Biomedical applications of metal-organic framework (MOF)-based nano-enzymes

Natural enzymes are highly specific biocatalysts that can selectively catalyse specific biological reactions. However, the high preparation cost and easy deactivation of natural enzymes limit their practical applications. In the past ten years, nano-enzymes have been developed rapidly because of the...

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Veröffentlicht in:New journal of chemistry 2021-11, Vol.45 (45), p.2987-21
Hauptverfasser: Qiu, Yuzhi, Tan, Guijian, Fang, Yuqian, Liu, Si, Zhou, Yubin, Kumar, Abhinav, Trivedi, Manoj, Liu, Dong, Liu, Jianqiang
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container_end_page 21
container_issue 45
container_start_page 2987
container_title New journal of chemistry
container_volume 45
creator Qiu, Yuzhi
Tan, Guijian
Fang, Yuqian
Liu, Si
Zhou, Yubin
Kumar, Abhinav
Trivedi, Manoj
Liu, Dong
Liu, Jianqiang
description Natural enzymes are highly specific biocatalysts that can selectively catalyse specific biological reactions. However, the high preparation cost and easy deactivation of natural enzymes limit their practical applications. In the past ten years, nano-enzymes have been developed rapidly because of their excellent physical and chemical properties, low cost, high stability and easy storage, and can be used as a bridge to natural enzymes. These are a class of enzyme-like nanomaterials, which have some similarities with natural enzymes in terms of their total size, shape and surface charge. They themselves can simulate the bionic catalytic function of enzymes through the catalytic activity of inorganic materials. Metal-organic frameworks (MOFs) and their derivatives are expected to be substitutes for conventional enzymes in enzymatic reactions, and nano-enzymes have shown potential in the field of biomedicine, such as in antimicrobial drugs, biological detection and cancer treatment. In this review, the various types of MOF-derived nano-enzymes and the activities of corresponding simulated enzymes are summarized, and the latest applications of MOF-derived nano-enzymes in biosensing, as antibacterial compounds and in cancer treatment are mainly introduced. In addition, the development prospects of nano-enzymes is introduced in order to provide new ideas for the design and applications of nano-enzymes in the future. In the present review, the types and activities of nanometer-sized enzymes are summarized, with recent progress of nanometer-sized enzymes in the field of biomedical detection.
doi_str_mv 10.1039/d1nj04045f
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However, the high preparation cost and easy deactivation of natural enzymes limit their practical applications. In the past ten years, nano-enzymes have been developed rapidly because of their excellent physical and chemical properties, low cost, high stability and easy storage, and can be used as a bridge to natural enzymes. These are a class of enzyme-like nanomaterials, which have some similarities with natural enzymes in terms of their total size, shape and surface charge. They themselves can simulate the bionic catalytic function of enzymes through the catalytic activity of inorganic materials. Metal-organic frameworks (MOFs) and their derivatives are expected to be substitutes for conventional enzymes in enzymatic reactions, and nano-enzymes have shown potential in the field of biomedicine, such as in antimicrobial drugs, biological detection and cancer treatment. In this review, the various types of MOF-derived nano-enzymes and the activities of corresponding simulated enzymes are summarized, and the latest applications of MOF-derived nano-enzymes in biosensing, as antibacterial compounds and in cancer treatment are mainly introduced. In addition, the development prospects of nano-enzymes is introduced in order to provide new ideas for the design and applications of nano-enzymes in the future. 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source Royal Society Of Chemistry Journals 2008-; Alma/SFX Local Collection
subjects Antibacterial materials
Biomedical materials
Bionics
Cancer
Cancer therapies
Catalytic activity
Chemical properties
Enzymes
Inorganic materials
Metal-organic frameworks
Nanomaterials
Surface charge
title Biomedical applications of metal-organic framework (MOF)-based nano-enzymes
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