Differential activation of mouse and human Panx1 channel variants.

Pannexins are ubiquitously expressed in human and mouse tissues. Pannexin 1 (Panx1), the most thoroughly characterized member of this family, forms plasmalemmal membrane channels permeable to relatively large molecules, such as ATP. Although human and mouse Panx1 amino acid sequences are conserved i...

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Published in:PLoS ONE
Main Authors: Antonio Cibelli, Preeti Dohare, David C Spray, Eliana Scemes
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2023-01-01
Online Access:https://doi.org/10.1371/journal.pone.0295710
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author Antonio Cibelli
Preeti Dohare
David C Spray
Eliana Scemes
author_facet Antonio Cibelli
Preeti Dohare
David C Spray
Eliana Scemes
author_sort Antonio Cibelli
collection DOAJ
container_title PLoS ONE
description Pannexins are ubiquitously expressed in human and mouse tissues. Pannexin 1 (Panx1), the most thoroughly characterized member of this family, forms plasmalemmal membrane channels permeable to relatively large molecules, such as ATP. Although human and mouse Panx1 amino acid sequences are conserved in the presently known regulatory sites involved in trafficking and modulation of the channel, differences are reported in the N- and C-termini of the protein, and the mechanisms of channel activation by different stimuli remain controversial. Here we used a neuroblastoma cell line to study the activation properties of endogenous mPanx1 and exogenously expressed hPanx1. Dye uptake and electrophysiological recordings revealed that in contrast to mouse Panx1, the human ortholog is insensitive to stimulation with high extracellular [K+] but responds similarly to activation of the purinergic P2X7 receptor. The two most frequent Panx1 polymorphisms found in the human population, Q5H (rs1138800) and E390D (rs74549886), exogenously expressed in Panx1-null N2a cells revealed that regarding P2X7 receptor mediated Panx1 activation, the Q5H mutant is a gain of function whereas the E390D mutant is a loss of function variant. Collectively, we demonstrate differences in the activation between human and mouse Panx1 orthologs and suggest that these differences may have translational implications for studies where Panx1 has been shown to have significant impact.
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spelling doaj-art-ecc452b2ac014e4ebd47f6fa42845f4b2025-08-19T22:52:25ZengPublic Library of Science (PLoS)PLoS ONE1932-62032023-01-011812e029571010.1371/journal.pone.0295710Differential activation of mouse and human Panx1 channel variants.Antonio CibelliPreeti DohareDavid C SprayEliana ScemesPannexins are ubiquitously expressed in human and mouse tissues. Pannexin 1 (Panx1), the most thoroughly characterized member of this family, forms plasmalemmal membrane channels permeable to relatively large molecules, such as ATP. Although human and mouse Panx1 amino acid sequences are conserved in the presently known regulatory sites involved in trafficking and modulation of the channel, differences are reported in the N- and C-termini of the protein, and the mechanisms of channel activation by different stimuli remain controversial. Here we used a neuroblastoma cell line to study the activation properties of endogenous mPanx1 and exogenously expressed hPanx1. Dye uptake and electrophysiological recordings revealed that in contrast to mouse Panx1, the human ortholog is insensitive to stimulation with high extracellular [K+] but responds similarly to activation of the purinergic P2X7 receptor. The two most frequent Panx1 polymorphisms found in the human population, Q5H (rs1138800) and E390D (rs74549886), exogenously expressed in Panx1-null N2a cells revealed that regarding P2X7 receptor mediated Panx1 activation, the Q5H mutant is a gain of function whereas the E390D mutant is a loss of function variant. Collectively, we demonstrate differences in the activation between human and mouse Panx1 orthologs and suggest that these differences may have translational implications for studies where Panx1 has been shown to have significant impact.https://doi.org/10.1371/journal.pone.0295710
spellingShingle Antonio Cibelli
Preeti Dohare
David C Spray
Eliana Scemes
Differential activation of mouse and human Panx1 channel variants.
title Differential activation of mouse and human Panx1 channel variants.
title_full Differential activation of mouse and human Panx1 channel variants.
title_fullStr Differential activation of mouse and human Panx1 channel variants.
title_full_unstemmed Differential activation of mouse and human Panx1 channel variants.
title_short Differential activation of mouse and human Panx1 channel variants.
title_sort differential activation of mouse and human panx1 channel variants
url https://doi.org/10.1371/journal.pone.0295710
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