Noble metal-enhanced Au@CuO heterostructure with multienzyme-mimicking activities for colorimetric detection of tannic acid

IF 3.6 3区 化学 Q2 CHEMISTRY, ANALYTICAL Analyst Pub Date : 2024-07-31 DOI:10.1039/d4an01013b
Xin Kang, Yiping Ren, Jin Wang, Xu Zhu, Ning Xin, Fenglei Gao, Dehong Yu
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Abstract

Nanozymes, serving as synthetic alternatives to natural enzymes, offer several benefits including cost-effectiveness, enzyme-like catalytic abilities, enhanced stability, adjustable catalytic activity, easy recyclability, mild reaction conditions, and environment friendly. Nonetheless, the ongoing quest to develop nanozymes with enhanced activity and to delve into the catalytic mechanism remains a challenge. In our research, we effectively developed Au@CuO nanocomposites (Au@CuO Nc), replicating the functions of four enzymes found in nature: peroxidase (POD), catalase (CAT), glutathione peroxidase (GPx), and oxidase (OXD). The catalytic efficiency of Au@CuO Nc for TMB oxidation (oxTMB) was approximately 4.8 times greater than that of plain Cu2O cubes, attributed to the synergistic catalytic impact between the Au element and Cu2O within Au@CuO Nc. Mechanistic studies revealed that the novel Au@CuO Nc nanozyme greatly enhances the decomposition of H2O2 to the reactive oxygen species (ROS) intermediates (•OH, •O2− and 1O2), resulting in increased POD-like activity of the single-component Cu2O cubes. When an antioxidant like TA was added to the chromogenic system, it converted oxTMB into a colorless form of TMB, enabling further evaluation of TA. Hence, a colorimetric sensor was developed for the rapid and precise quantitative measurement of TA, demonstrating strong linearity between 0.3-2.4 μM and featuring a low detection threshold of 0.25 μM. Moreover, this sensor was effectively utilized for the assessment of TA in actual tea sample. This work innovatively proposes a simplified and reliable strategy for the advanced design of highly effective Cu-based nanozymes, enhancing enzyme-like reactions for simultaneous, on-site colorimetric probing of antioxidants.
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具有多酶模拟活性的贵金属增强型 Au@CuO 异质结构用于单宁酸的比色检测
作为天然酶的合成替代品,纳米酶具有多种优势,包括成本效益高、具有类似酶的催化能力、稳定性强、催化活性可调、易于回收利用、反应条件温和以及环境友好。然而,开发具有更高活性的纳米酶并深入研究其催化机理仍是一项挑战。在我们的研究中,我们有效地开发了 Au@CuO 纳米复合材料(Au@CuO Nc),复制了自然界中四种酶的功能:过氧化物酶(POD)、过氧化氢酶(CAT)、谷胱甘肽过氧化物酶(GPx)和氧化酶(OXD)。Au@CuO Nc 对 TMB 氧化(oxTMB)的催化效率约为普通 Cu2O 立方体的 4.8 倍,这归因于 Au@CuO Nc 中的金元素和 Cu2O 之间的协同催化作用。机理研究表明,新型 Au@CuO Nc 纳米酶大大提高了 H2O2 分解为活性氧(ROS)中间产物(-OH、-O2- 和 1O2)的能力,从而提高了单组分 Cu2O 立方体的 POD 类活性。当在发色系统中加入 TA 等抗氧化剂时,它会将 oxTMB 转化为无色形式的 TMB,从而能够进一步评估 TA。因此,我们开发出了一种用于快速、精确地定量测量 TA 的比色传感器,其线性范围为 0.3-2.4 μM,检测阈值低至 0.25 μM。此外,该传感器还被有效地用于实际茶叶样品中 TA 的评估。这项工作创新性地为高效铜基纳米酶的先进设计提出了一种简化而可靠的策略,可增强类似酶的反应,从而实现对抗氧化剂的同步、现场比色检测。
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来源期刊
Analyst
Analyst 化学-分析化学
CiteScore
7.80
自引率
4.80%
发文量
636
审稿时长
1.9 months
期刊介绍: The home of premier fundamental discoveries, inventions and applications in the analytical and bioanalytical sciences
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