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Ranolazine inhibits shear sensitivity of endogenous Na(+) current and spontaneous action potentials in HL-1 cells
Na(V)1.5 is a mechanosensitive voltage-gated Na(+) channel encoded by the gene SCN5A, expressed in cardiac myocytes and required for phase 0 of the cardiac action potential (AP). In the cardiomyocyte, ranolazine inhibits depolarizing Na(+) current and delayed rectifier (I(Kr)) currents. Recently, ra...
Autores principales: | , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Landes Bioscience
2012
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3536731/ https://www.ncbi.nlm.nih.gov/pubmed/23018927 http://dx.doi.org/10.4161/chan.22017 |
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author | Strege, Peter Beyder, Arthur Bernard, Cheryl Crespo-Diaz, Ruben Behfar, Atta Terzic, Andre Ackerman, Michael Farrugia, Gianrico |
author_facet | Strege, Peter Beyder, Arthur Bernard, Cheryl Crespo-Diaz, Ruben Behfar, Atta Terzic, Andre Ackerman, Michael Farrugia, Gianrico |
author_sort | Strege, Peter |
collection | PubMed |
description | Na(V)1.5 is a mechanosensitive voltage-gated Na(+) channel encoded by the gene SCN5A, expressed in cardiac myocytes and required for phase 0 of the cardiac action potential (AP). In the cardiomyocyte, ranolazine inhibits depolarizing Na(+) current and delayed rectifier (I(Kr)) currents. Recently, ranolazine was also shown to be an inhibitor of Na(V)1.5 mechanosensitivity. Stretch also accelerates the firing frequency of the SA node, and fluid shear stress increases the beating rate of cultured cardiomyocytes in vitro. However, no cultured cell platform exists currently for examination of spontaneous electrical activity in response to mechanical stimulation. In the present study, flow of solution over atrial myocyte-derived HL-1 cultured cells was used to study shear stress mechanosensitivity of Na(+) current and spontaneous, endogenous rhythmic action potentials. In voltage-clamped HL-1 cells, bath flow increased peak Na(+) current by 14 ± 5%. In current-clamped cells, bath flow increased the frequency and decay rate of AP by 27 ± 12% and 18 ± 4%, respectively. Ranolazine blocked both responses to shear stress. This study suggests that cultured HL-1 cells are a viable in vitro model for detailed study of the effects of mechanical stimulation on spontaneous cardiac action potentials. Inhibition of the frequency and decay rate of action potentials in HL-1 cells are potential mechanisms behind the antiarrhythmic effect of ranolazine. |
format | Online Article Text |
id | pubmed-3536731 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2012 |
publisher | Landes Bioscience |
record_format | MEDLINE/PubMed |
spelling | pubmed-35367312013-01-04 Ranolazine inhibits shear sensitivity of endogenous Na(+) current and spontaneous action potentials in HL-1 cells Strege, Peter Beyder, Arthur Bernard, Cheryl Crespo-Diaz, Ruben Behfar, Atta Terzic, Andre Ackerman, Michael Farrugia, Gianrico Channels (Austin) Article Addendum Na(V)1.5 is a mechanosensitive voltage-gated Na(+) channel encoded by the gene SCN5A, expressed in cardiac myocytes and required for phase 0 of the cardiac action potential (AP). In the cardiomyocyte, ranolazine inhibits depolarizing Na(+) current and delayed rectifier (I(Kr)) currents. Recently, ranolazine was also shown to be an inhibitor of Na(V)1.5 mechanosensitivity. Stretch also accelerates the firing frequency of the SA node, and fluid shear stress increases the beating rate of cultured cardiomyocytes in vitro. However, no cultured cell platform exists currently for examination of spontaneous electrical activity in response to mechanical stimulation. In the present study, flow of solution over atrial myocyte-derived HL-1 cultured cells was used to study shear stress mechanosensitivity of Na(+) current and spontaneous, endogenous rhythmic action potentials. In voltage-clamped HL-1 cells, bath flow increased peak Na(+) current by 14 ± 5%. In current-clamped cells, bath flow increased the frequency and decay rate of AP by 27 ± 12% and 18 ± 4%, respectively. Ranolazine blocked both responses to shear stress. This study suggests that cultured HL-1 cells are a viable in vitro model for detailed study of the effects of mechanical stimulation on spontaneous cardiac action potentials. Inhibition of the frequency and decay rate of action potentials in HL-1 cells are potential mechanisms behind the antiarrhythmic effect of ranolazine. Landes Bioscience 2012-11-01 /pmc/articles/PMC3536731/ /pubmed/23018927 http://dx.doi.org/10.4161/chan.22017 Text en Copyright © 2012 Landes Bioscience http://creativecommons.org/licenses/by-nc/3.0/ This is an open-access article licensed under a Creative Commons Attribution-NonCommercial 3.0 Unported License. The article may be redistributed, reproduced, and reused for non-commercial purposes, provided the original source is properly cited. |
spellingShingle | Article Addendum Strege, Peter Beyder, Arthur Bernard, Cheryl Crespo-Diaz, Ruben Behfar, Atta Terzic, Andre Ackerman, Michael Farrugia, Gianrico Ranolazine inhibits shear sensitivity of endogenous Na(+) current and spontaneous action potentials in HL-1 cells |
title | Ranolazine inhibits shear sensitivity of endogenous Na(+) current and spontaneous action potentials in HL-1 cells |
title_full | Ranolazine inhibits shear sensitivity of endogenous Na(+) current and spontaneous action potentials in HL-1 cells |
title_fullStr | Ranolazine inhibits shear sensitivity of endogenous Na(+) current and spontaneous action potentials in HL-1 cells |
title_full_unstemmed | Ranolazine inhibits shear sensitivity of endogenous Na(+) current and spontaneous action potentials in HL-1 cells |
title_short | Ranolazine inhibits shear sensitivity of endogenous Na(+) current and spontaneous action potentials in HL-1 cells |
title_sort | ranolazine inhibits shear sensitivity of endogenous na(+) current and spontaneous action potentials in hl-1 cells |
topic | Article Addendum |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3536731/ https://www.ncbi.nlm.nih.gov/pubmed/23018927 http://dx.doi.org/10.4161/chan.22017 |
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