DNA折纸
控制重构
模块化设计
纳米技术
体素
纳米医学
DNA纳米技术
计算机科学
纳米材料
材料科学
计算机体系结构
DNA
纳米结构
嵌入式系统
化学
人工智能
纳米颗粒
生物化学
操作系统
作者
Minh Tri Luu,Jonathan F. Berengut,Jiahe Li,Jun Chen,Jasleen Singh,Kanako Coffi Dit Glieze,Matthew Turner,Karuna Skipper,Sreelakshmi Meppat,Hannah Fowler,William Close,Jonathan P. K. Doye,Ali Abbas,Shelley F. J. Wickham
出处
期刊:Science robotics
[American Association for the Advancement of Science]
日期:2024-11-27
卷期号:9 (96)
被引量:4
标识
DOI:10.1126/scirobotics.adp2309
摘要
In cells, proteins rapidly self-assemble into sophisticated nanomachines. Bioinspired self-assembly approaches, such as DNA origami, have been used to achieve complex three-dimensional (3D) nanostructures and devices. However, current synthetic systems are limited by low yields in hierarchical assembly and challenges in rapid and efficient reconfiguration between diverse structures. Here, we developed a modular system of DNA origami “voxels” with programmable 3D connections. We demonstrate multifunctional pools of up to 12 unique voxels that can assemble into many shapes, prototyping 50 structures. Programmable switching of local connections between flexible and rigid states achieved rapid and reversible reconfiguration of global structures in three dimensions. Multistep assembly pathways were then explored to increase the yield. Voxels were assembled via flexible chain intermediates into rigid structures, increasing yield up to 100-fold. We envision that foldable chains of DNA origami voxels can achieve increased complexity in reconfigurable nanomaterials, providing modular components for the assembly of nanorobotic systems with future applications in synthetic biology, assembly of inorganic materials, and nanomedicine.
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