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Local Control Model of a Human Ventricular Myocyte: An Exploration of Frequency-Dependent Changes and Calcium Sparks

Calcium (Ca(2+)) sparks are the elementary events of excitation–contraction coupling, yet they are not explicitly represented in human ventricular myocyte models. A stochastic ventricular cardiomyocyte human model that adapts to intracellular Ca(2+) ([Ca(2+)](i)) dynamics, spark regulation, and freq...

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Autores principales: Alvarez, Jerome Anthony E., Jafri, M. Saleet, Ullah, Aman
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10452762/
https://www.ncbi.nlm.nih.gov/pubmed/37627324
http://dx.doi.org/10.3390/biom13081259
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author Alvarez, Jerome Anthony E.
Jafri, M. Saleet
Ullah, Aman
author_facet Alvarez, Jerome Anthony E.
Jafri, M. Saleet
Ullah, Aman
author_sort Alvarez, Jerome Anthony E.
collection PubMed
description Calcium (Ca(2+)) sparks are the elementary events of excitation–contraction coupling, yet they are not explicitly represented in human ventricular myocyte models. A stochastic ventricular cardiomyocyte human model that adapts to intracellular Ca(2+) ([Ca(2+)](i)) dynamics, spark regulation, and frequency-dependent changes in the form of locally controlled Ca(2+) release was developed. The 20,000 CRUs in this model are composed of 9 individual LCCs and 49 RyRs that function as couplons. The simulated action potential duration at 1 Hz steady-state pacing is ~0.280 s similar to human ventricular cell recordings. Rate-dependence experiments reveal that APD shortening mechanisms are largely contributed by the L-type calcium channel inactivation, RyR open fraction, and [Ca(2+)](myo) concentrations. The dynamic slow-rapid-slow pacing protocol shows that RyR open probability during high pacing frequency (2.5 Hz) switches to an adapted “nonconducting” form of Ca(2+)-dependent transition state. The predicted force was also observed to be increased in high pacing, but the SR Ca(2+) fractional release was lower due to the smaller difference between diastolic and systolic [Ca(2+)](SR). Restitution analysis through the S1S2 protocol and increased LCC Ca(2+)-dependent activation rate show that the duration of LCC opening helps modulate its effects on the APD restitution at different diastolic intervals. Ultimately, a longer duration of calcium sparks was observed in relation to the SR Ca(2+) loading at high pacing rates. Overall, this study demonstrates the spontaneous Ca(2+) release events and ion channel responses throughout various stimuli.
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spelling pubmed-104527622023-08-26 Local Control Model of a Human Ventricular Myocyte: An Exploration of Frequency-Dependent Changes and Calcium Sparks Alvarez, Jerome Anthony E. Jafri, M. Saleet Ullah, Aman Biomolecules Article Calcium (Ca(2+)) sparks are the elementary events of excitation–contraction coupling, yet they are not explicitly represented in human ventricular myocyte models. A stochastic ventricular cardiomyocyte human model that adapts to intracellular Ca(2+) ([Ca(2+)](i)) dynamics, spark regulation, and frequency-dependent changes in the form of locally controlled Ca(2+) release was developed. The 20,000 CRUs in this model are composed of 9 individual LCCs and 49 RyRs that function as couplons. The simulated action potential duration at 1 Hz steady-state pacing is ~0.280 s similar to human ventricular cell recordings. Rate-dependence experiments reveal that APD shortening mechanisms are largely contributed by the L-type calcium channel inactivation, RyR open fraction, and [Ca(2+)](myo) concentrations. The dynamic slow-rapid-slow pacing protocol shows that RyR open probability during high pacing frequency (2.5 Hz) switches to an adapted “nonconducting” form of Ca(2+)-dependent transition state. The predicted force was also observed to be increased in high pacing, but the SR Ca(2+) fractional release was lower due to the smaller difference between diastolic and systolic [Ca(2+)](SR). Restitution analysis through the S1S2 protocol and increased LCC Ca(2+)-dependent activation rate show that the duration of LCC opening helps modulate its effects on the APD restitution at different diastolic intervals. Ultimately, a longer duration of calcium sparks was observed in relation to the SR Ca(2+) loading at high pacing rates. Overall, this study demonstrates the spontaneous Ca(2+) release events and ion channel responses throughout various stimuli. MDPI 2023-08-17 /pmc/articles/PMC10452762/ /pubmed/37627324 http://dx.doi.org/10.3390/biom13081259 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Alvarez, Jerome Anthony E.
Jafri, M. Saleet
Ullah, Aman
Local Control Model of a Human Ventricular Myocyte: An Exploration of Frequency-Dependent Changes and Calcium Sparks
title Local Control Model of a Human Ventricular Myocyte: An Exploration of Frequency-Dependent Changes and Calcium Sparks
title_full Local Control Model of a Human Ventricular Myocyte: An Exploration of Frequency-Dependent Changes and Calcium Sparks
title_fullStr Local Control Model of a Human Ventricular Myocyte: An Exploration of Frequency-Dependent Changes and Calcium Sparks
title_full_unstemmed Local Control Model of a Human Ventricular Myocyte: An Exploration of Frequency-Dependent Changes and Calcium Sparks
title_short Local Control Model of a Human Ventricular Myocyte: An Exploration of Frequency-Dependent Changes and Calcium Sparks
title_sort local control model of a human ventricular myocyte: an exploration of frequency-dependent changes and calcium sparks
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10452762/
https://www.ncbi.nlm.nih.gov/pubmed/37627324
http://dx.doi.org/10.3390/biom13081259
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