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March 1, 2017Developmental Dynamics183 citationsOpen Access

Heart function and hemodynamic analysis for zebrafish embryos

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HYHuseyin C. YalcinAAArmin AmindariJBJonathan T. Butcher

Structured PICO

P
Population
Zebrafish embryos used as a vertebrate animal model for cardiovascular research
I
Intervention
Heart function and hemodynamic analysis techniques (e.g., light-sheet fluorescent microscopy, particle image velocimetry, computational fluid dynamics modeling)
O
Outcome
Precise determination of blood flow patterns and hemodynamic stress (wall shear stress and pressure)

Advanced imaging and computational modeling techniques are crucial for reliable assessment of heart function and hemodynamics in zebrafish models of cardiovascular disease.

Abstract

The Zebrafish has emerged to become a powerful vertebrate animal model for cardiovascular research in recent years. Its advantages include easy genetic manipulation, transparency, small size, low cost, and the ability to survive without active circulation at early stages of development. Sequencing the whole genome and identifying ortholog genes with human genome made it possible to induce clinically relevant cardiovascular defects via genetic approaches. Heart function and disturbed hemodynamics need to be assessed in a reliable manner for these disease models in order to reveal the mechanobiology of induced defects. This effort requires precise determination of blood flow patterns as well as hemodynamic stress (i.e., wall shear stress and pressure) levels within the developing heart. While traditional approach involves time-lapse brightfield microscopy to track cell and tissue movements, in more recent studies fast light-sheet fluorescent microscopes are utilized for that purpose. Integration of more complicated techniques like particle image velocimetry and computational fluid dynamics modeling for hemodynamic analysis holds a great promise to the advancement of the Zebrafish studies. Here, we discuss the latest developments in heart function and hemodynamic analysis for Zebrafish embryos and conclude with our future perspective on dynamic analysis of the Zebrafish cardiovascular system. Developmental Dynamics 246:868-880, 2017. © 2017 Wiley Periodicals, Inc.

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Yalcin et al. (2017) studied this question.

synapsesocial.com/papers/69d8fce55c3030ff03d1abb9https://doi.org/10.1002/dvdy.24497
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