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Paper Origami-Inspired Design and Actuation of DNA Nanomachines with Complex Motions

机译:复杂运动的纸折纸启发设计与DNA纳米槽的致动

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Significant progress in DNA nanotechnology has accelerated the development of molecular machines with functions like macroscale machines. However, the mobility of DNA self-assembled nanorobots is still dramatically limited due to challenges with designing and controlling nanoscale systems with many degrees of freedom. Here, an origami-inspired method to design transformable DNA nanomachines is presented. This approach integrates stiff panels formed by bundles of double-stranded DNA connected with foldable creases formed by single-stranded DNA. To demonstrate the method, a DNA version of the paper origami mechanism called a waterbomb base (WBB) consisting of six panels connected by six joints is constructed. This nanoscale WBB can follow four distinct motion paths to transform between five distinct configurations including a flat square, two triangles, a rectangle, and a fully compacted trapezoidal shape. To achieve this, the sequence specificity of DNA basepairing is leveraged for the selective actuation of joints and the ion-sensitivity of base-stacking interactions is employed for the flattening of joints. In addition, higher-order assembly of DNA WBBs into reconfigurable arrays is achieved. This work establishes a foundation for origami-inspired design for next generation synthetic molecular robots and reconfigurable nanomaterials enabling more complex and controllable motion.
机译:DNA纳米技术的显着进展加速了Macroscale机器等功能的分子机的开发。然而,由于设计和控制具有多种自由度的纳米级系统,DNA自组装纳米皿的迁移性仍然显着受到限制。这里,提出了一种设计可转化的DNA纳米载体的折纸启发方法。该方法通过与单链DNA形成的可折叠折痕连接的双链DNA束形成的刚性面板整合。为了证明该方法,构建了由六个关节连接的六个面板组成的纸折纸机构的DNA版本,由六个接头连接。该纳米级WBB可以遵循四个不同的运动路径,以在包括平方,两个三角形,矩形和完全压实的梯形形状的五个不同配置之间进行变换。为此,利用DNA座椅的序列特异性用于接头的选择性致动,基础堆叠相互作用的离子敏感性用于接头的平坦化。另外,实现了DNA WBB的高阶组装到可重新配置阵列中。这项工作为下一代合成分子机器人和可重新配置的纳米材料建立了折纸风格设计的基础,实现了更复杂和可控的运动。

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