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揭示过氧化氢酶固有过氧化物酶模拟物对高浓度过氧化氢进行自验证检测时普遍被忽视的共底物效应。

Unveiling Generally-ignored Co-substrate Effect of Catalase-inherent Peroxidase Mimic for Self-verifiable Detection of High-concentration Hydrogen Peroxide.

作者信息

Hou Haiwei, Jia Weijuan, Zhang Aoxue, Su Minyang, Bu Yazhong, Liu Lan, Du Baoji

机构信息

Institute of Medical Engineering, Department of Biophysics, School of Basic Medical Sciences, Health Science Center, Xi'an Jiaotong University, Xi'an, 710061, China.

College of Biological Science and Engineering, Fuzhou University, Fuzhou, Fujian, 350108, China.

出版信息

Small Methods. 2025 Jan;9(1):e2400847. doi: 10.1002/smtd.202400847. Epub 2024 Sep 2.

Abstract

One nanoparticle possessing both peroxidase (POD) and catalase (CAT) activities is a prevalent co-substrate nanozyme system, distinct from the extensively researched cascade nanozyme system. During the sensing of hydrogen peroxide by POD, the impact of CAT is actually ignored in most studies. In this study, the CAT effect on hydrogen peroxide detection is thoroughly investigated based on POD catalysis by finely tuning the relative activity of POD and CAT. It is discovered that the CAT effect can be changed by delaying the injection of chromogenic substrate after adding hydrogen peroxide and that the linear range grows with the delayed time. Then, a theoretical mechanism showed that the time-delay mediated CAT effect magnification does not change the V, but it causes K to linearly increase with delayed time, consistent with the experiment results. Furthermore, the detection of high concentrations of hydrogen peroxide is successfully realized in contact lens care solutions by utilizing time-delay-mediated POD/CAT nanozyme. On the other hand, its linear range-tunable characteristic is used to produce multiple standard curves, then enabled self-verifying hydrogen peroxide detection. Overall, this work investigates the role of CAT in CAT-inherent POD nanozymes both theoretically and experimentally, and confirms POD/CAT nanozyme's priority in developing high-performance sensors.

摘要

一种同时具有过氧化物酶(POD)和过氧化氢酶(CAT)活性的纳米颗粒是一种普遍存在的共底物纳米酶体系,这与广泛研究的级联纳米酶体系不同。在POD对过氧化氢的传感过程中,大多数研究实际上忽略了CAT的影响。在本研究中,通过精细调节POD和CAT的相对活性,基于POD催化作用深入研究了CAT对过氧化氢检测的影响。研究发现,在加入过氧化氢后延迟注入显色底物可以改变CAT效应,并且线性范围会随着延迟时间的增加而增大。然后,一种理论机制表明,时间延迟介导的CAT效应放大不会改变V,但会导致K随着延迟时间线性增加,这与实验结果一致。此外,通过利用时间延迟介导的POD/CAT纳米酶,成功实现了在隐形眼镜护理溶液中对高浓度过氧化氢的检测。另一方面,利用其线性范围可调特性生成多条标准曲线,从而实现了过氧化氢检测的自我验证。总体而言,这项工作从理论和实验两方面研究了CAT在固有CAT的POD纳米酶中的作用,并证实了POD/CAT纳米酶在开发高性能传感器方面的优势。

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