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具有过氧化物酶样活性的单原子纳米酶:综述。

Single-atom nanozymes with peroxidase-like activity: A review.

机构信息

Department of Chemistry, National University of Singapore, 3 Science Drive 3, Singapore, 117543, Singapore; Department of Chemistry, Faculty of Science, Ain Shams University, Abbassia, Cairo, 11566, Egypt.

Department of Chemistry, Faculty of Science, University of Allahabad, Prayagraj, Uttar Pradesh, 211002, India.

出版信息

Chemosphere. 2024 Jan;346:140557. doi: 10.1016/j.chemosphere.2023.140557. Epub 2023 Oct 28.

Abstract

Single-atom nanozymes (SANs) are nanomaterials-based nanozymes with atomically dispersed enzyme-like active sites. SANs offer improved as well as tunable catalytic activity. The creation of extremely effective SANs and their potential uses have piqued researchers' curiosity due to their advantages of cheap cost, variable catalytic activity, high stability, and large-scale production. Furthermore, SANs with uniformly distributed active centers and definite coordination structures offer a distinctive opportunity to investigate the structure-activity correlation and control the geometric and electrical features of metal centers. SANs have been extensively explored in photo-, thermal-, and electro-catalysis. However, SANs suffer from the following disadvantages, such as efficiency, non-mimicking of the 3-D complexity of natural enzymes, limited and narrow range of artificial SANs, and biosafety aspects. Among a quite limited range of artificial SANs, the peroxidase action of SANs has attracted significant research attention in the last five years with the aim of producing reactive oxygen species for use in cancer therapy, and water treatment among many other applications. In this review, we explore the recent progress of different SANs as peroxidase mimics, the role of the metal center in enzymatic activity, possible prospects, and underlying limitations in real-time applications.

摘要

单原子纳米酶(SANs)是基于纳米材料的纳米酶,具有原子分散的类酶活性位点。SANs 提供了改进的和可调的催化活性。由于其成本低廉、催化活性可调、稳定性高、大规模生产等优点,极其有效的 SANs 的创造及其潜在用途引起了研究人员的兴趣。此外,具有均匀分布的活性中心和明确配位结构的 SANs 为研究结构-活性关系和控制金属中心的几何和电学特性提供了独特的机会。SANs 在光、热和电催化中得到了广泛的研究。然而,SANs 存在以下缺点,例如效率低、不能模拟天然酶的 3D 复杂性、人工 SANs 的范围有限且狭窄,以及生物安全性方面。在相当有限的人工 SANs 范围内,过去五年中,SANs 的过氧化物酶作用引起了人们的极大关注,目的是产生用于癌症治疗和水处理等多种应用的活性氧。在这篇综述中,我们探讨了不同 SANs 作为过氧化物酶模拟物的最新进展、金属中心在酶活性中的作用、可能的前景以及实时应用中的潜在局限性。

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