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Optical Interrogation of Sympathetic Neuronal Effects on Macroscopic Cardiomyocyte Network Dynamics

Cardiac stimulation via sympathetic neurons can potentially trigger arrhythmias. We present approaches to study neuron-cardiomyocyte interactions involving optogenetic selective probing and all-optical electrophysiology to measure activity in an automated fashion. Here we demonstrate the utility of...

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Autores principales: Burton, Rebecca-Ann B., Tomek, Jakub, Ambrosi, Christina M., Larsen, Hege E., Sharkey, Amy R., Capel, Rebecca A., Corbett, Alexander D., Bilton, Samuel, Klimas, Aleksandra, Stephens, Guy, Cremer, Maegan, Bose, Samuel J., Li, Dan, Gallone, Giuseppe, Herring, Neil, Mann, Edward O., Kumar, Abhinav, Kramer, Holger, Entcheva, Emilia, Paterson, David J., Bub, Gil
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7363704/
https://www.ncbi.nlm.nih.gov/pubmed/32674058
http://dx.doi.org/10.1016/j.isci.2020.101334
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author Burton, Rebecca-Ann B.
Tomek, Jakub
Ambrosi, Christina M.
Larsen, Hege E.
Sharkey, Amy R.
Capel, Rebecca A.
Corbett, Alexander D.
Bilton, Samuel
Klimas, Aleksandra
Stephens, Guy
Cremer, Maegan
Bose, Samuel J.
Li, Dan
Gallone, Giuseppe
Herring, Neil
Mann, Edward O.
Kumar, Abhinav
Kramer, Holger
Entcheva, Emilia
Paterson, David J.
Bub, Gil
author_facet Burton, Rebecca-Ann B.
Tomek, Jakub
Ambrosi, Christina M.
Larsen, Hege E.
Sharkey, Amy R.
Capel, Rebecca A.
Corbett, Alexander D.
Bilton, Samuel
Klimas, Aleksandra
Stephens, Guy
Cremer, Maegan
Bose, Samuel J.
Li, Dan
Gallone, Giuseppe
Herring, Neil
Mann, Edward O.
Kumar, Abhinav
Kramer, Holger
Entcheva, Emilia
Paterson, David J.
Bub, Gil
author_sort Burton, Rebecca-Ann B.
collection PubMed
description Cardiac stimulation via sympathetic neurons can potentially trigger arrhythmias. We present approaches to study neuron-cardiomyocyte interactions involving optogenetic selective probing and all-optical electrophysiology to measure activity in an automated fashion. Here we demonstrate the utility of optical interrogation of sympathetic neurons and their effects on macroscopic cardiomyocyte network dynamics to address research targets such as the effects of adrenergic stimulation via the release of neurotransmitters, the effect of neuronal numbers on cardiac behavior, and the applicability of optogenetics in mechanistic in vitro studies. As arrhythmias are emergent behaviors that involve the coordinated activity of millions of cells, we image at macroscopic scales to capture complex dynamics. We show that neurons can both decrease and increase wave stability and re-entrant activity in culture depending on their induced activity—a finding that may help us understand the often conflicting results seen in experimental and clinical studies.
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spelling pubmed-73637042020-07-20 Optical Interrogation of Sympathetic Neuronal Effects on Macroscopic Cardiomyocyte Network Dynamics Burton, Rebecca-Ann B. Tomek, Jakub Ambrosi, Christina M. Larsen, Hege E. Sharkey, Amy R. Capel, Rebecca A. Corbett, Alexander D. Bilton, Samuel Klimas, Aleksandra Stephens, Guy Cremer, Maegan Bose, Samuel J. Li, Dan Gallone, Giuseppe Herring, Neil Mann, Edward O. Kumar, Abhinav Kramer, Holger Entcheva, Emilia Paterson, David J. Bub, Gil iScience Article Cardiac stimulation via sympathetic neurons can potentially trigger arrhythmias. We present approaches to study neuron-cardiomyocyte interactions involving optogenetic selective probing and all-optical electrophysiology to measure activity in an automated fashion. Here we demonstrate the utility of optical interrogation of sympathetic neurons and their effects on macroscopic cardiomyocyte network dynamics to address research targets such as the effects of adrenergic stimulation via the release of neurotransmitters, the effect of neuronal numbers on cardiac behavior, and the applicability of optogenetics in mechanistic in vitro studies. As arrhythmias are emergent behaviors that involve the coordinated activity of millions of cells, we image at macroscopic scales to capture complex dynamics. We show that neurons can both decrease and increase wave stability and re-entrant activity in culture depending on their induced activity—a finding that may help us understand the often conflicting results seen in experimental and clinical studies. Elsevier 2020-07-01 /pmc/articles/PMC7363704/ /pubmed/32674058 http://dx.doi.org/10.1016/j.isci.2020.101334 Text en © 2020 The Authors http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Burton, Rebecca-Ann B.
Tomek, Jakub
Ambrosi, Christina M.
Larsen, Hege E.
Sharkey, Amy R.
Capel, Rebecca A.
Corbett, Alexander D.
Bilton, Samuel
Klimas, Aleksandra
Stephens, Guy
Cremer, Maegan
Bose, Samuel J.
Li, Dan
Gallone, Giuseppe
Herring, Neil
Mann, Edward O.
Kumar, Abhinav
Kramer, Holger
Entcheva, Emilia
Paterson, David J.
Bub, Gil
Optical Interrogation of Sympathetic Neuronal Effects on Macroscopic Cardiomyocyte Network Dynamics
title Optical Interrogation of Sympathetic Neuronal Effects on Macroscopic Cardiomyocyte Network Dynamics
title_full Optical Interrogation of Sympathetic Neuronal Effects on Macroscopic Cardiomyocyte Network Dynamics
title_fullStr Optical Interrogation of Sympathetic Neuronal Effects on Macroscopic Cardiomyocyte Network Dynamics
title_full_unstemmed Optical Interrogation of Sympathetic Neuronal Effects on Macroscopic Cardiomyocyte Network Dynamics
title_short Optical Interrogation of Sympathetic Neuronal Effects on Macroscopic Cardiomyocyte Network Dynamics
title_sort optical interrogation of sympathetic neuronal effects on macroscopic cardiomyocyte network dynamics
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7363704/
https://www.ncbi.nlm.nih.gov/pubmed/32674058
http://dx.doi.org/10.1016/j.isci.2020.101334
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