Literature DB >> 26014359

3D Reconstruction of Chick Embryo Vascular Geometries Using Non-invasive High-Frequency Ultrasound for Computational Fluid Dynamics Studies.

Germaine Xin Yi Tan1, Muhammad Jamil1, Nicole Gui Zhen Tee2, Liang Zhong2,3, Choon Hwai Yap4.   

Abstract

Recent animal studies have provided evidence that prenatal blood flow fluid mechanics may play a role in the pathogenesis of congenital cardiovascular malformations. To further these researches, it is important to have an imaging technique for small animal embryos with sufficient resolution to support computational fluid dynamics studies, and that is also non-invasive and non-destructive to allow for subject-specific, longitudinal studies. In the current study, we developed such a technique, based on ultrasound biomicroscopy scans on chick embryos. Our technique included a motion cancelation algorithm to negate embryonic body motion, a temporal averaging algorithm to differentiate blood spaces from tissue spaces, and 3D reconstruction of blood volumes in the embryo. The accuracy of the reconstructed models was validated with direct stereoscopic measurements. A computational fluid dynamics simulation was performed to model fluid flow in the generated construct of a Hamburger-Hamilton (HH) stage 27 embryo. Simulation results showed that there were divergent streamlines and a low shear region at the carotid duct, which may be linked to the carotid duct's eventual regression and disappearance by HH stage 34. We show that our technique has sufficient resolution to produce accurate geometries for computational fluid dynamics simulations to quantify embryonic cardiovascular fluid mechanics.

Entities:  

Keywords:  Computational fluid dynamics; Embryonic and fetal cardiovascular fluid mechanics; High frequency ultrasound; Ultrasound image processing and segmentation

Mesh:

Year:  2015        PMID: 26014359     DOI: 10.1007/s10439-015-1339-y

Source DB:  PubMed          Journal:  Ann Biomed Eng        ISSN: 0090-6964            Impact factor:   3.934


  5 in total

1.  A method to quantify mechanobiologic forces during zebrafish cardiac development using 4-D light sheet imaging and computational modeling.

Authors:  Vijay Vedula; Juhyun Lee; Hao Xu; C-C Jay Kuo; Tzung K Hsiai; