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DNA origami tubes with reconfigurable cross-sections

机译:具有可重构横截面的 DNA 折纸管

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Structural DNA nanotechnology has enabled the design and construction of complex nanoscale structures with precise geometry and programmable dynamic and mechanical properties. Recent efforts have led to major advances in the capacity to actuate shape changes of DNA origami devices and incorporate DNA origami into larger assemblies, which open the prospect of using DNA to design shape-morphing assemblies as components of micro-scale reconfigurable or sensing materials. Indeed, a few studies have constructed higher order assemblies with reconfigurable devices; however, these demonstrations have utilized structures with relatively simple motion, primarily hinges that open and close. To advance the shape changing capabilities of DNA origami assemblies, we developed a multi-component DNA origami 6-bar mechanism that can be reconfigured into various shapes and can be incorporated into larger assemblies while maintaining capabilities for a variety of shape transformations. We demonstrate the folding of the 6-bar mechanism into four different shapes and demonstrate multiple transitions between these shapes. We also studied the shape preferences of the 6-bar mechanism in competitive folding reactions to gain insight into the relative free energies of the shapes. Furthermore, we polymerized the 6-bar mechanism into tubes with various cross-sections, defined by the shape of the individual mechanism, and we demonstrate the ability to change the shape of the tube cross-section. This expansion of current single-device reconfiguration to higher order scales provides a foundation for nano to micron scale DNA nanotechnology applications such as biosensing or materials with tunable properties.
机译:DNA纳米技术使结构设计和施工复杂的纳米级与精确的几何结构和可编程的特点动态力学性能。导致重大的进步的能力开动的DNA折纸装置和形状的变化DNA折纸合并到更大的组件,开放使用DNA设计的前景shape-morphing组件的组件微尺度可重构或传感材料。事实上,很少有研究构建更高顺序程序集与可重构的设备;然而,这些示威活动利用结构相对简单的运动,主要是铰链,打开和关闭。DNA折纸的形状变化的能力程序集,我们开发了一个多组分的DNA折纸6-bar机制,可以重新配置成各种形状,可以纳入更大的组件,同时保持功能各种形状的转换。演示6-bar的折叠机制分为四个不同的形状和演示多个这些形状之间的转换。还研究了形状6-bar的偏好在竞争激烈的折叠反应机制洞察的相对自由能的形状。机制与各种截面,成管状定义为个人的形状机制,我们展示的能力改变管横截面的形状。当前的设备重新配置高阶尺度提供了基础纳米微米尺度DNA纳米技术若或材料等应用程序可调的特性。

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