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Simultaneous imaging of calcium and contraction in the beating heart of zebrafish larvae

In vivo models of cardiac function maintain the complex relationship of cardiomyocytes with other heart cells, as well as the paracrine and mechanoelectrical feedback mechanisms. We aimed at imaging calcium transients simultaneously with heart contraction in zebrafish larvae. Methods: To image calci...

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Autores principales: Salgado-Almario, Jussep, Vicente, Manuel, Molina, Yillcer, Martinez-Sielva, Antonio, Vincent, Pierre, Domingo, Beatriz, Llopis, Juan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8771564/
https://www.ncbi.nlm.nih.gov/pubmed/35154472
http://dx.doi.org/10.7150/thno.64734
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author Salgado-Almario, Jussep
Vicente, Manuel
Molina, Yillcer
Martinez-Sielva, Antonio
Vincent, Pierre
Domingo, Beatriz
Llopis, Juan
author_facet Salgado-Almario, Jussep
Vicente, Manuel
Molina, Yillcer
Martinez-Sielva, Antonio
Vincent, Pierre
Domingo, Beatriz
Llopis, Juan
author_sort Salgado-Almario, Jussep
collection PubMed
description In vivo models of cardiac function maintain the complex relationship of cardiomyocytes with other heart cells, as well as the paracrine and mechanoelectrical feedback mechanisms. We aimed at imaging calcium transients simultaneously with heart contraction in zebrafish larvae. Methods: To image calcium in beating hearts, we generated a zebrafish transgenic line expressing the FRET-based ratiometric biosensor Twitch-4. Since emission ratioing canceled out the motion artifacts, we did not use myosin inhibitors or tnnt2a morpholinos to uncouple contraction from changes in calcium levels. We wrote an analysis program to automatically calculate kinetic parameters of the calcium transients. In addition, the ventricular diameter was determined in the fluorescence images providing a real-time measurement of contraction correlated with calcium. Results: Expression of Twitch-4 did not affect the force of contraction, the size of the heart nor the heart rate in 3- and 5-days post-fertilization (dpf) larvae. Comparison of 3 and 5 dpf larvae showed that calcium levels and transient amplitude were larger at 5 dpf, but the fractional shortening did not change. To validate the model, we evaluated the effect of drugs with known effects on cardiomyocytes. Calcium levels and the force of contraction decreased by the L-type calcium channel blocker nifedipine, whereas they increased with the activator Bay-K 8644. Caffeine induced bradycardia, markedly decreased ventricular diastolic calcium levels, increased the size of the calcium transients, and caused an escape rhythm in some larvae. Conclusions: The Tg(myl7:Twitch-4) line provides a physiological approach to image systolic and diastolic calcium levels in the heart of zebrafish larvae. Since the heart is beating, calcium levels and contraction can be correlated. This line will be a useful tool to address pathophysiological mechanisms in diseases like heart failure and arrhythmia, in cardiotoxicity studies and for drug screening.
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spelling pubmed-87715642022-02-10 Simultaneous imaging of calcium and contraction in the beating heart of zebrafish larvae Salgado-Almario, Jussep Vicente, Manuel Molina, Yillcer Martinez-Sielva, Antonio Vincent, Pierre Domingo, Beatriz Llopis, Juan Theranostics Research Paper In vivo models of cardiac function maintain the complex relationship of cardiomyocytes with other heart cells, as well as the paracrine and mechanoelectrical feedback mechanisms. We aimed at imaging calcium transients simultaneously with heart contraction in zebrafish larvae. Methods: To image calcium in beating hearts, we generated a zebrafish transgenic line expressing the FRET-based ratiometric biosensor Twitch-4. Since emission ratioing canceled out the motion artifacts, we did not use myosin inhibitors or tnnt2a morpholinos to uncouple contraction from changes in calcium levels. We wrote an analysis program to automatically calculate kinetic parameters of the calcium transients. In addition, the ventricular diameter was determined in the fluorescence images providing a real-time measurement of contraction correlated with calcium. Results: Expression of Twitch-4 did not affect the force of contraction, the size of the heart nor the heart rate in 3- and 5-days post-fertilization (dpf) larvae. Comparison of 3 and 5 dpf larvae showed that calcium levels and transient amplitude were larger at 5 dpf, but the fractional shortening did not change. To validate the model, we evaluated the effect of drugs with known effects on cardiomyocytes. Calcium levels and the force of contraction decreased by the L-type calcium channel blocker nifedipine, whereas they increased with the activator Bay-K 8644. Caffeine induced bradycardia, markedly decreased ventricular diastolic calcium levels, increased the size of the calcium transients, and caused an escape rhythm in some larvae. Conclusions: The Tg(myl7:Twitch-4) line provides a physiological approach to image systolic and diastolic calcium levels in the heart of zebrafish larvae. Since the heart is beating, calcium levels and contraction can be correlated. This line will be a useful tool to address pathophysiological mechanisms in diseases like heart failure and arrhythmia, in cardiotoxicity studies and for drug screening. Ivyspring International Publisher 2022-01-01 /pmc/articles/PMC8771564/ /pubmed/35154472 http://dx.doi.org/10.7150/thno.64734 Text en © The author(s) https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/). See http://ivyspring.com/terms for full terms and conditions.
spellingShingle Research Paper
Salgado-Almario, Jussep
Vicente, Manuel
Molina, Yillcer
Martinez-Sielva, Antonio
Vincent, Pierre
Domingo, Beatriz
Llopis, Juan
Simultaneous imaging of calcium and contraction in the beating heart of zebrafish larvae
title Simultaneous imaging of calcium and contraction in the beating heart of zebrafish larvae
title_full Simultaneous imaging of calcium and contraction in the beating heart of zebrafish larvae
title_fullStr Simultaneous imaging of calcium and contraction in the beating heart of zebrafish larvae
title_full_unstemmed Simultaneous imaging of calcium and contraction in the beating heart of zebrafish larvae
title_short Simultaneous imaging of calcium and contraction in the beating heart of zebrafish larvae
title_sort simultaneous imaging of calcium and contraction in the beating heart of zebrafish larvae
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8771564/
https://www.ncbi.nlm.nih.gov/pubmed/35154472
http://dx.doi.org/10.7150/thno.64734
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