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Multiple modes of proepicardial cell migration require heartbeat

BACKGROUND: The outermost layer of the vertebrate heart, the epicardium, forms from a cluster of progenitor cells termed the proepicardium (PE). PE cells migrate onto the myocardium to give rise to the epicardium. Impaired epicardial development has been associated with defects in valve development,...

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Autores principales: Plavicki, Jessica S, Hofsteen, Peter, Yue, Monica S, Lanham, Kevin A, Peterson, Richard E, Heideman, Warren
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4048602/
https://www.ncbi.nlm.nih.gov/pubmed/24885804
http://dx.doi.org/10.1186/1471-213X-14-18
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author Plavicki, Jessica S
Hofsteen, Peter
Yue, Monica S
Lanham, Kevin A
Peterson, Richard E
Heideman, Warren
author_facet Plavicki, Jessica S
Hofsteen, Peter
Yue, Monica S
Lanham, Kevin A
Peterson, Richard E
Heideman, Warren
author_sort Plavicki, Jessica S
collection PubMed
description BACKGROUND: The outermost layer of the vertebrate heart, the epicardium, forms from a cluster of progenitor cells termed the proepicardium (PE). PE cells migrate onto the myocardium to give rise to the epicardium. Impaired epicardial development has been associated with defects in valve development, cardiomyocyte proliferation and alignment, cardiac conduction system maturation and adult heart regeneration. Zebrafish are an excellent model for studying cardiac development and regeneration; however, little is known about how the zebrafish epicardium forms. RESULTS: We report that PE migration occurs through multiple mechanisms and that the zebrafish epicardium is composed of a heterogeneous population of cells. Heterogeneity is first observed within the PE and persists through epicardium formation. Using in vivo imaging, histology and confocal microscopy, we show that PE cells migrate through a cellular bridge that forms between the pericardial mesothelium and the heart. We also observed the formation of PE aggregates on the pericardial surface, which were released into the pericardial cavity. It was previously reported that heartbeat-induced pericardiac fluid advections are necessary for PE cluster formation and subsequent epicardium development. We manipulated heartbeat genetically and pharmacologically and found that PE clusters clearly form in the absence of heartbeat. However, when heartbeat was inhibited the PE failed to migrate to the myocardium and the epicardium did not form. We isolated and cultured hearts with only a few epicardial progenitor cells and found a complete epicardial layer formed. However, pharmacologically inhibiting contraction in culture prevented epicardium formation. Furthermore, we isolated control and silent heart (sih) morpholino (MO) injected hearts prior to epicardium formation (60 hpf) and co-cultured these hearts with “donor” hearts that had an epicardium forming (108 hpf). Epicardial cells from donor hearts migrated on to control but not sih MO injected hearts. CONCLUSIONS: Epicardial cells stem from a heterogeneous population of progenitors, suggesting that the progenitors in the PE have distinct identities. PE cells attach to the heart via a cellular bridge and free-floating cell clusters. Pericardiac fluid advections are not necessary for the development of the PE cluster, however heartbeat is required for epicardium formation. Epicardium formation can occur in culture without normal hydrodynamic and hemodynamic forces, but not without contraction.
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spelling pubmed-40486022014-06-08 Multiple modes of proepicardial cell migration require heartbeat Plavicki, Jessica S Hofsteen, Peter Yue, Monica S Lanham, Kevin A Peterson, Richard E Heideman, Warren BMC Dev Biol Research Article BACKGROUND: The outermost layer of the vertebrate heart, the epicardium, forms from a cluster of progenitor cells termed the proepicardium (PE). PE cells migrate onto the myocardium to give rise to the epicardium. Impaired epicardial development has been associated with defects in valve development, cardiomyocyte proliferation and alignment, cardiac conduction system maturation and adult heart regeneration. Zebrafish are an excellent model for studying cardiac development and regeneration; however, little is known about how the zebrafish epicardium forms. RESULTS: We report that PE migration occurs through multiple mechanisms and that the zebrafish epicardium is composed of a heterogeneous population of cells. Heterogeneity is first observed within the PE and persists through epicardium formation. Using in vivo imaging, histology and confocal microscopy, we show that PE cells migrate through a cellular bridge that forms between the pericardial mesothelium and the heart. We also observed the formation of PE aggregates on the pericardial surface, which were released into the pericardial cavity. It was previously reported that heartbeat-induced pericardiac fluid advections are necessary for PE cluster formation and subsequent epicardium development. We manipulated heartbeat genetically and pharmacologically and found that PE clusters clearly form in the absence of heartbeat. However, when heartbeat was inhibited the PE failed to migrate to the myocardium and the epicardium did not form. We isolated and cultured hearts with only a few epicardial progenitor cells and found a complete epicardial layer formed. However, pharmacologically inhibiting contraction in culture prevented epicardium formation. Furthermore, we isolated control and silent heart (sih) morpholino (MO) injected hearts prior to epicardium formation (60 hpf) and co-cultured these hearts with “donor” hearts that had an epicardium forming (108 hpf). Epicardial cells from donor hearts migrated on to control but not sih MO injected hearts. CONCLUSIONS: Epicardial cells stem from a heterogeneous population of progenitors, suggesting that the progenitors in the PE have distinct identities. PE cells attach to the heart via a cellular bridge and free-floating cell clusters. Pericardiac fluid advections are not necessary for the development of the PE cluster, however heartbeat is required for epicardium formation. Epicardium formation can occur in culture without normal hydrodynamic and hemodynamic forces, but not without contraction. BioMed Central 2014-05-15 /pmc/articles/PMC4048602/ /pubmed/24885804 http://dx.doi.org/10.1186/1471-213X-14-18 Text en Copyright © 2014 Plavicki et al.; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly credited. The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/) applies to the data made available in this article, unless otherwise stated.
spellingShingle Research Article
Plavicki, Jessica S
Hofsteen, Peter
Yue, Monica S
Lanham, Kevin A
Peterson, Richard E
Heideman, Warren
Multiple modes of proepicardial cell migration require heartbeat
title Multiple modes of proepicardial cell migration require heartbeat
title_full Multiple modes of proepicardial cell migration require heartbeat
title_fullStr Multiple modes of proepicardial cell migration require heartbeat
title_full_unstemmed Multiple modes of proepicardial cell migration require heartbeat
title_short Multiple modes of proepicardial cell migration require heartbeat
title_sort multiple modes of proepicardial cell migration require heartbeat
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4048602/
https://www.ncbi.nlm.nih.gov/pubmed/24885804
http://dx.doi.org/10.1186/1471-213X-14-18
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