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通过调节仿生脂质膜组成来精确控制跨膜电流。

Precise control of transmembrane current via regulating bionic lipid membrane composition.

机构信息

State Key Laboratory of Biogeology and Environmental Geology, Engineering Research Center of Nano-Geomaterials of Ministry of Education, Faculty of Materials Science and Chemistry, China University of Geosciences, Wuhan 430074, China.

Key Laboratory of Prevention and Treatment of Cardiovascular and Cerebrovascular Diseases, Ministry of Education, Gannan Medical University, Ganzhou 341000, China.

出版信息

Sci Adv. 2024 Aug 30;10(35):eadq0118. doi: 10.1126/sciadv.adq0118.

Abstract

The transport of ions through biological ion channels is regulated not only by their structural characteristics but also by the composition of the phospholipid membrane, which serves as a carrier for nanochannels. Inspired by the modulation of ion currents by lipid membrane composition, exemplified by the activation of the K channel of A by anionic lipids, we present a biomimetic nanochannel system based on combining DNA nanotechnology with two-dimensional graphene oxide (GO) nanosheets. By designing multibranched DNA nanowires, we assemble programmable DNA scaffold networks (DSNs) on the GO surface to precisely control membrane composition. Modulating the DSN layers from one to five enhances DNA composition, yielding a maximum 12-fold enhancement in ion current, primarily due to charge effects. Incorporating DNAzymes facilitates reversible modulation of membrane composition, enabling cyclic conversion of ion current. This approach offers a pathway for creating devices with highly efficient, tunable ion transport, applicable in diverse fields like mass transport, environmental protection, biomimetic channels, and biosensors.

摘要

生物离子通道中离子的传输不仅受到其结构特征的调节,还受到磷脂膜组成的调节,磷脂膜作为纳米通道的载体。受脂质膜组成对离子电流的调节的启发,例如阴离子脂质激活 A 型钾通道,我们提出了一种基于 DNA 纳米技术与二维氧化石墨烯(GO)纳米片相结合的仿生纳米通道系统。通过设计多分支 DNA 纳米线,我们将可编程 DNA 支架网络(DSN)组装在 GO 表面上,以精确控制膜组成。从一层到五层调节 DSN 层可增强 DNA 组成,使离子电流最大增强 12 倍,主要是由于电荷效应。引入 DNA 酶有助于膜组成的可逆调节,从而实现离子电流的循环转换。该方法为创建具有高效、可调离子传输的器件提供了一种途径,可应用于质量传输、环境保护、仿生通道和生物传感器等多个领域。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1b87/11364097/ce6dc5badd1f/sciadv.adq0118-f1.jpg

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