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Switchable DNA-origami nanostructures that respond to their environment and their applications

机译:可转换的DNA折纸纳米结构可响应其环境及其应用

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摘要

Structural DNA nanotechnology, in which Watson-Crick base pairing drives the formation of self-assembling nanostructures, has rapidly expanded in complexity and functionality since its inception in 1981. DNA nanostructures can now be made in arbitrary three-dimensional shapes and used to scaffold many other functional molecules such as proteins, metallic nanoparticles, polymers, fluorescent dyes and small molecules. In parallel, the field of dynamic DNA nanotechnology has built DNA circuits, motors and switches. More recently, these two areas have begun to merge—to produce switchable DNA nanostructures, which change state in response to their environment. In this review, we summarise switchable DNA nanostructures into two major classes based on response type: molecular actuation triggered by local chemical changes such as pH or concentration and external actuation driven by light, electric or magnetic fields. While molecular actuation has been well explored, external actuation of DNA nanostructures is a relatively new area that allows for the remote control of nanoscale devices. We discuss recent applications for DNA nanostructures where switching is used to perform specific functions—such as opening a capsule to deliver a molecular payload to a target cell. We then discuss challenges and future directions towards achieving synthetic nanomachines with complexity on the level of the protein machinery in living cells.
机译:自1981年问世以来,Watson-Crick碱基配对驱动自组装纳米结构形成的结构DNA纳米技术在复杂性和功能性方面已迅速扩展。DNA纳米结构现在可以制成任意三维形状,并可以用于构建许多支架其他功能分子,例如蛋白质,金属纳米粒子,聚合物,荧光染料和小分子。同时,动态DNA纳米技术领域已经构建了DNA电路,电动机和开关。最近,这两个领域已开始融合-产生可切换的DNA纳米结构,该结构可根据其环境而改变状态。在这篇综述中,我们根据响应类型将可切换的DNA纳米结构归纳为两大类:由局部化学变化(例如pH或浓度)触发的分子驱动和由光,电场或磁场驱动的外部驱动。尽管分子驱动已被广泛研究,但DNA纳米结构的外部驱动是一个相对较新的领域,可以远程控制纳米级设备。我们讨论了DNA纳米结构的最新应用,其中使用开关来执行特定功能,例如打开胶囊以将分子有效载荷传递到靶细胞。然后,我们将讨论在活细胞中蛋白质机械水平上实现复杂的合成纳米机械的挑战和未来方向。

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