On Zebrafish Disease Models and Matters of the Heart

Coronary artery disease (CAD) is the leading form of cardiovascular disease (CVD), which is the primary cause of mortality worldwide. It is a complex disease with genetic and environmental risk factor contributions. Reports in human and mammalian models elucidate age-associated changes in cardiac fu...

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Main Authors: Panagiota Giardoglou, Dimitris Beis
Format: Article
Language:English
Published: MDPI AG 2019-02-01
Series:Biomedicines
Subjects:
Online Access:http://www.mdpi.com/2227-9059/7/1/15
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spelling doaj-f4885314575c48dbbc96750c666b85212020-11-24T23:09:39ZengMDPI AGBiomedicines2227-90592019-02-01711510.3390/biomedicines7010015biomedicines7010015On Zebrafish Disease Models and Matters of the HeartPanagiota Giardoglou0Dimitris Beis1Zebrafish Disease Models Lab, Center for Clinical Experimental Surgery and Translational Research, Biomedical Research Foundation Academy of Athens, 11527 Athens, GreeceZebrafish Disease Models Lab, Center for Clinical Experimental Surgery and Translational Research, Biomedical Research Foundation Academy of Athens, 11527 Athens, GreeceCoronary artery disease (CAD) is the leading form of cardiovascular disease (CVD), which is the primary cause of mortality worldwide. It is a complex disease with genetic and environmental risk factor contributions. Reports in human and mammalian models elucidate age-associated changes in cardiac function. The diverse mechanisms involved in cardiac diseases remain at the center of the research interest to identify novel strategies for prevention and therapy. Zebrafish (Danio rerio) have emerged as a valuable vertebrate model to study cardiovascular development over the last few decades. The facile genetic manipulation via forward and reverse genetic approaches combined with noninvasive, high-resolution imaging and phenotype-based screening has provided new insights to molecular pathways that orchestrate cardiac development. Zebrafish can recapitulate human cardiac pathophysiology due to gene and regulatory pathways conservation, similar heart rate and cardiac morphology and function. Thus, generations of zebrafish models utilize the functional analysis of genes involved in CAD, which are derived from large-scale human population analysis. Here, we highlight recent studies conducted on cardiovascular research focusing on the benefits of the combination of genome-wide association studies (GWAS) with functional genomic analysis in zebrafish. We further summarize the knowledge obtained from zebrafish studies that have demonstrated the architecture of the fundamental mechanisms underlying heart development, homeostasis and regeneration at the cellular and molecular levels.http://www.mdpi.com/2227-9059/7/1/15cardiovascular developmentgenetic manipulationphenotype screeninggenome-wide association studiesfunctional analysis
collection DOAJ
language English
format Article
sources DOAJ
author Panagiota Giardoglou
Dimitris Beis
spellingShingle Panagiota Giardoglou
Dimitris Beis
On Zebrafish Disease Models and Matters of the Heart
Biomedicines
cardiovascular development
genetic manipulation
phenotype screening
genome-wide association studies
functional analysis
author_facet Panagiota Giardoglou
Dimitris Beis
author_sort Panagiota Giardoglou
title On Zebrafish Disease Models and Matters of the Heart
title_short On Zebrafish Disease Models and Matters of the Heart
title_full On Zebrafish Disease Models and Matters of the Heart
title_fullStr On Zebrafish Disease Models and Matters of the Heart
title_full_unstemmed On Zebrafish Disease Models and Matters of the Heart
title_sort on zebrafish disease models and matters of the heart
publisher MDPI AG
series Biomedicines
issn 2227-9059
publishDate 2019-02-01
description Coronary artery disease (CAD) is the leading form of cardiovascular disease (CVD), which is the primary cause of mortality worldwide. It is a complex disease with genetic and environmental risk factor contributions. Reports in human and mammalian models elucidate age-associated changes in cardiac function. The diverse mechanisms involved in cardiac diseases remain at the center of the research interest to identify novel strategies for prevention and therapy. Zebrafish (Danio rerio) have emerged as a valuable vertebrate model to study cardiovascular development over the last few decades. The facile genetic manipulation via forward and reverse genetic approaches combined with noninvasive, high-resolution imaging and phenotype-based screening has provided new insights to molecular pathways that orchestrate cardiac development. Zebrafish can recapitulate human cardiac pathophysiology due to gene and regulatory pathways conservation, similar heart rate and cardiac morphology and function. Thus, generations of zebrafish models utilize the functional analysis of genes involved in CAD, which are derived from large-scale human population analysis. Here, we highlight recent studies conducted on cardiovascular research focusing on the benefits of the combination of genome-wide association studies (GWAS) with functional genomic analysis in zebrafish. We further summarize the knowledge obtained from zebrafish studies that have demonstrated the architecture of the fundamental mechanisms underlying heart development, homeostasis and regeneration at the cellular and molecular levels.
topic cardiovascular development
genetic manipulation
phenotype screening
genome-wide association studies
functional analysis
url http://www.mdpi.com/2227-9059/7/1/15
work_keys_str_mv AT panagiotagiardoglou onzebrafishdiseasemodelsandmattersoftheheart
AT dimitrisbeis onzebrafishdiseasemodelsandmattersoftheheart
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