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Single-molecule study of full-length NaChBac by planar lipid bilayer recording

Planar lipid bilayer device, alternatively known as BLM, is a powerful tool to study functional properties of conducting membrane proteins such as ion channels and porins. In this work, we used BLM to study the prokaryotic voltage-gated sodium channel (Na(v)) NaChBac in a well-defined membrane envir...

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Autores principales: Jo, Andrew, Hoi, Hiofan, Zhou, Hang, Gupta, Manisha, Montemagno, Carlo D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5708646/
https://www.ncbi.nlm.nih.gov/pubmed/29190805
http://dx.doi.org/10.1371/journal.pone.0188861
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author Jo, Andrew
Hoi, Hiofan
Zhou, Hang
Gupta, Manisha
Montemagno, Carlo D.
author_facet Jo, Andrew
Hoi, Hiofan
Zhou, Hang
Gupta, Manisha
Montemagno, Carlo D.
author_sort Jo, Andrew
collection PubMed
description Planar lipid bilayer device, alternatively known as BLM, is a powerful tool to study functional properties of conducting membrane proteins such as ion channels and porins. In this work, we used BLM to study the prokaryotic voltage-gated sodium channel (Na(v)) NaChBac in a well-defined membrane environment. Na(v)s are an essential component for the generation and propagation of electric signals in excitable cells. The successes in the biochemical, biophysical and crystallographic studies on prokaryotic Na(v)s in recent years has greatly promoted the understanding of the molecular mechanism that underlies these proteins and their eukaryotic counterparts. In this work, we investigated the single-molecule conductance and ionic selectivity behavior of NaChBac. Purified NaChBac protein was first reconstituted into lipid vesicles, which is subsequently incorporated into planar lipid bilayer by fusion. At single-molecule level, we were able to observe three distinct long-lived conductance sub-states of NaChBac. Change in the membrane potential switches on the channel mainly by increasing its opening probability. In addition, we found that individual NaChBac has similar permeability for Na(+), K(+), and Ca(2+). The single-molecule behavior of the full-length protein is essentially highly stochastic. Our results show that planar lipid bilayer device can be used to study purified ion channels at single-molecule level in an artificial environment, and such studies can reveal new protein properties that are otherwise not observable in in vivo ensemble studies.
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spelling pubmed-57086462017-12-15 Single-molecule study of full-length NaChBac by planar lipid bilayer recording Jo, Andrew Hoi, Hiofan Zhou, Hang Gupta, Manisha Montemagno, Carlo D. PLoS One Research Article Planar lipid bilayer device, alternatively known as BLM, is a powerful tool to study functional properties of conducting membrane proteins such as ion channels and porins. In this work, we used BLM to study the prokaryotic voltage-gated sodium channel (Na(v)) NaChBac in a well-defined membrane environment. Na(v)s are an essential component for the generation and propagation of electric signals in excitable cells. The successes in the biochemical, biophysical and crystallographic studies on prokaryotic Na(v)s in recent years has greatly promoted the understanding of the molecular mechanism that underlies these proteins and their eukaryotic counterparts. In this work, we investigated the single-molecule conductance and ionic selectivity behavior of NaChBac. Purified NaChBac protein was first reconstituted into lipid vesicles, which is subsequently incorporated into planar lipid bilayer by fusion. At single-molecule level, we were able to observe three distinct long-lived conductance sub-states of NaChBac. Change in the membrane potential switches on the channel mainly by increasing its opening probability. In addition, we found that individual NaChBac has similar permeability for Na(+), K(+), and Ca(2+). The single-molecule behavior of the full-length protein is essentially highly stochastic. Our results show that planar lipid bilayer device can be used to study purified ion channels at single-molecule level in an artificial environment, and such studies can reveal new protein properties that are otherwise not observable in in vivo ensemble studies. Public Library of Science 2017-11-30 /pmc/articles/PMC5708646/ /pubmed/29190805 http://dx.doi.org/10.1371/journal.pone.0188861 Text en © 2017 Jo et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Jo, Andrew
Hoi, Hiofan
Zhou, Hang
Gupta, Manisha
Montemagno, Carlo D.
Single-molecule study of full-length NaChBac by planar lipid bilayer recording
title Single-molecule study of full-length NaChBac by planar lipid bilayer recording
title_full Single-molecule study of full-length NaChBac by planar lipid bilayer recording
title_fullStr Single-molecule study of full-length NaChBac by planar lipid bilayer recording
title_full_unstemmed Single-molecule study of full-length NaChBac by planar lipid bilayer recording
title_short Single-molecule study of full-length NaChBac by planar lipid bilayer recording
title_sort single-molecule study of full-length nachbac by planar lipid bilayer recording
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5708646/
https://www.ncbi.nlm.nih.gov/pubmed/29190805
http://dx.doi.org/10.1371/journal.pone.0188861
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