶酚氧化酶模拟酶和过氧化氢酶(CAT)类活性。多巴胺(DA)可被 CuSeNPs 用 H2O2 氧化成氨基铬,中间产物氨基铬可进一步与 α-萘酚反应生成高荧光衍生物。实验证实,Cr(III) 可吸附在 CuSeNPs 表面,抑制反应体系中半醌自由基的产生,从而抑制了 CuSeNPs 的催化活性。系统研究了 CuSeNPs 的检测机理、动力学和催化特性。结果是建立了一种新型的荧光法检测铬(III)。研究结果令人满意。这显示了开发有效、可靠的荧光检测方法以保护食品安全的明显潜力。
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Fluorescence detection of valence speciation of Cr(III) based on the catechol oxidase mimic enzyme activity of CuSeNP nanozymes.

Copper selenide nanoparticles (CuSeNP) were synthesized using histidine, ethylenediamine, and sodium selenate as precursors by one-step microwave digestion methods. The as-prepared CuSeNPs exhibit excellent catechol oxidase mimic enzyme and catalase (CAT)-like activities. Dopamine (DA) can be oxidized to aminochrome with H2O2 by CuSeNPs, and the intermediate product aminochrome can further react with α-naphthol to yield a highly fluorescent derivative. It was confirmed that Cr(III) could adsorb on the surface of CuSeNPs and inhibit the production of semiquinone radicals in the reaction system, and the catalytic activity of CuSeNPs was inhibited. The detection mechanisms, kinetics, and catalytic properties of CuSeNPs were systematically investigated. As a result, a novel fluorescence method for the assay of Cr(III) was established. The feasibility of CuSeNP nanozyme in detecting speciation Cr(III) in food samples was explored with satisfactory results. It showed the obvious potential for developing effective and dependable fluorescent detection method for protecting food safety.

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来源期刊
Microchimica Acta
Microchimica Acta 化学-分析化学
CiteScore
9.80
自引率
5.30%
发文量
410
审稿时长
2.7 months
期刊介绍: As a peer-reviewed journal for analytical sciences and technologies on the micro- and nanoscale, Microchimica Acta has established itself as a premier forum for truly novel approaches in chemical and biochemical analysis. Coverage includes methods and devices that provide expedient solutions to the most contemporary demands in this area. Examples are point-of-care technologies, wearable (bio)sensors, in-vivo-monitoring, micro/nanomotors and materials based on synthetic biology as well as biomedical imaging and targeting.
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