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Modulation of cardiac ionic homeostasis by 3-iodothyronamine

3-iodothyronamine (T(1)AM) is a novel endogenous relative of thyroid hormone, able to interact with trace amine-associated receptors, a class of plasma membrane G protein-coupled receptors, and to produce a negative inotropic and chronotropic effect. In the isolated rat heart 20–25 μM T(1)AM decreas...

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Autores principales: Ghelardoni, Sandra, Suffredini, Silvia, Frascarelli, Sabina, Brogioni, Simona, Chiellini, Grazia, Ronca-Testoni, Simonetta, Grandy, David K, Scanlan, Thomas S, Cerbai, Elisabetta, Zucchi, Riccardo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley & Sons, Ltd 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4516467/
https://www.ncbi.nlm.nih.gov/pubmed/19298522
http://dx.doi.org/10.1111/j.1582-4934.2009.00728.x
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author Ghelardoni, Sandra
Suffredini, Silvia
Frascarelli, Sabina
Brogioni, Simona
Chiellini, Grazia
Ronca-Testoni, Simonetta
Grandy, David K
Scanlan, Thomas S
Cerbai, Elisabetta
Zucchi, Riccardo
author_facet Ghelardoni, Sandra
Suffredini, Silvia
Frascarelli, Sabina
Brogioni, Simona
Chiellini, Grazia
Ronca-Testoni, Simonetta
Grandy, David K
Scanlan, Thomas S
Cerbai, Elisabetta
Zucchi, Riccardo
author_sort Ghelardoni, Sandra
collection PubMed
description 3-iodothyronamine (T(1)AM) is a novel endogenous relative of thyroid hormone, able to interact with trace amine-associated receptors, a class of plasma membrane G protein-coupled receptors, and to produce a negative inotropic and chronotropic effect. In the isolated rat heart 20–25 μM T(1)AM decreased cardiac contractility, but oxygen consumption and glucose uptake were either unchanged or disproportionately high when compared to mechanical work. In adult rat cardiomyocytes acute exposure to 20 μM T(1)AM decreased the amplitude and duration of the calcium transient. In patch clamped cardiomyocytes sarcolemmal calcium current density was unchanged while current facilitation by membrane depolarization was abolished consistent with reduced sarcoplasmic reticulum (SR) calcium release. In addition, T(1)AM decreased transient outward current (I(to)) and I(K1) background current. SR studies involving 20 μM T(1)AM revealed a significant decrease in ryanodine binding due to reduced B(max), no significant change in the rate constant of calcium-induced calcium release, a significant increase in calcium leak measured under conditions promoting channel closure, and no effect on oxalate-supported calcium uptake. Based on these observations we conclude T(1)AM affects calcium and potassium homeostasis and suggest its negative inotropic action is due to a diminished pool of SR calcium as a result of increased diastolic leak through the ryanodine receptor, while increased action potential duration is accounted for by inhibition of I(to) and I(K1) currents.
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spelling pubmed-45164672015-08-03 Modulation of cardiac ionic homeostasis by 3-iodothyronamine Ghelardoni, Sandra Suffredini, Silvia Frascarelli, Sabina Brogioni, Simona Chiellini, Grazia Ronca-Testoni, Simonetta Grandy, David K Scanlan, Thomas S Cerbai, Elisabetta Zucchi, Riccardo J Cell Mol Med Articles 3-iodothyronamine (T(1)AM) is a novel endogenous relative of thyroid hormone, able to interact with trace amine-associated receptors, a class of plasma membrane G protein-coupled receptors, and to produce a negative inotropic and chronotropic effect. In the isolated rat heart 20–25 μM T(1)AM decreased cardiac contractility, but oxygen consumption and glucose uptake were either unchanged or disproportionately high when compared to mechanical work. In adult rat cardiomyocytes acute exposure to 20 μM T(1)AM decreased the amplitude and duration of the calcium transient. In patch clamped cardiomyocytes sarcolemmal calcium current density was unchanged while current facilitation by membrane depolarization was abolished consistent with reduced sarcoplasmic reticulum (SR) calcium release. In addition, T(1)AM decreased transient outward current (I(to)) and I(K1) background current. SR studies involving 20 μM T(1)AM revealed a significant decrease in ryanodine binding due to reduced B(max), no significant change in the rate constant of calcium-induced calcium release, a significant increase in calcium leak measured under conditions promoting channel closure, and no effect on oxalate-supported calcium uptake. Based on these observations we conclude T(1)AM affects calcium and potassium homeostasis and suggest its negative inotropic action is due to a diminished pool of SR calcium as a result of increased diastolic leak through the ryanodine receptor, while increased action potential duration is accounted for by inhibition of I(to) and I(K1) currents. John Wiley & Sons, Ltd 2009-09 2009-02-27 /pmc/articles/PMC4516467/ /pubmed/19298522 http://dx.doi.org/10.1111/j.1582-4934.2009.00728.x Text en © 2009 The Authors Journal compilation © 2009 Foundation for Cellular and Molecular Medicine/Blackwell Publishing Ltd
spellingShingle Articles
Ghelardoni, Sandra
Suffredini, Silvia
Frascarelli, Sabina
Brogioni, Simona
Chiellini, Grazia
Ronca-Testoni, Simonetta
Grandy, David K
Scanlan, Thomas S
Cerbai, Elisabetta
Zucchi, Riccardo
Modulation of cardiac ionic homeostasis by 3-iodothyronamine
title Modulation of cardiac ionic homeostasis by 3-iodothyronamine
title_full Modulation of cardiac ionic homeostasis by 3-iodothyronamine
title_fullStr Modulation of cardiac ionic homeostasis by 3-iodothyronamine
title_full_unstemmed Modulation of cardiac ionic homeostasis by 3-iodothyronamine
title_short Modulation of cardiac ionic homeostasis by 3-iodothyronamine
title_sort modulation of cardiac ionic homeostasis by 3-iodothyronamine
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4516467/
https://www.ncbi.nlm.nih.gov/pubmed/19298522
http://dx.doi.org/10.1111/j.1582-4934.2009.00728.x
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