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由表面活性剂胶束引导的高度对称的超小无机笼的自组装。

Self-assembly of highly symmetrical, ultrasmall inorganic cages directed by surfactant micelles.

机构信息

Department of Materials Science and Engineering, Cornell University, Ithaca, NY, USA.

School of Electrical and Computer Engineering, Cornell University, Ithaca, NY, USA.

出版信息

Nature. 2018 Jun;558(7711):577-580. doi: 10.1038/s41586-018-0221-0. Epub 2018 Jun 20.

Abstract

Nanometre-sized objects with highly symmetrical, cage-like polyhedral shapes, often with icosahedral symmetry, have recently been assembled from DNA, RNA or proteins for applications in biology and medicine. These achievements relied on advances in the development of programmable self-assembling biological materials, and on rapidly developing techniques for generating three-dimensional (3D) reconstructions from cryo-electron microscopy images of single particles, which provide high-resolution structural characterization of biological complexes. Such single-particle 3D reconstruction approaches have not yet been successfully applied to the identification of synthetic inorganic nanomaterials with highly symmetrical cage-like shapes. Here, however, using a combination of cryo-electron microscopy and single-particle 3D reconstruction, we suggest the existence of isolated ultrasmall (less than 10 nm) silica cages ('silicages') with dodecahedral structure. We propose that such highly symmetrical, self-assembled cages form through the arrangement of primary silica clusters in aqueous solutions on the surface of oppositely charged surfactant micelles. This discovery paves the way for nanoscale cages made from silica and other inorganic materials to be used as building blocks for a wide range of advanced functional-materials applications.

摘要

具有高度对称、笼状多面体形状的纳米级物体,通常具有二十面体对称性,最近已通过 DNA、RNA 或蛋白质进行组装,用于生物学和医学领域。这些成就依赖于可编程自组装生物材料的发展进步,以及从单颗粒冷冻电子显微镜图像生成三维(3D)重建的快速发展技术,这些技术为生物复合物提供了高分辨率的结构特征。然而,此类单颗粒 3D 重建方法尚未成功应用于具有高度对称笼状形状的合成无机纳米材料的鉴定。在这里,我们使用冷冻电子显微镜和单颗粒 3D 重建的组合,提出了存在孤立的超小(小于 10nm)具有十二面体结构的二氧化硅笼(“硅笼”)的可能性。我们提出,通过在带相反电荷的表面活性剂胶束上的水溶液中排列初级二氧化硅簇,可以形成这种高度对称的自组装笼。这一发现为使用二氧化硅和其他无机材料制成的纳米级笼作为各种先进功能材料应用的构建块铺平了道路。

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