Cargando…

Forskolin Suppresses Delayed-Rectifier K(+) Currents and Enhances Spike Frequency-Dependent Adaptation of Sympathetic Neurons

In signal transduction research natural or synthetic molecules are commonly used to target a great variety of signaling proteins. For instance, forskolin, a diterpene activator of adenylate cyclase, has been widely used in cellular preparations to increase the intracellular cAMP level. However, it h...

Descripción completa

Detalles Bibliográficos
Autores principales: Angel-Chavez, Luis I., Acosta-Gómez, Eduardo I., Morales-Avalos, Mario, Castro, Elena, Cruzblanca, Humberto
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4427186/
https://www.ncbi.nlm.nih.gov/pubmed/25962132
http://dx.doi.org/10.1371/journal.pone.0126365
_version_ 1782370689087438848
author Angel-Chavez, Luis I.
Acosta-Gómez, Eduardo I.
Morales-Avalos, Mario
Castro, Elena
Cruzblanca, Humberto
author_facet Angel-Chavez, Luis I.
Acosta-Gómez, Eduardo I.
Morales-Avalos, Mario
Castro, Elena
Cruzblanca, Humberto
author_sort Angel-Chavez, Luis I.
collection PubMed
description In signal transduction research natural or synthetic molecules are commonly used to target a great variety of signaling proteins. For instance, forskolin, a diterpene activator of adenylate cyclase, has been widely used in cellular preparations to increase the intracellular cAMP level. However, it has been shown that forskolin directly inhibits some cloned K(+) channels, which in excitable cells set up the resting membrane potential, the shape of action potential and regulate repetitive firing. Despite the growing evidence indicating that K(+) channels are blocked by forskolin, there are no studies yet assessing the impact of this mechanism of action on neuron excitability and firing patterns. In sympathetic neurons, we find that forskolin and its derivative 1,9-Dideoxyforskolin, reversibly suppress the delayed rectifier K(+) current (I(KV)). Besides, forskolin reduced the spike afterhyperpolarization and enhanced the spike frequency-dependent adaptation. Given that I(KV) is mostly generated by Kv2.1 channels, HEK-293 cells were transfected with cDNA encoding for the Kv2.1 α subunit, to characterize the mechanism of forskolin action. Both drugs reversible suppressed the Kv2.1-mediated K(+) currents. Forskolin inhibited Kv2.1 currents and I(KV) with an IC(50) of ~32 μM and ~24 µM, respectively. Besides, the drug induced an apparent current inactivation and slowed-down current deactivation. We suggest that forskolin reduces the excitability of sympathetic neurons by enhancing the spike frequency-dependent adaptation, partially through a direct block of their native Kv2.1 channels.
format Online
Article
Text
id pubmed-4427186
institution National Center for Biotechnology Information
language English
publishDate 2015
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-44271862015-05-21 Forskolin Suppresses Delayed-Rectifier K(+) Currents and Enhances Spike Frequency-Dependent Adaptation of Sympathetic Neurons Angel-Chavez, Luis I. Acosta-Gómez, Eduardo I. Morales-Avalos, Mario Castro, Elena Cruzblanca, Humberto PLoS One Research Article In signal transduction research natural or synthetic molecules are commonly used to target a great variety of signaling proteins. For instance, forskolin, a diterpene activator of adenylate cyclase, has been widely used in cellular preparations to increase the intracellular cAMP level. However, it has been shown that forskolin directly inhibits some cloned K(+) channels, which in excitable cells set up the resting membrane potential, the shape of action potential and regulate repetitive firing. Despite the growing evidence indicating that K(+) channels are blocked by forskolin, there are no studies yet assessing the impact of this mechanism of action on neuron excitability and firing patterns. In sympathetic neurons, we find that forskolin and its derivative 1,9-Dideoxyforskolin, reversibly suppress the delayed rectifier K(+) current (I(KV)). Besides, forskolin reduced the spike afterhyperpolarization and enhanced the spike frequency-dependent adaptation. Given that I(KV) is mostly generated by Kv2.1 channels, HEK-293 cells were transfected with cDNA encoding for the Kv2.1 α subunit, to characterize the mechanism of forskolin action. Both drugs reversible suppressed the Kv2.1-mediated K(+) currents. Forskolin inhibited Kv2.1 currents and I(KV) with an IC(50) of ~32 μM and ~24 µM, respectively. Besides, the drug induced an apparent current inactivation and slowed-down current deactivation. We suggest that forskolin reduces the excitability of sympathetic neurons by enhancing the spike frequency-dependent adaptation, partially through a direct block of their native Kv2.1 channels. Public Library of Science 2015-05-11 /pmc/articles/PMC4427186/ /pubmed/25962132 http://dx.doi.org/10.1371/journal.pone.0126365 Text en © 2015 Angel-Chavez 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
Angel-Chavez, Luis I.
Acosta-Gómez, Eduardo I.
Morales-Avalos, Mario
Castro, Elena
Cruzblanca, Humberto
Forskolin Suppresses Delayed-Rectifier K(+) Currents and Enhances Spike Frequency-Dependent Adaptation of Sympathetic Neurons
title Forskolin Suppresses Delayed-Rectifier K(+) Currents and Enhances Spike Frequency-Dependent Adaptation of Sympathetic Neurons
title_full Forskolin Suppresses Delayed-Rectifier K(+) Currents and Enhances Spike Frequency-Dependent Adaptation of Sympathetic Neurons
title_fullStr Forskolin Suppresses Delayed-Rectifier K(+) Currents and Enhances Spike Frequency-Dependent Adaptation of Sympathetic Neurons
title_full_unstemmed Forskolin Suppresses Delayed-Rectifier K(+) Currents and Enhances Spike Frequency-Dependent Adaptation of Sympathetic Neurons
title_short Forskolin Suppresses Delayed-Rectifier K(+) Currents and Enhances Spike Frequency-Dependent Adaptation of Sympathetic Neurons
title_sort forskolin suppresses delayed-rectifier k(+) currents and enhances spike frequency-dependent adaptation of sympathetic neurons
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4427186/
https://www.ncbi.nlm.nih.gov/pubmed/25962132
http://dx.doi.org/10.1371/journal.pone.0126365
work_keys_str_mv AT angelchavezluisi forskolinsuppressesdelayedrectifierkcurrentsandenhancesspikefrequencydependentadaptationofsympatheticneurons
AT acostagomezeduardoi forskolinsuppressesdelayedrectifierkcurrentsandenhancesspikefrequencydependentadaptationofsympatheticneurons
AT moralesavalosmario forskolinsuppressesdelayedrectifierkcurrentsandenhancesspikefrequencydependentadaptationofsympatheticneurons
AT castroelena forskolinsuppressesdelayedrectifierkcurrentsandenhancesspikefrequencydependentadaptationofsympatheticneurons
AT cruzblancahumberto forskolinsuppressesdelayedrectifierkcurrentsandenhancesspikefrequencydependentadaptationofsympatheticneurons