Department of Chemistry, Capital Normal University, Beijing 100048, China.
ACS Appl Mater Interfaces. 2020 Jul 1;12(26):29631-29640. doi: 10.1021/acsami.0c05667. Epub 2020 Jun 18.
Due to its unique structure and high porosity, metal-organic frameworks (MOFs) can act not only as nanozyme materials but also as carriers to encapsulate natural enzymes and thus have received extensive attention in recent years. However, a few research studies have been conducted to investigate MOF as a template to generate and tune nanozymes in the structure and performance. In this work, the "raisin pudding"-type ZIF-67/CuCoO nanospheres (ZIF-67/CuCoO NSs) were obtained by rationally regulating the weight ratio of ZIF-67 and Cu(NO) in the synthesis process. Here, ZIF-67 not only acts as a template but also provides a cobalt source for the synthesis of cobalt copper oxide on the surface of ZIF-67/CuCoO NSs with multiple enzyme-like activities. The ZIF-67/CuCoO NSs can mimic four kinds of enzymes with peroxidase-like, glutathione peroxidase-like, superoxide dismutase-like, and laccase-like activities. Based on its laccase-like activity, an online electrochemical system for continuous monitoring of 3,4-dihydroxyphenylacetic acid with good linearity in the range of 0.5-20 μM and a detection limit of 0.15 μM was established. Furthermore, the alteration of DOPAC in the brain microdialysate before and after ischemia of the rats' brain was also successfully recorded. This work not only raises a new idea for the synthesis of nanozyme materials with multiple enzyme activities but also provides a new solution for the detection of neurotransmitters in living brains.
由于其独特的结构和高孔隙率,金属有机骨架(MOFs)不仅可以作为纳米酶材料,还可以作为封装天然酶的载体,因此近年来受到了广泛关注。然而,只有少数研究探讨了 MOF 作为模板在结构和性能上生成和调控纳米酶。在这项工作中,通过合理调节 ZIF-67 和 Cu(NO)在合成过程中的重量比,得到了“葡萄干布丁”型 ZIF-67/CuCoO 纳米球(ZIF-67/CuCoO NSs)。在这里,ZIF-67 不仅充当模板,还为 ZIF-67/CuCoO NSs 表面上合成具有多种酶样活性的钴铜氧化物提供了钴源。ZIF-67/CuCoO NSs 可以模拟过氧化物酶样、谷胱甘肽过氧化物酶样、超氧化物歧化酶样和漆酶样的 4 种酶。基于其漆酶样活性,建立了一种在线电化学系统,用于连续监测 3,4-二羟基苯乙酸,其线性范围为 0.5-20 μM,检测限为 0.15 μM。此外,还成功记录了大鼠脑缺血前后脑微透析液中 DOPAC 的变化。这项工作不仅为具有多种酶活性的纳米酶材料的合成提出了新的思路,也为活体大脑中神经递质的检测提供了新的解决方案。