A Co-operative Regulation of Neuronal Excitability by UNC-7 Innexin and NCA/NALCN Leak Channel

<p>Abstract</p> <p>Gap junctions mediate the electrical coupling and intercellular communication between neighboring cells. Some gap junction proteins, namely connexins and pannexins in vertebrates, and innexins in invertebrates, may also function as hemichannels. A conserved NCA/D...

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Main Authors: Bouhours Magali, Po Michelle D, Gao Shangbang, Hung Wesley, Li Hang, Georgiou John, Roder John C, Zhen Mei
Format: Article
Language:English
Published: BMC 2011-04-01
Series:Molecular Brain
Online Access:http://www.molecularbrain.com/content/4/1/16
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spelling doaj-93c7c665daa64da48ec365be6673c31a2020-11-24T22:21:04ZengBMCMolecular Brain1756-66062011-04-01411610.1186/1756-6606-4-16A Co-operative Regulation of Neuronal Excitability by UNC-7 Innexin and NCA/NALCN Leak ChannelBouhours MagaliPo Michelle DGao ShangbangHung WesleyLi HangGeorgiou JohnRoder John CZhen Mei<p>Abstract</p> <p>Gap junctions mediate the electrical coupling and intercellular communication between neighboring cells. Some gap junction proteins, namely connexins and pannexins in vertebrates, and innexins in invertebrates, may also function as hemichannels. A conserved NCA/Dmα1U/NALCN family cation leak channel regulates the excitability and activity of vertebrate and invertebrate neurons. In the present study, we describe a genetic and functional interaction between the innexin UNC-7 and the cation leak channel NCA in <it>Caenorhabditis elegans </it>neurons. While the loss of the neuronal NCA channel function leads to a reduced evoked postsynaptic current at neuromuscular junctions, a simultaneous loss of the UNC-7 function restores the evoked response. The expression of UNC-7 in neurons reverts the effect of the <it>unc-7 </it>mutation; moreover, the expression of UNC-7 mutant proteins that are predicted to be unable to form gap junctions also reverts this effect, suggesting that UNC-7 innexin regulates neuronal activity, in part, through gap junction-independent functions. We propose that, in addition to gap junction-mediated functions, UNC-7 innexin may also form hemichannels to regulate <it>C. elegans' </it>neuronal activity cooperatively with the NCA family leak channels.</p> http://www.molecularbrain.com/content/4/1/16
collection DOAJ
language English
format Article
sources DOAJ
author Bouhours Magali
Po Michelle D
Gao Shangbang
Hung Wesley
Li Hang
Georgiou John
Roder John C
Zhen Mei
spellingShingle Bouhours Magali
Po Michelle D
Gao Shangbang
Hung Wesley
Li Hang
Georgiou John
Roder John C
Zhen Mei
A Co-operative Regulation of Neuronal Excitability by UNC-7 Innexin and NCA/NALCN Leak Channel
Molecular Brain
author_facet Bouhours Magali
Po Michelle D
Gao Shangbang
Hung Wesley
Li Hang
Georgiou John
Roder John C
Zhen Mei
author_sort Bouhours Magali
title A Co-operative Regulation of Neuronal Excitability by UNC-7 Innexin and NCA/NALCN Leak Channel
title_short A Co-operative Regulation of Neuronal Excitability by UNC-7 Innexin and NCA/NALCN Leak Channel
title_full A Co-operative Regulation of Neuronal Excitability by UNC-7 Innexin and NCA/NALCN Leak Channel
title_fullStr A Co-operative Regulation of Neuronal Excitability by UNC-7 Innexin and NCA/NALCN Leak Channel
title_full_unstemmed A Co-operative Regulation of Neuronal Excitability by UNC-7 Innexin and NCA/NALCN Leak Channel
title_sort co-operative regulation of neuronal excitability by unc-7 innexin and nca/nalcn leak channel
publisher BMC
series Molecular Brain
issn 1756-6606
publishDate 2011-04-01
description <p>Abstract</p> <p>Gap junctions mediate the electrical coupling and intercellular communication between neighboring cells. Some gap junction proteins, namely connexins and pannexins in vertebrates, and innexins in invertebrates, may also function as hemichannels. A conserved NCA/Dmα1U/NALCN family cation leak channel regulates the excitability and activity of vertebrate and invertebrate neurons. In the present study, we describe a genetic and functional interaction between the innexin UNC-7 and the cation leak channel NCA in <it>Caenorhabditis elegans </it>neurons. While the loss of the neuronal NCA channel function leads to a reduced evoked postsynaptic current at neuromuscular junctions, a simultaneous loss of the UNC-7 function restores the evoked response. The expression of UNC-7 in neurons reverts the effect of the <it>unc-7 </it>mutation; moreover, the expression of UNC-7 mutant proteins that are predicted to be unable to form gap junctions also reverts this effect, suggesting that UNC-7 innexin regulates neuronal activity, in part, through gap junction-independent functions. We propose that, in addition to gap junction-mediated functions, UNC-7 innexin may also form hemichannels to regulate <it>C. elegans' </it>neuronal activity cooperatively with the NCA family leak channels.</p>
url http://www.molecularbrain.com/content/4/1/16
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