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首页> 外文期刊>Nanoscale >Simultaneous enzyme mimicking and chemical reduction mechanisms for nanoceria as a bio-antioxidant: a catalytic model bridging computations and experiments for nanozymes
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Simultaneous enzyme mimicking and chemical reduction mechanisms for nanoceria as a bio-antioxidant: a catalytic model bridging computations and experiments for nanozymes

机译:同时酶模仿和化学减少nanoceria作为一个机制桥接bio-antioxidant:催化模型计算和实验nanozymes

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摘要

The bio-antioxidant ability of nanoceria has been mainly ascribed to its ability to mimic superoxide dismutase (SOD) and catalase (CAT), and its mechanisms are thought to be analogous to those of the natural enzymes. Accordingly, nanoceria has been called a nanozyme, a nanomaterial mimicking enzymes. Because they overlook the real structural features of nanoceria, these hypothetical mechanisms cannot explain the important antioxidant experiments of nanoceria and have little predictive power. We hereby study the O-2(-) and H2O2 scavenging mechanisms of nanoceria using first principles calculations, taking into account the role of oxygen vacancies that are practically abundant in nanoceria. The results reveal atomistic-level mechanisms responsible for the SOD and CAT mimetic activities of nanoceria. The newly created surface defect states in the electronic band structures of the shortly-lived intermediate species, called transient surface defect states (TSDSs), play critical roles in the enzyme mimetic catalysis and can serve as the bridge between computations and experiments at the atomistic level. The energy levels of TSDSs, which depend on the concentration and distribution of oxygen vacancies, determine whether the nanoceria is eligible for the catalysis. Besides the known enzyme mimicking mechanisms, the non-catalytic chemical reduction mechanisms are also responsible for the scavenging of O-2(-) and H2O2, in which nanoceria serves as a reducing agent rather than a catalyst. The chemical reduction pathways poison the active sites of nanoceria which serve to mimic SOD and thus deteriorate its SOD mimetic activity. The results provide guidance for the engineering of nanoceria for bio-antioxidant applications. In particular, the proposed catalytic model can be generalized for the screening and design of high-performance nanozymes based on semiconductor nanomaterials.
机译:nanoceria的bio-antioxidant能力主要归因于其模仿的能力超氧化物歧化酶(SOD)和过氧化氢酶(CAT)、被认为是类似于及其机制天然的酶。nanoceria被称为nanozyme,纳米材料模拟酶。忽视真正的结构特点nanoceria,这些假设的机制不能解释的重要抗氧化实验nanoceria和预测能力。在此研究0 2(-)和过氧化氢清除使用第一原理nanoceria机制计算,考虑的作用氧几乎丰富的空缺nanoceria。机制负责SOD和猫模仿nanoceria活动。创建在电子表面缺陷状态shortly-lived中间的带结构物种,被称为瞬态表面缺陷状态(TSDSs),酶发挥了关键作用模拟催化和可以作为桥梁计算和实验之间原子论的水平。依赖于浓度和哪一个氧气空位分布,确定nanoceria是否合格的催化。机制,非催化化学还原机制也负责清除的0 2(-)和过氧化氢,nanoceria作为还原剂,而不是一个催化剂。nanoceria的活跃的网站服务模拟SOD,从而恶化其SOD模拟活动。工程的bio-antioxidant nanoceria应用程序。催化模型的推广筛查和高性能的设计nanozymes基于半导体纳米材料。

著录项

  • 来源
    《Nanoscale》 |2019年第28期|13289-13299|共11页
  • 作者单位

    Jiangxi Normal Univ, Key Lab Funct Small Organ Mol, Minist Educ, Nanchang 330022, Jiangxi, Peoples R China;

    Natl Ctr Nanosci & Technol China, CAS Key Lab Biomed Effects Nanomat & Nanosafety, Beijing 100190, Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 英语
  • 中图分类 Online;
  • 关键词

    chemical reduction; Catalysis; nanoceria;

    机译:化学还原、催化、nanoceria;
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