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光激活纳米酶:催化机制与应用。

Light-activated nanozymes: catalytic mechanisms and applications.

机构信息

Department of Chemistry, Waterloo Institute for Nanotechnology, University of Waterloo, Waterloo, Ontario N2L 3G1, Canada.

出版信息

Nanoscale. 2020 Feb 7;12(5):2914-2923. doi: 10.1039/c9nr10822j. Epub 2020 Jan 29.

Abstract

Recently, nanozymes have attracted enormous interest for their high stability, low cost and various enzyme-like activities. In nature, many biochemical reactions require light. Recently, introducing light to nanozymes has also been reported, especially for photosensitized oxygen activation. Compared to normal nanozymes, light-activated nanozymes possess several advantages including light-regulated activity, using molecular oxygen as a green oxidant, and often higher activity can be achieved. Herein, we summarize light-activated nanozymes, starting from their photophysical processes and identification of reactive oxygen species (ROS). Although the types of light-activated nanozymes are still quite limited and cannot yet mimic the same reactions as natural photo-related enzymes, they have widened the range of nanozymes. A few specific applications are highlighted, including sensing, chemical synthesis, degradation of organic pollutants, and cleavage and repair of DNA. Finally, a few future research opportunities are discussed.

摘要

近年来,纳米酶因其高稳定性、低成本和多种酶样活性而引起了极大的关注。在自然界中,许多生化反应都需要光。最近,人们也报道了将光引入纳米酶的情况,特别是用于光敏氧激活。与普通纳米酶相比,光激活纳米酶具有一些优势,包括光调控活性、使用分子氧作为绿色氧化剂,并且通常可以实现更高的活性。在此,我们从光物理过程和活性氧(ROS)的鉴定开始,总结光激活纳米酶。尽管光激活纳米酶的类型仍然相当有限,并且还不能模拟天然光相关酶的相同反应,但它们拓宽了纳米酶的范围。本文重点介绍了一些特定的应用,包括传感、化学合成、有机污染物的降解以及 DNA 的切割和修复。最后,讨论了一些未来的研究机会。

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