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pH 驱动的微米尺度 DNA 支架的可逆自组装。

pH-Driven Reversible Self-Assembly of Micron-Scale DNA Scaffolds.

机构信息

Department of Chemical Science and Technologies, University of Rome, Tor Vergata , Via della Ricerca Scientifica 00133, Rome, Italy.

出版信息

Nano Lett. 2017 Dec 13;17(12):7283-7288. doi: 10.1021/acs.nanolett.7b02787. Epub 2017 Nov 28.

Abstract

Inspired by cytoskeletal scaffolds that sense and respond dynamically to environmental changes and chemical inputs with a unique capacity for reconfiguration, we propose a strategy that allows the dynamic and reversible control of the growth and breakage of micron-scale synthetic DNA structures upon pH changes. We do so by rationally designing a pH-responsive system composed of synthetic DNA strands that act as pH sensors, regulators, and structural elements. Sensor strands can dynamically respond to pH changes and route regulatory strands to direct the self-assembly of structural elements into tubular structures. This example represents the first demonstration of the reversible assembly and disassembly of micron-scale DNA scaffolds using an external chemical input other than DNA. The capacity to reversibly modulate nanostructure size may promote the development of smart devices for catalysis or drug-delivery applications.

摘要

受细胞骨架的启发,细胞骨架具有感知和动态响应环境变化以及化学输入的独特能力,并具有重新配置的能力,我们提出了一种策略,允许在 pH 值变化时动态和可逆地控制微米级合成 DNA 结构的生长和断裂。我们通过合理设计由充当 pH 传感器、调节剂和结构元件的合成 DNA 链组成的 pH 响应系统来实现这一点。传感器链可以动态响应 pH 值变化,并引导调节链将结构元件自组装成管状结构。该示例代表了首次使用除 DNA 之外的外部化学输入来可逆组装和拆卸微米级 DNA 支架的演示。可逆调节纳米结构尺寸的能力可能会促进用于催化或药物输送应用的智能设备的发展。

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