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Paradoxical Potentiation of Acid-Sensing Ion Channel 3 (ASIC3) by Amiloride via Multiple Mechanisms and Sites Within the Channel

Acid-Sensing Ion Channels (ASICs) are proton-gated sodium-selective cation channels that have emerged as metabolic and pain sensors in peripheral sensory neurons and contribute to neurotransmission in the CNS. These channels and their related degenerin/epithelial sodium channel (DEG/ENaC) family are...

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Autores principales: Matasic, Daniel S., Holland, Nicholas, Gautam, Mamta, Gibbons, David D., Kusama, Nobuyoshi, Harding, Anne M. S., Shah, Viral S., Snyder, Peter M., Benson, Christopher J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8555766/
https://www.ncbi.nlm.nih.gov/pubmed/34721074
http://dx.doi.org/10.3389/fphys.2021.750696
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author Matasic, Daniel S.
Holland, Nicholas
Gautam, Mamta
Gibbons, David D.
Kusama, Nobuyoshi
Harding, Anne M. S.
Shah, Viral S.
Snyder, Peter M.
Benson, Christopher J.
author_facet Matasic, Daniel S.
Holland, Nicholas
Gautam, Mamta
Gibbons, David D.
Kusama, Nobuyoshi
Harding, Anne M. S.
Shah, Viral S.
Snyder, Peter M.
Benson, Christopher J.
author_sort Matasic, Daniel S.
collection PubMed
description Acid-Sensing Ion Channels (ASICs) are proton-gated sodium-selective cation channels that have emerged as metabolic and pain sensors in peripheral sensory neurons and contribute to neurotransmission in the CNS. These channels and their related degenerin/epithelial sodium channel (DEG/ENaC) family are often characterized by their sensitivity to amiloride inhibition. However, amiloride can also cause paradoxical potentiation of ASIC currents under certain conditions. Here we characterized and investigated the determinants of paradoxical potentiation by amiloride on ASIC3 channels. While inhibiting currents induced by acidic pH, amiloride potentiated sustained currents at neutral pH activation. These effects were accompanied by alterations in gating properties including (1) an alkaline shift of pH-dependent activation, (2) inhibition of pH-dependent steady-state desensitization (SSD), (3) prolongation of desensitization kinetics, and (4) speeding of recovery from desensitization. Interestingly, extracellular Ca(2+) was required for paradoxical potentiation and it diminishes the amiloride-induced inhibition of SSD. Site-directed mutagenesis within the extracellular non-proton ligand-sensing domain (E79A, E423A) demonstrated that these residues were critical in mediating the amiloride-induced inhibition of SSD. However, disruption of the purported amiloride binding site (G445C) within the channel pore blunted both the inhibition and potentiation of amiloride. Together, our results suggest that the myriad of modulatory and blocking effects of amiloride are the result of a complex competitive interaction between amiloride, Ca(2+), and protons at probably more than one site in the channel.
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spelling pubmed-85557662021-10-30 Paradoxical Potentiation of Acid-Sensing Ion Channel 3 (ASIC3) by Amiloride via Multiple Mechanisms and Sites Within the Channel Matasic, Daniel S. Holland, Nicholas Gautam, Mamta Gibbons, David D. Kusama, Nobuyoshi Harding, Anne M. S. Shah, Viral S. Snyder, Peter M. Benson, Christopher J. Front Physiol Physiology Acid-Sensing Ion Channels (ASICs) are proton-gated sodium-selective cation channels that have emerged as metabolic and pain sensors in peripheral sensory neurons and contribute to neurotransmission in the CNS. These channels and their related degenerin/epithelial sodium channel (DEG/ENaC) family are often characterized by their sensitivity to amiloride inhibition. However, amiloride can also cause paradoxical potentiation of ASIC currents under certain conditions. Here we characterized and investigated the determinants of paradoxical potentiation by amiloride on ASIC3 channels. While inhibiting currents induced by acidic pH, amiloride potentiated sustained currents at neutral pH activation. These effects were accompanied by alterations in gating properties including (1) an alkaline shift of pH-dependent activation, (2) inhibition of pH-dependent steady-state desensitization (SSD), (3) prolongation of desensitization kinetics, and (4) speeding of recovery from desensitization. Interestingly, extracellular Ca(2+) was required for paradoxical potentiation and it diminishes the amiloride-induced inhibition of SSD. Site-directed mutagenesis within the extracellular non-proton ligand-sensing domain (E79A, E423A) demonstrated that these residues were critical in mediating the amiloride-induced inhibition of SSD. However, disruption of the purported amiloride binding site (G445C) within the channel pore blunted both the inhibition and potentiation of amiloride. Together, our results suggest that the myriad of modulatory and blocking effects of amiloride are the result of a complex competitive interaction between amiloride, Ca(2+), and protons at probably more than one site in the channel. Frontiers Media S.A. 2021-10-15 /pmc/articles/PMC8555766/ /pubmed/34721074 http://dx.doi.org/10.3389/fphys.2021.750696 Text en Copyright © 2021 Matasic, Holland, Gautam, Gibbons, Kusama, Harding, Shah, Snyder and Benson. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Physiology
Matasic, Daniel S.
Holland, Nicholas
Gautam, Mamta
Gibbons, David D.
Kusama, Nobuyoshi
Harding, Anne M. S.
Shah, Viral S.
Snyder, Peter M.
Benson, Christopher J.
Paradoxical Potentiation of Acid-Sensing Ion Channel 3 (ASIC3) by Amiloride via Multiple Mechanisms and Sites Within the Channel
title Paradoxical Potentiation of Acid-Sensing Ion Channel 3 (ASIC3) by Amiloride via Multiple Mechanisms and Sites Within the Channel
title_full Paradoxical Potentiation of Acid-Sensing Ion Channel 3 (ASIC3) by Amiloride via Multiple Mechanisms and Sites Within the Channel
title_fullStr Paradoxical Potentiation of Acid-Sensing Ion Channel 3 (ASIC3) by Amiloride via Multiple Mechanisms and Sites Within the Channel
title_full_unstemmed Paradoxical Potentiation of Acid-Sensing Ion Channel 3 (ASIC3) by Amiloride via Multiple Mechanisms and Sites Within the Channel
title_short Paradoxical Potentiation of Acid-Sensing Ion Channel 3 (ASIC3) by Amiloride via Multiple Mechanisms and Sites Within the Channel
title_sort paradoxical potentiation of acid-sensing ion channel 3 (asic3) by amiloride via multiple mechanisms and sites within the channel
topic Physiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8555766/
https://www.ncbi.nlm.nih.gov/pubmed/34721074
http://dx.doi.org/10.3389/fphys.2021.750696
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