Liu Fengyu, Liu Xiaoming, Huang Qiang, Arai Tatsuo
Key Laboratory of Biomimetic Robots and Systems, Ministry of Education, State Key Laboratory of Intelligent Control and Decision of Complex System, Beijing Advanced Innovation Center for Intelligent Robots and Systems and School of Mechatronical Engineering, Beijing Institute of Technology, Beijing 100081, China.
Center for Neuroscience and Biomedical Engineering, The University of Electro-Communications, Tokyo 182-8585, Japan.
Cyborg Bionic Syst. 2022 Feb 7;2022:9758460. doi: 10.34133/2022/9758460. eCollection 2022.
In the past few decades, the field of DNA origami-based micro/nanotechnology has developed dramatically and spawned attention increasingly, as its high integrality, rigid structure, and excellent resistance ability to enzyme digestion. Many two-dimensional and three-dimensional DNA nanostructures coordinated with optical, chemical, or magnetic triggers have been designed and assembled, extensively used as versatile templates for molecular robots, nanosensors, and intracellular drug delivery. The magnetic field has been widely regarded as an ideal driving and operating system for micro/nanomaterials, as it does not require high-intensity lasers like light control, nor does it need to change the chemical composition similar to chemical activation. Herein, we review the recent achievements in the induction and actuation of DNA origami-based nanodevices that respond to magnetic fields. These magnetic actuation-based DNA nanodevices were regularly combined with magnetic beads or gold nanoparticles and applied to generate single-stranded scaffolds, assemble various DNA nanostructures, and purify specific DNA nanostructures. Moreover, they also produced artificial magnetism or moved regularly driven by external magnetic fields to explain deeper scientific issues.
在过去几十年中,基于DNA折纸术的微纳技术领域取得了显著发展,并越来越受到关注,因为其具有高度完整性、刚性结构以及出色的抗酶消化能力。许多与光学、化学或磁触发协同作用的二维和三维DNA纳米结构已被设计和组装,广泛用作分子机器人、纳米传感器和细胞内药物递送的通用模板。磁场被广泛认为是微纳材料的理想驱动和操作系统,因为它不像光控那样需要高强度激光,也不需要像化学活化那样改变化学成分。在此,我们综述了基于DNA折纸术的纳米器件在磁场响应的诱导和驱动方面的最新成果。这些基于磁驱动的DNA纳米器件常与磁珠或金纳米颗粒结合,用于生成单链支架、组装各种DNA纳米结构以及纯化特定的DNA纳米结构。此外,它们还能产生人工磁性或在外部磁场驱动下规则移动,以解释更深层次的科学问题。