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Bestrophin-Encoded Ca(2+)-Activated Cl(−) Channels Underlie a Current with Properties Similar to the Native Current in the Moth Spodoptera littoralis Olfactory Receptor Neurons

Responses of insect olfactory receptor neurons (ORNs) involve an entry of Ca(2+) through olfactory heterodimeric receptor complexes. In moths, the termination of ORN responses was found to strongly depend on the external Ca(2+) concentration through the activation of unknown Ca(2+)-dependent Cl(−) c...

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Detalles Bibliográficos
Autores principales: François, Adrien, Grauso, Marta, Demondion, Elodie, Bozzolan, Françoise, Debernard, Stéphane, Lucas, Philippe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3530479/
https://www.ncbi.nlm.nih.gov/pubmed/23300744
http://dx.doi.org/10.1371/journal.pone.0052691
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author François, Adrien
Grauso, Marta
Demondion, Elodie
Bozzolan, Françoise
Debernard, Stéphane
Lucas, Philippe
author_facet François, Adrien
Grauso, Marta
Demondion, Elodie
Bozzolan, Françoise
Debernard, Stéphane
Lucas, Philippe
author_sort François, Adrien
collection PubMed
description Responses of insect olfactory receptor neurons (ORNs) involve an entry of Ca(2+) through olfactory heterodimeric receptor complexes. In moths, the termination of ORN responses was found to strongly depend on the external Ca(2+) concentration through the activation of unknown Ca(2+)-dependent Cl(−) channels. We thus investigated the molecular identity of these Cl(−) channels. There is compelling evidence that bestrophins form Cl(−) channels when expressed in heterologous systems. Here we provide evidence that antennae of the moth Spodoptera littoralis express three transcripts encoding proteins with hallmarks of bestrophins. One of these transcripts, SlitBest1b, is expressed in ORNs. The heterologous expression of SlitBest1b protein in CHO-K1 cells yielded a Ca(2+)-activated Cl(−) current that shares electrophysiological properties with the native Ca(2+)-activated Cl(−) current of ORNs. Both currents are anionic, present similar dependence on the intracellular Ca(2+) concentration, partly inactivate over time, have the same anion permeability sequence, the same sequence of inhibitory efficiency of blockers, the same almost linear I–V relationships and finally both currents do not depend on the cell volume. Therefore, our data suggest that SlitBest1b is a good candidate for being a molecular component of the olfactory Ca(2+)-activated Cl(−) channel and is likely to constitute part of the insect olfactory transduction pathway. A different function (e.g. regulation of other proteins, maintenance of the anionic homeostasis in the sensillar lymph) and a different role (e.g. involvement in the olfactory system development) cannot be excluded however.
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spelling pubmed-35304792013-01-08 Bestrophin-Encoded Ca(2+)-Activated Cl(−) Channels Underlie a Current with Properties Similar to the Native Current in the Moth Spodoptera littoralis Olfactory Receptor Neurons François, Adrien Grauso, Marta Demondion, Elodie Bozzolan, Françoise Debernard, Stéphane Lucas, Philippe PLoS One Research Article Responses of insect olfactory receptor neurons (ORNs) involve an entry of Ca(2+) through olfactory heterodimeric receptor complexes. In moths, the termination of ORN responses was found to strongly depend on the external Ca(2+) concentration through the activation of unknown Ca(2+)-dependent Cl(−) channels. We thus investigated the molecular identity of these Cl(−) channels. There is compelling evidence that bestrophins form Cl(−) channels when expressed in heterologous systems. Here we provide evidence that antennae of the moth Spodoptera littoralis express three transcripts encoding proteins with hallmarks of bestrophins. One of these transcripts, SlitBest1b, is expressed in ORNs. The heterologous expression of SlitBest1b protein in CHO-K1 cells yielded a Ca(2+)-activated Cl(−) current that shares electrophysiological properties with the native Ca(2+)-activated Cl(−) current of ORNs. Both currents are anionic, present similar dependence on the intracellular Ca(2+) concentration, partly inactivate over time, have the same anion permeability sequence, the same sequence of inhibitory efficiency of blockers, the same almost linear I–V relationships and finally both currents do not depend on the cell volume. Therefore, our data suggest that SlitBest1b is a good candidate for being a molecular component of the olfactory Ca(2+)-activated Cl(−) channel and is likely to constitute part of the insect olfactory transduction pathway. A different function (e.g. regulation of other proteins, maintenance of the anionic homeostasis in the sensillar lymph) and a different role (e.g. involvement in the olfactory system development) cannot be excluded however. Public Library of Science 2012-12-26 /pmc/articles/PMC3530479/ /pubmed/23300744 http://dx.doi.org/10.1371/journal.pone.0052691 Text en © 2012 François 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, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
François, Adrien
Grauso, Marta
Demondion, Elodie
Bozzolan, Françoise
Debernard, Stéphane
Lucas, Philippe
Bestrophin-Encoded Ca(2+)-Activated Cl(−) Channels Underlie a Current with Properties Similar to the Native Current in the Moth Spodoptera littoralis Olfactory Receptor Neurons
title Bestrophin-Encoded Ca(2+)-Activated Cl(−) Channels Underlie a Current with Properties Similar to the Native Current in the Moth Spodoptera littoralis Olfactory Receptor Neurons
title_full Bestrophin-Encoded Ca(2+)-Activated Cl(−) Channels Underlie a Current with Properties Similar to the Native Current in the Moth Spodoptera littoralis Olfactory Receptor Neurons
title_fullStr Bestrophin-Encoded Ca(2+)-Activated Cl(−) Channels Underlie a Current with Properties Similar to the Native Current in the Moth Spodoptera littoralis Olfactory Receptor Neurons
title_full_unstemmed Bestrophin-Encoded Ca(2+)-Activated Cl(−) Channels Underlie a Current with Properties Similar to the Native Current in the Moth Spodoptera littoralis Olfactory Receptor Neurons
title_short Bestrophin-Encoded Ca(2+)-Activated Cl(−) Channels Underlie a Current with Properties Similar to the Native Current in the Moth Spodoptera littoralis Olfactory Receptor Neurons
title_sort bestrophin-encoded ca(2+)-activated cl(−) channels underlie a current with properties similar to the native current in the moth spodoptera littoralis olfactory receptor neurons
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3530479/
https://www.ncbi.nlm.nih.gov/pubmed/23300744
http://dx.doi.org/10.1371/journal.pone.0052691
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