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能够进行顶点突出转变的线框DNA折纸结构。

Wireframe DNA Origami Capable of Vertex-protruding Transformation.

作者信息

Ochi Yosuke, Kato Wataru, Tsutsui Yoichi, Gomibuchi Yuki, Tominaga Daichi, Sakai Keisuke, Araki Takeshi, Yoshitake Suzunosuke, Yasunaga Takuo, Morimoto Yusuke V, Maeda Kazuhiro, Taira Junichi, Sato Yusuke

机构信息

Department of Bioscience and Bioinformatics, Kyushu Institute of Technology, 680-4 Kawazu, Iizuka, Fukuoka, 820-8502, Japan.

Department of Physics and Information Technology, Kyushu Institute of Technology, 680-4 Kawazu, Iizuka, Fukuoka, 820-8502, Japan.

出版信息

Chembiochem. 2025 May 27;26(10):e202401071. doi: 10.1002/cbic.202401071. Epub 2025 Mar 12.

Abstract

Regulating dynamic behavior of the designed molecular structures provides a foundation for the construction of functional molecular devices. DNA nanotechnology allows conformational changes in two-dimensional and three-dimensional DNA origami nanostructures by introducing flexibility between the faces of the structures. However, dynamic transformations in wireframe DNA origami, composed solely of vertices and edges, remain challenging due to vertex-specific flexibility. We report a wireframe DNA origami capable of vertex-protruding transformation between the open- and closed-form with eight protruding vertices. This reversible transformation is driven by DNA hybridization and a toehold-mediated strand displacement reaction. Spacer strands between vertices and edges were designed to introduce flexibility. Coarse-grained molecular dynamics simulations demonstrated that a longer spacer increases conformational flexibility and can achieve the narrow angles required for the vertex-protruding transformation. The experimental results showed the successful assembly of the open-form structure under optimized salt conditions, as visualized through transmission electron microscopy images. Furthermore, the transformation between the open- and closed-form structures was demonstrated by the sequential addition of signal strands. This vertex-protruding transformation mechanism will expand the design approach of dynamic DNA nanostructures and help develop functional molecular devices for artificial molecular systems.

摘要

调控所设计分子结构的动态行为为构建功能性分子器件奠定了基础。DNA纳米技术通过在结构面之间引入灵活性,使二维和三维DNA折纸纳米结构发生构象变化。然而,仅由顶点和边组成的线框DNA折纸中的动态转变,由于顶点特异性灵活性,仍然具有挑战性。我们报道了一种线框DNA折纸,它能够通过八个突出顶点在开放形式和封闭形式之间进行顶点突出转变。这种可逆转变由DNA杂交和一个引发链介导的链置换反应驱动。顶点和边之间的间隔链被设计用来引入灵活性。粗粒度分子动力学模拟表明,更长的间隔链会增加构象灵活性,并能实现顶点突出转变所需的窄角度。实验结果表明,在优化的盐条件下,开放形式结构成功组装,这通过透射电子显微镜图像得以可视化。此外,通过依次添加信号链证明了开放形式和封闭形式结构之间的转变。这种顶点突出转变机制将扩展动态DNA纳米结构设计方法,并有助于开发用于人工分子系统的功能性分子器件。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9b83/12118332/f12d8eb26407/CBIC-26-e202401071-g003.jpg

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