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基于 DNA 自组装的动态纳米结构

Dynamic Gold Nanostructures Based on DNA Self Assembly.

机构信息

Jiangsu Key Laboratory of Advanced Structural Materials and Application Technology, School of Materials Science and Engineering, Nanjing Institute of Technology, Nanjing, 211167, China.

Wallace H. Coulter Department of Biomedical Engineering, Georgia Institute of Technology and Emory University, Atlanta, Georgia, 30322, USA.

出版信息

Small. 2024 Jun;20(23):e2308862. doi: 10.1002/smll.202308862. Epub 2023 Dec 24.

Abstract

The combination of DNA nanotechnology and Nano Gold (NG) plasmon has opened exciting possibilities for a new generation of functional plasmonic systems that exhibit tailored optical properties and find utility in various applications. In this review, the booming development of dynamic gold nanostructures are summarized, which are formed by DNA self-assembly using DNA-modified NG, DNA frameworks, and various driving forces. The utilization of bottom-up strategies enables precise control over the assembly of reversible and dynamic aggregations, nano-switcher structures, and robotic nanomachines capable of undergoing on-demand, reversible structural changes that profoundly impact their properties. Benefiting from the vast design possibilities, complete addressability, and sub-10 nm resolution, DNA duplexes, tiles, single-stranded tiles and origami structures serve as excellent platforms for constructing diverse 3D reconfigurable plasmonic nanostructures with tailored optical properties. Leveraging the responsive nature of DNA interactions, the fabrication of dynamic assemblies of NG becomes readily achievable, and environmental stimulation can be harnessed as a driving force for the nanomotors. It is envisioned that intelligent DNA-assembled NG nanodevices will assume increasingly important roles in the realms of biological, biomedical, and nanomechanical studies, opening a new avenue toward exploration and innovation.

摘要

DNA 纳米技术与纳米金(NG)等离子体的结合,为新一代功能等离子体系统的发展带来了令人兴奋的可能性,这些系统具有定制的光学特性,并在各种应用中具有实用性。在这篇综述中,总结了 DNA 自组装利用 DNA 修饰的 NG、DNA 框架和各种驱动力形成的动态金纳米结构的蓬勃发展。采用自下而上的策略,可以精确控制可逆和动态聚集、纳米开关结构以及能够按需进行可逆结构变化的机器人纳米机器的组装,这些结构的变化对其性能产生了深远的影响。得益于广泛的设计可能性、完全可寻址性和小于 10nm 的分辨率,DNA 双链体、基片、单链基片和折纸结构可作为构建具有定制光学特性的各种 3D 可重构等离子体纳米结构的优秀平台。利用 DNA 相互作用的响应特性,可以很容易地制造出 NG 的动态组装体,并且可以利用环境刺激作为纳米马达的驱动力。可以预见,智能 DNA 组装的 NG 纳米器件将在生物、生物医学和纳米力学研究领域发挥越来越重要的作用,为探索和创新开辟了新途径。

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