2023年第50卷第11期目录
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封面故事:随着对纳米酶活性位点和特性更加深入的研究,将纳米酶的活性位点精确到具有明确
配位结构的几个或几十个原子,可以在原子水平调控设计出具有更高类酶活性和更强选择性的纳
米酶。其中,单原子纳米酶因具有与天然酶相似的催化反应活性中心,且配位环境简单,催化活
性高,类酶活性丰富,表现出巨大的研究和应用前景。该文采用原位锚定策略,借助载体中富含
的N原子和金属原子之间的金属-载体相互作用制备了高负载Cu单原子纳米酶,系统研究了金属负
载量对单原子结构和活性的影响,并将其与传统的金属有机框架锚定法制备的低负载Cu单原子纳
米酶的类酶活性进行定量对比。结果表明该研究制备的高负载单原子纳米酶具有更高的模拟过氧
化物酶和超氧化物歧化酶的生物催化活性,并在多种类酶活性中表现出催化选择性,为高负载单
原子纳米酶的制备以及类酶活性研究奠定了基础。
(陈心珠,刘晓宇,张少芳,穆晓宇,张晓东. 高负载Cu单原子纳米酶的制备和类酶活性研究,本期第2684~2696 页)
Cover Story:Objective Recently, single-atom nanozyme (SAN) has been widely studied due to its high atom utilization and various enzyme-mimicking activities. However, most of the SANs present low metal-atom densities, which restrict their further application and development. The aim of this study is to prepare SAN with high atomic loading and to systematically investigate its enzyme-like activities, in the hope of providing ideas for the preparation of highly loaded SANs and theoretical support for the application of SANs in a wider range of fields.Methods In this work, high-loading Cu SAN with metal contents up to 7.66% (w/w) was prepared using in-situ anchoring strategy. The metal salt precursors were confined into the carbon carriers consisting of aminated graphene quantum dots, and then urea was introduced to provide a rich N-coordination environment for Cu atoms. The chemical bond between Cu atoms and the carrier was further stabilized by pyrolysis under the protection of Ar gas. The low-loading Cu SAN used for comparison was prepared according to traditional metal organic framework (MOFs) anchoring method. Then, the peroxidase (POD)-like, oxidase (OXD)-like and superoxide dismutase (SOD)-like catalytic activities of high/low-loading Cu SAN were tested and compared with 3,3",5,5"- tetramethylbenzidine (TMB) and nitrotetrazolium blue chloride (NBT) as chromogenic substrates. The catalase (CAT)-like catalytic activities of high/low-loading Cu SAN were assessed by monitoring the decomposition rate of hydrogen peroxide (H2O2).Results The results suggested that the high-loading Cu SAN possesses the improved catalytic activity and selectivity towards POD-like and SOD-like activities, showing 3.4-fold and 8.88-fold higher than low-loading Cu SAN, respectively.Conclusion This work provides a strategy to synthesize SAN with high metal-atom density. And the results show that atomic regulation can be achieved by adjusting preparation methods which assist to obtain SAN with different catalytic selectivity, and lay foundation for the development and application of SAN in detection and sensing, diseases treatment and environmental protection.
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综述与专论
研究报告
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