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PMID: 35666714 Published · epublish English Journal Article Research Support, Non-U.S. Gov't

Fluid mechanics of the zebrafish embryonic heart trabeculation.

PLoS computational biology ·Vol. 18 ·No. 6 ·2022-00-00 ·页码 e1010142

Cairelli AG, Chow RW, Vermot J, Yap CH

Abstract

Embryonic heart development is a mechanosensitive process, where specific fluid forces are needed for the correct development, and abnormal mechanical stimuli can lead to malformations. It is thus important to understand the nature of embryonic heart fluid forces. However, the fluid dynamical behaviour close to the embryonic endocardial surface is very sensitive to the geometry and motion dynamics of fine-scale cardiac trabecular surface structures. Here, we conducted image-based computational fluid dynamics (CFD) simulations to quantify the fluid mechanics associated with the zebrafish embryonic heart trabeculae. To capture trabecular geometric and motion details, we used a fish line that expresses fluorescence at the endocardial cell membrane, and high resolution 3D confocal microscopy. Our endocardial wall shear stress (WSS) results were found to exceed those reported in existing literature, which were estimated using myocardial rather than endocardial boundaries. By conducting simulations of single intra-trabecular spaces under varied scenarios, where the translational or deformational motions (caused by contraction) were removed, we found that a squeeze flow effect was responsible for most of the WSS magnitude in the intra-trabecular spaces, rather than the shear interaction with the flow in the main ventricular chamber. We found that trabecular structures were responsible for the high spatial variability of the magnitude and oscillatory nature of WSS, and for reducing the endocardial deformational burden. We further found cells attached to the endocardium within the intra-trabecular spaces, which were likely embryonic hemogenic cells, whose presence increased endocardial WSS. Overall, our results suggested that a complex multi-component consideration of both anatomic features and motion dynamics were needed to quantify the trabeculated embryonic heart fluid mechanics.

MeSH 主题词
Animals Heart Hydrodynamics Models, Cardiovascular Organogenesis Stress, Mechanical Zebrafish
作者与单位
共 4 位作者,点击展开单位 / ORCID
Cairelli Adriana Gaia ORCID
Dept of Bioengineering, Imperial College London, London, United Kingdom.
Chow Renee Wei-Yan
Institut de Génétique et de Biologie Moléculaire et Cellulaire (IGBMC), Strasbourg, France.
Vermot Julien ORCID
Dept of Bioengineering, Imperial College London, London, United Kingdom. | Institut de Génétique et de Biologie Moléculaire et Cellulaire (IGBMC), Strasbourg, France.
Yap Choon Hwai ORCID
Dept of Bioengineering, Imperial College London, London, United Kingdom.
Article Info
Journal
PLoS computational biology
Abbr.
PLoS Comput Biol
ISSN
1553-7358
Published
2022-00-00
电子出版
2022-00-06
页码
e1010142
Language
English
Country/Region
United States
NLM ID
101238922
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