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Direct Evidence for Microdomain-Specific Localization and Remodeling of Functional L-Type Calcium Channels in Rat and Human Atrial Myocytes

Distinct subpopulations of L-type calcium channels (LTCCs) with different functional properties exist in cardiomyocytes. Disruption of cellular structure may affect LTCC in a microdomain-specific manner and contribute to the pathophysiology of cardiac diseases, especially in cells lacking organized...

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Autores principales: Glukhov, Alexey V., Balycheva, Marina, Sanchez-Alonso, Jose L., Ilkan, Zeki, Alvarez-Laviada, Anita, Bhogal, Navneet, Diakonov, Ivan, Schobesberger, Sophie, Sikkel, Markus B., Bhargava, Anamika, Faggian, Giuseppe, Punjabi, Prakash P., Houser, Steven R., Gorelik, Julia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Lippincott Williams & Wilkins 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4689179/
https://www.ncbi.nlm.nih.gov/pubmed/26450916
http://dx.doi.org/10.1161/CIRCULATIONAHA.115.018131
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author Glukhov, Alexey V.
Balycheva, Marina
Sanchez-Alonso, Jose L.
Ilkan, Zeki
Alvarez-Laviada, Anita
Bhogal, Navneet
Diakonov, Ivan
Schobesberger, Sophie
Sikkel, Markus B.
Bhargava, Anamika
Faggian, Giuseppe
Punjabi, Prakash P.
Houser, Steven R.
Gorelik, Julia
author_facet Glukhov, Alexey V.
Balycheva, Marina
Sanchez-Alonso, Jose L.
Ilkan, Zeki
Alvarez-Laviada, Anita
Bhogal, Navneet
Diakonov, Ivan
Schobesberger, Sophie
Sikkel, Markus B.
Bhargava, Anamika
Faggian, Giuseppe
Punjabi, Prakash P.
Houser, Steven R.
Gorelik, Julia
author_sort Glukhov, Alexey V.
collection PubMed
description Distinct subpopulations of L-type calcium channels (LTCCs) with different functional properties exist in cardiomyocytes. Disruption of cellular structure may affect LTCC in a microdomain-specific manner and contribute to the pathophysiology of cardiac diseases, especially in cells lacking organized transverse tubules (T-tubules) such as atrial myocytes (AMs). METHODS AND RESULTS—: Isolated rat and human AMs were characterized by scanning ion conductance, confocal, and electron microscopy. Half of AMs possessed T-tubules and structured topography, proportional to cell width. A bigger proportion of myocytes in the left atrium had organized T-tubules and topography than in the right atrium. Super-resolution scanning patch clamp showed that LTCCs distribute equally in T-tubules and crest areas of the sarcolemma, whereas, in ventricular myocytes, LTCCs primarily cluster in T-tubules. Rat, but not human, T-tubule LTCCs had open probability similar to crest LTCCs, but exhibited ≈40% greater current. Optical mapping of Ca(2+) transients revealed that rat AMs presented ≈3-fold as many spontaneous Ca(2+) release events as ventricular myocytes. Occurrence of crest LTCCs and spontaneous Ca(2+) transients were eliminated by either a caveolae-targeted LTCC antagonist or disrupting caveolae with methyl-β-cyclodextrin, with an associated ≈30% whole-cell I(Ca,L) reduction. Heart failure (16 weeks post–myocardial infarction) in rats resulted in a T-tubule degradation (by ≈40%) and significant elevation of spontaneous Ca(2+) release events. Although heart failure did not affect LTCC occurrence, it led to ≈25% decrease in T-tubule LTCC amplitude. CONCLUSIONS—: We provide the first direct evidence for the existence of 2 distinct subpopulations of functional LTCCs in rat and human AMs, with their biophysical properties modulated in heart failure in a microdomain-specific manner.
