Regulation of transmembrane current through modulation of biomimetic lipid membrane composition

Abstract

Ion transport through biological channels is influenced not only by the structural properties of the channels themselves but also by the composition of the phospholipid membrane, which acts as a scaffold for these nanochannels. Drawing inspiration from how lipid membrane composition modulates ion currents, as seen in the activation of the K+ channel in Streptomyces A (KcsA) by anionic lipids, we propose a biomimetic nanochannel system that integrates DNA nanotechnology with two-dimensional graphene oxide (GO) nanosheets. By modifying the length of the multibranched DNA nanowires generated through the hybridization chain reaction (HCR) and varying the concentration of the linker strands that integrate these DNA nanowire structures with the GO membrane, the composition of the membrane can be effectively adjusted, consequently impacting ion transport. This method provides a strategy for developing devices with highly efficient and tunable ion transport, suitable for applications in mass transport, environmental protection, biomimetic channels, and biosensors.

Graphical abstract: Regulation of transmembrane current through modulation of biomimetic lipid membrane composition

Supplementary files

Article information

Article type
Paper
Submitted
28 iyl 2024
Accepted
19 avq 2024
First published
23 avq 2024

Faraday Discuss., 2024, Advance Article

Regulation of transmembrane current through modulation of biomimetic lipid membrane composition

Z. Shang, J. Zhao, M. Yang, Y. Xiao, W. Chu, Y. Cai, X. Yi, M. Lin and F. Xia, Faraday Discuss., 2024, Advance Article , DOI: 10.1039/D4FD00149D

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