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金属有机框架的最新生物进展。

Recent Bio-Advances in Metal-Organic Frameworks.

机构信息

Department of Chemistry, School of Life Sciences, University of Sussex, Brighton BN1 9QJ, UK.

出版信息

Molecules. 2020 Mar 12;25(6):1291. doi: 10.3390/molecules25061291.

DOI:10.3390/molecules25061291
PMID:32178399
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7144006/
Abstract

Metal-organic frameworks (MOFs) have found uses in adsorption, catalysis, gas storage and other industrial applications. Metal Biomolecule Frameworks (bioMOFs) represent an overlap between inorganic, material and medicinal sciences, utilising the porous frameworks for biologically relevant purposes. This review details advances in bioMOFs, looking at the synthesis, properties and applications of both bioinspired materials and MOFs used for bioapplications, such as drug delivery, imaging and catalysis, with a focus on examples from the last five years.

摘要

金属-有机骨架(MOFs)在吸附、催化、气体储存和其他工业应用中得到了应用。金属生物分子骨架(bioMOFs)代表了无机、材料和医学科学的交叉,利用多孔骨架实现与生物学相关的目的。本综述详细介绍了 bioMOFs 的进展,探讨了生物启发材料和用于生物应用的 MOFs 的合成、性质和应用,重点介绍了过去五年的例子,如药物输送、成像和催化。

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ACS Biomater Sci Eng. 2018 Dec 10;4(12):4095-4103. doi: 10.1021/acsbiomaterials.8b00957. Epub 2018 Oct 15.
3
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4
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RSC Adv. 2024 Sep 23;14(41):30201-30229. doi: 10.1039/d4ra04441j. eCollection 2024 Sep 18.
5
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RSC Adv. 2024 Sep 3;14(38):27575-27607. doi: 10.1039/d4ra05183a. eCollection 2024 Aug 29.
6
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J Mater Chem B. 2017 Apr 14;5(14):2560-2573. doi: 10.1039/c6tb03217f. Epub 2017 Feb 27.
4
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5
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6
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7
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