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含 ATP 适体的 DNA 超分子结构对固态纳米通道的高效门控:一种纳米流控 IMPLICATION 逻辑器件。

Highly-efficient gating of solid-state nanochannels by DNA supersandwich structure containing ATP aptamers: a nanofluidic IMPLICATION logic device.

机构信息

School of Chemistry and Environment, Beijing University of Aeronautics and Astronautics, Beijing 100191, PR China

出版信息

J Am Chem Soc. 2012 Sep 19;134(37):15395-401. doi: 10.1021/ja3053333. Epub 2012 Sep 6.

DOI:10.1021/ja3053333
PMID:22954022
Abstract

Integrating biological components into artificial devices establishes an interface to understand and imitate the superior functionalities of the living systems. One challenge in developing biohybrid nanosystems mimicking the gating function of the biological ion channels is to enhance the gating efficiency of the man-made systems. Herein, we demonstrate a DNA supersandwich and ATP gated nanofluidic device that exhibits high ON-OFF ratios (up to 10(6)) and a perfect electric seal at its closed state (~GΩ). The ON-OFF ratio is distinctly higher than existing chemically modified nanofluidic gating systems. The gigaohm seal is comparable with that required in ion channel electrophysiological recording and some lipid bilayer-coated nanopore sensors. The gating function is implemented by self-assembling DNA supersandwich structures into solid-state nanochannels (open-to-closed) and their disassembly through ATP-DNA binding interactions (closed-to-open). On the basis of the reversible and all-or-none electrochemical switching properties, we further achieve the IMPLICATION logic operations within the nanofluidic structures. The present biohybrid nanofluidic device translates molecular events into electrical signals and indicates a built-in signal amplification mechanism for future nanofluidic biosensing and modular DNA computing on solid-state substrates.

摘要

将生物组件集成到人工设备中建立了一个接口,可以理解和模仿生命系统的优越功能。在开发仿生纳米系统以模拟生物离子通道的门控功能时,面临的一个挑战是提高人造系统的门控效率。本文展示了一种 DNA 超分子三明治和 ATP 门控纳米流控装置,该装置在关闭状态下具有高达 10^6 的高 ON-OFF 比(高达 10^6)和完美的电密封(~GΩ)。与现有的化学修饰纳米流控门控系统相比,ON-OFF 比明显更高。千兆欧姆密封与离子通道电生理记录和一些脂质双层涂层纳米孔传感器所需的密封相当。门控功能是通过将 DNA 超分子三明治结构自组装到固态纳米通道中(开-关)以及通过 ATP-DNA 结合相互作用(关-开)来实现的。基于可逆和全有或全无的电化学开关特性,我们进一步在纳米流控结构中实现了蕴涵逻辑运算。这种生物混合纳米流控装置将分子事件转化为电信号,并为未来基于固态基底的纳米流控生物传感和模块化 DNA 计算表明了内置的信号放大机制。

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