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spelling pubmed-46891792015-12-28 Direct Evidence for Microdomain-Specific Localization and Remodeling of Functional L-Type Calcium Channels in Rat and Human Atrial Myocytes Glukhov, Alexey V. Balycheva, Marina Sanchez-Alonso, Jose L. Ilkan, Zeki Alvarez-Laviada, Anita Bhogal, Navneet Diakonov, Ivan Schobesberger, Sophie Sikkel, Markus B. Bhargava, Anamika Faggian, Giuseppe Punjabi, Prakash P. Houser, Steven R. Gorelik, Julia Circulation Original Articles Distinct subpopulations of L-type calcium channels (LTCCs) with different functional properties exist in cardiomyocytes. Disruption of cellular structure may affect LTCC in a microdomain-specific manner and contribute to the pathophysiology of cardiac diseases, especially in cells lacking organized transverse tubules (T-tubules) such as atrial myocytes (AMs). METHODS AND RESULTS—: Isolated rat and human AMs were characterized by scanning ion conductance, confocal, and electron microscopy. Half of AMs possessed T-tubules and structured topography, proportional to cell width. A bigger proportion of myocytes in the left atrium had organized T-tubules and topography than in the right atrium. Super-resolution scanning patch clamp showed that LTCCs distribute equally in T-tubules and crest areas of the sarcolemma, whereas, in ventricular myocytes, LTCCs primarily cluster in T-tubules. Rat, but not human, T-tubule LTCCs had open probability similar to crest LTCCs, but exhibited ≈40% greater current. Optical mapping of Ca(2+) transients revealed that rat AMs presented ≈3-fold as many spontaneous Ca(2+) release events as ventricular myocytes. Occurrence of crest LTCCs and spontaneous Ca(2+) transients were eliminated by either a caveolae-targeted LTCC antagonist or disrupting caveolae with methyl-β-cyclodextrin, with an associated ≈30% whole-cell I(Ca,L) reduction. Heart failure (16 weeks post–myocardial infarction) in rats resulted in a T-tubule degradation (by ≈40%) and significant elevation of spontaneous Ca(2+) release events. Although heart failure did not affect LTCC occurrence, it led to ≈25% decrease in T-tubule LTCC amplitude. CONCLUSIONS—: We provide the first direct evidence for the existence of 2 distinct subpopulations of functional LTCCs in rat and human AMs, with their biophysical properties modulated in heart failure in a microdomain-specific manner. Lippincott Williams & Wilkins 2015-12-22 2015-12-21 /pmc/articles/PMC4689179/ /pubmed/26450916 http://dx.doi.org/10.1161/CIRCULATIONAHA.115.018131 Text en © 2015 The Authors. Circulation is published on behalf of the American Heart Association, Inc., by Wolters Kluwer. This is an open access article under the terms of the Creative Commons Attribution (https://creativecommons.org/licenses/by/3.0/) License, which permits use, distribution, and reproduction in any medium, provided that the original work is properly cited.
spellingShingle Original Articles
Glukhov, Alexey V.
Balycheva, Marina
Sanchez-Alonso, Jose L.
Ilkan, Zeki
Alvarez-Laviada, Anita
Bhogal, Navneet
Diakonov, Ivan
Schobesberger, Sophie
Sikkel, Markus B.
Bhargava, Anamika
Faggian, Giuseppe
Punjabi, Prakash P.
Houser, Steven R.
Gorelik, Julia
Direct Evidence for Microdomain-Specific Localization and Remodeling of Functional L-Type Calcium Channels in Rat and Human Atrial Myocytes
title Direct Evidence for Microdomain-Specific Localization and Remodeling of Functional L-Type Calcium Channels in Rat and Human Atrial Myocytes
title_full Direct Evidence for Microdomain-Specific Localization and Remodeling of Functional L-Type Calcium Channels in Rat and Human Atrial Myocytes
title_fullStr Direct Evidence for Microdomain-Specific Localization and Remodeling of Functional L-Type Calcium Channels in Rat and Human Atrial Myocytes
title_full_unstemmed Direct Evidence for Microdomain-Specific Localization and Remodeling of Functional L-Type Calcium Channels in Rat and Human Atrial Myocytes
title_short Direct Evidence for Microdomain-Specific Localization and Remodeling of Functional L-Type Calcium Channels in Rat and Human Atrial Myocytes
title_sort direct evidence for microdomain-specific localization and remodeling of functional l-type calcium channels in rat and human atrial myocytes
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4689179/
https://www.ncbi.nlm.nih.gov/pubmed/26450916
http://dx.doi.org/10.1161/CIRCULATIONAHA.115.018131
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