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胶体晶体工程与金属-有机骨架纳米粒子和 DNA。

Colloidal crystal engineering with metal-organic framework nanoparticles and DNA.

机构信息

Department of Chemistry, Northwestern University, 2145 Sheridan Road, Evanston, IL, 60208, USA.

International Institute for Nanotechnology, 2145 Sheridan Road, Evanston, IL, 60208, USA.

出版信息

Nat Commun. 2020 May 19;11(1):2495. doi: 10.1038/s41467-020-16339-w.

Abstract

Colloidal crystal engineering with nucleic acid-modified nanoparticles is a powerful way for preparing 3D superlattices, which may be useful in many areas, including catalysis, sensing, and photonics. To date, the building blocks studied have been primarily based upon metals, metal oxides, chalcogenide semiconductors, and proteins. Here, we show that metal-organic framework nanoparticles (MOF NPs) densely functionalized with oligonucleotides can be programmed to crystallize into a diverse set of superlattices with well-defined crystal symmetries and compositions. Electron microscopy and small-angle X-ray scattering characterization confirm the formation of single-component MOF superlattices, binary MOF-Au single crystals, and two-dimensional MOF nanorod assemblies. Importantly, DNA-modified porphyrinic MOF nanorods (PCN-222) were assembled into 2D superlattices and found to be catalytically active for the photooxidation of 2-chloroethyl ethyl sulfide (CEES, a chemical warfare simulant of mustard gas). Taken together, these new materials and methods provide access to colloidal crystals that incorporate particles with the well-established designer properties of MOFs and, therefore, increase the scope of possibilities for colloidal crystal engineering with DNA.

摘要

核酸修饰纳米粒子的胶体晶体工程是制备三维超晶格的一种有力方法,可能在催化、传感和光子学等多个领域都有应用。迄今为止,所研究的构建基块主要基于金属、金属氧化物、硫属半导体和蛋白质。在这里,我们展示了可以对寡核苷酸进行密集功能化的金属有机骨架纳米颗粒 (MOF NPs) 进行编程,使其结晶形成具有明确定晶对称性和组成的各种超晶格。电子显微镜和小角 X 射线散射表征证实了单组分 MOF 超晶格、MOF-Au 单晶和二维 MOF 纳米棒组装体的形成。重要的是,经过 DNA 修饰的卟啉 MOF 纳米棒 (PCN-222) 被组装成二维超晶格,并被发现对 2-氯乙基乙基硫醚 (CEES,芥子气的化学战模拟物) 的光氧化具有催化活性。总之,这些新材料和方法提供了一种途径,可以获得胶体晶体,其中包含具有 MOF 既定设计特性的颗粒,因此增加了使用 DNA 进行胶体晶体工程的可能性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d5c0/7237412/7d4c147214cd/41467_2020_16339_Fig1_HTML.jpg

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