DNA折纸
分子马达
模块化设计
微流控
纳米技术
DNA纳米技术
分子机器
DNA
联轴节(管道)
化学能
计算机科学
生物系统
材料科学
化学
生物
纳米结构
生物化学
有机化学
冶金
操作系统
作者
Mathias Centola,Erik Poppleton,Sujay Ray,Martin Centola,Robb Welty,Julián Valero,Nils G. Walter,Petr Šulc,Michael Famulok
标识
DOI:10.1038/s41565-023-01516-x
摘要
Abstract Molecular engineering seeks to create functional entities for modular use in the bottom-up design of nanoassemblies that can perform complex tasks. Such systems require fuel-consuming nanomotors that can actively drive downstream passive followers. Most artificial molecular motors are driven by Brownian motion, in which, with few exceptions, the generated forces are non-directed and insufficient for efficient transfer to passive second-level components. Consequently, efficient chemical-fuel-driven nanoscale driver–follower systems have not yet been realized. Here we present a DNA nanomachine (70 nm × 70 nm × 12 nm) driven by the chemical energy of DNA-templated RNA-transcription-consuming nucleoside triphosphates as fuel to generate a rhythmic pulsating motion of two rigid DNA-origami arms. Furthermore, we demonstrate actuation control and the simple coupling of the active nanomachine with a passive follower, to which it then transmits its motion, forming a true driver–follower pair.
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