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Charging the Quantum Capacitance of Graphene with a Single Biological Ion Channel

[Image: see text] The interaction of cell and organelle membranes (lipid bilayers) with nanoelectronics can enable new technologies to sense and measure electrophysiology in qualitatively new ways. To date, a variety of sensing devices have been demonstrated to measure membrane currents through macr...

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Autores principales: Wang, Yung Yu, Pham, Ted D., Zand, Katayoun, Li, Jinfeng, Burke, Peter J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4046776/
https://www.ncbi.nlm.nih.gov/pubmed/24754625
http://dx.doi.org/10.1021/nn501376z
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author Wang, Yung Yu
Pham, Ted D.
Zand, Katayoun
Li, Jinfeng
Burke, Peter J.
author_facet Wang, Yung Yu
Pham, Ted D.
Zand, Katayoun
Li, Jinfeng
Burke, Peter J.
author_sort Wang, Yung Yu
collection PubMed
description [Image: see text] The interaction of cell and organelle membranes (lipid bilayers) with nanoelectronics can enable new technologies to sense and measure electrophysiology in qualitatively new ways. To date, a variety of sensing devices have been demonstrated to measure membrane currents through macroscopic numbers of ion channels. However, nanoelectronic based sensing of single ion channel currents has been a challenge. Here, we report graphene-based field-effect transistors combined with supported lipid bilayers as a platform for measuring, for the first time, individual ion channel activity. We show that the supported lipid bilayers uniformly coat the single layer graphene surface, acting as a biomimetic barrier that insulates (both electrically and chemically) the graphene from the electrolyte environment. Upon introduction of pore-forming membrane proteins such as alamethicin and gramicidin A, current pulses are observed through the lipid bilayers from the graphene to the electrolyte, which charge the quantum capacitance of the graphene. This approach combines nanotechnology with electrophysiology to demonstrate qualitatively new ways of measuring ion channel currents.
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spelling pubmed-40467762015-04-22 Charging the Quantum Capacitance of Graphene with a Single Biological Ion Channel Wang, Yung Yu Pham, Ted D. Zand, Katayoun Li, Jinfeng Burke, Peter J. ACS Nano [Image: see text] The interaction of cell and organelle membranes (lipid bilayers) with nanoelectronics can enable new technologies to sense and measure electrophysiology in qualitatively new ways. To date, a variety of sensing devices have been demonstrated to measure membrane currents through macroscopic numbers of ion channels. However, nanoelectronic based sensing of single ion channel currents has been a challenge. Here, we report graphene-based field-effect transistors combined with supported lipid bilayers as a platform for measuring, for the first time, individual ion channel activity. We show that the supported lipid bilayers uniformly coat the single layer graphene surface, acting as a biomimetic barrier that insulates (both electrically and chemically) the graphene from the electrolyte environment. Upon introduction of pore-forming membrane proteins such as alamethicin and gramicidin A, current pulses are observed through the lipid bilayers from the graphene to the electrolyte, which charge the quantum capacitance of the graphene. This approach combines nanotechnology with electrophysiology to demonstrate qualitatively new ways of measuring ion channel currents. American Chemical Society 2014-04-22 2014-05-27 /pmc/articles/PMC4046776/ /pubmed/24754625 http://dx.doi.org/10.1021/nn501376z Text en Copyright © 2014 American Chemical Society
spellingShingle Wang, Yung Yu
Pham, Ted D.
Zand, Katayoun
Li, Jinfeng
Burke, Peter J.
Charging the Quantum Capacitance of Graphene with a Single Biological Ion Channel
title Charging the Quantum Capacitance of Graphene with a Single Biological Ion Channel
title_full Charging the Quantum Capacitance of Graphene with a Single Biological Ion Channel
title_fullStr Charging the Quantum Capacitance of Graphene with a Single Biological Ion Channel
title_full_unstemmed Charging the Quantum Capacitance of Graphene with a Single Biological Ion Channel
title_short Charging the Quantum Capacitance of Graphene with a Single Biological Ion Channel
title_sort charging the quantum capacitance of graphene with a single biological ion channel
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4046776/
https://www.ncbi.nlm.nih.gov/pubmed/24754625
http://dx.doi.org/10.1021/nn501376z
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