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基于金属有机骨架的类氧化还原酶纳米酶的最新进展。

Recent progress of metal-organic framework-based nanozymes with oxidoreductase-like activity.

机构信息

College of Chemistry and Materials Engineering, Bohai University, Jinzhou, Liaoning Province, 121013, P. R. China.

出版信息

Analyst. 2024 Feb 26;149(5):1416-1435. doi: 10.1039/d3an01995k.

Abstract

Nanozymes, a class of synthetic nanomaterials possessing enzymatic catalytic properties, exhibit distinct advantages such as exceptional stability and cost-effectiveness. Among them, metal-organic framework (MOF)-based nanozymes have garnered significant attention due to their large specific surface area, tunable pore size and uniform structure. MOFs are porous crystalline materials bridged by inorganic metal ions/clusters and organic ligands, which hold immense potential in the fields of catalysis, sensors and drug carriers. The combination of MOFs with diverse nanomaterials gives rise to various types of MOF-based nanozyme, encompassing original MOFs, MOF-based nanozymes with chemical modifications, MOF-based composites and MOF derivatives. It is worth mentioning that the metal ions and organic ligands in MOFs are perfectly suited for designing oxidoreductase-like nanozymes. In this review, we intend to provide an overview of recent trends and progress in MOF-based nanozymes with oxidoreductase-like activity. Furthermore, the current obstacles and prospective outlook of MOF-based nanozymes are proposed and briefly discussed. This comprehensive analysis aims to facilitate progress in the development of novel MOF-based nanozymes with oxidoreductase-like activity while serving as a valuable reference for scientists engaged in related disciplines.

摘要

纳米酶是一类具有酶催化特性的合成纳米材料,具有稳定性好、成本低等优点。其中,基于金属-有机骨架(MOF)的纳米酶由于具有较大的比表面积、可调节的孔径和均匀的结构而受到广泛关注。MOFs 是由无机金属离子/簇和有机配体桥接而成的多孔晶体材料,在催化、传感器和药物载体等领域具有巨大的应用潜力。将 MOFs 与各种纳米材料结合,产生了各种类型的基于 MOF 的纳米酶,包括原始 MOFs、化学修饰的基于 MOF 的纳米酶、基于 MOF 的复合材料和 MOF 衍生物。值得一提的是,MOFs 中的金属离子和有机配体非常适合设计氧化还原酶样纳米酶。本文综述了具有氧化还原酶样活性的基于 MOF 的纳米酶的最新趋势和进展。此外,还提出并简要讨论了基于 MOF 的纳米酶目前存在的障碍和未来展望。希望通过全面分析,为开发具有氧化还原酶样活性的新型 MOF 基纳米酶提供思路,并为相关领域的科学家提供有价值的参考。

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