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GluClR-mediated inhibitory postsynaptic currents reveal targets for ivermectin and potential mechanisms of ivermectin resistance

Glutamate-gated chloride channel receptors (GluClRs) mediate inhibitory neurotransmission at invertebrate synapses and are primary targets of parasites that impact drastically on agriculture and human health. Ivermectin (IVM) is a broad-spectrum pesticide that binds and potentiates GluClR activity....

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Autores principales: Atif, Mohammed, Smith, Jennifer J., Estrada-Mondragon, Argel, Xiao, Xue, Salim, Angela A., Capon, Robert J., Lynch, Joseph W., Keramidas, Angelo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6368337/
https://www.ncbi.nlm.nih.gov/pubmed/30695069
http://dx.doi.org/10.1371/journal.ppat.1007570
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author Atif, Mohammed
Smith, Jennifer J.
Estrada-Mondragon, Argel
Xiao, Xue
Salim, Angela A.
Capon, Robert J.
Lynch, Joseph W.
Keramidas, Angelo
author_facet Atif, Mohammed
Smith, Jennifer J.
Estrada-Mondragon, Argel
Xiao, Xue
Salim, Angela A.
Capon, Robert J.
Lynch, Joseph W.
Keramidas, Angelo
author_sort Atif, Mohammed
collection PubMed
description Glutamate-gated chloride channel receptors (GluClRs) mediate inhibitory neurotransmission at invertebrate synapses and are primary targets of parasites that impact drastically on agriculture and human health. Ivermectin (IVM) is a broad-spectrum pesticide that binds and potentiates GluClR activity. Resistance to IVM is a major economic and health concern, but the molecular and synaptic mechanisms of resistance are ill-defined. Here we focus on GluClRs of the agricultural endoparasite, Haemonchus contortus. We demonstrate that IVM potentiates inhibitory input by inducing a tonic current that plateaus over 15 minutes and by enhancing post-synaptic current peak amplitude and decay times. We further demonstrate that IVM greatly enhances the active durations of single receptors. These effects are greatly attenuated when endogenous IVM-insensitive subunits are incorporated into GluClRs, suggesting a mechanism of IVM resistance that does not affect glutamate sensitivity. We discovered functional groups of IVM that contribute to tuning its potency at different isoforms and show that the dominant mode of access of IVM is via the cell membrane to the receptor.
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spelling pubmed-63683372019-02-22 GluClR-mediated inhibitory postsynaptic currents reveal targets for ivermectin and potential mechanisms of ivermectin resistance Atif, Mohammed Smith, Jennifer J. Estrada-Mondragon, Argel Xiao, Xue Salim, Angela A. Capon, Robert J. Lynch, Joseph W. Keramidas, Angelo PLoS Pathog Research Article Glutamate-gated chloride channel receptors (GluClRs) mediate inhibitory neurotransmission at invertebrate synapses and are primary targets of parasites that impact drastically on agriculture and human health. Ivermectin (IVM) is a broad-spectrum pesticide that binds and potentiates GluClR activity. Resistance to IVM is a major economic and health concern, but the molecular and synaptic mechanisms of resistance are ill-defined. Here we focus on GluClRs of the agricultural endoparasite, Haemonchus contortus. We demonstrate that IVM potentiates inhibitory input by inducing a tonic current that plateaus over 15 minutes and by enhancing post-synaptic current peak amplitude and decay times. We further demonstrate that IVM greatly enhances the active durations of single receptors. These effects are greatly attenuated when endogenous IVM-insensitive subunits are incorporated into GluClRs, suggesting a mechanism of IVM resistance that does not affect glutamate sensitivity. We discovered functional groups of IVM that contribute to tuning its potency at different isoforms and show that the dominant mode of access of IVM is via the cell membrane to the receptor. Public Library of Science 2019-01-29 /pmc/articles/PMC6368337/ /pubmed/30695069 http://dx.doi.org/10.1371/journal.ppat.1007570 Text en © 2019 Atif 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
Atif, Mohammed
Smith, Jennifer J.
Estrada-Mondragon, Argel
Xiao, Xue
Salim, Angela A.
Capon, Robert J.
Lynch, Joseph W.
Keramidas, Angelo
GluClR-mediated inhibitory postsynaptic currents reveal targets for ivermectin and potential mechanisms of ivermectin resistance
title GluClR-mediated inhibitory postsynaptic currents reveal targets for ivermectin and potential mechanisms of ivermectin resistance
title_full GluClR-mediated inhibitory postsynaptic currents reveal targets for ivermectin and potential mechanisms of ivermectin resistance
title_fullStr GluClR-mediated inhibitory postsynaptic currents reveal targets for ivermectin and potential mechanisms of ivermectin resistance
title_full_unstemmed GluClR-mediated inhibitory postsynaptic currents reveal targets for ivermectin and potential mechanisms of ivermectin resistance
title_short GluClR-mediated inhibitory postsynaptic currents reveal targets for ivermectin and potential mechanisms of ivermectin resistance
title_sort gluclr-mediated inhibitory postsynaptic currents reveal targets for ivermectin and potential mechanisms of ivermectin resistance
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6368337/
https://www.ncbi.nlm.nih.gov/pubmed/30695069
http://dx.doi.org/10.1371/journal.ppat.1007570
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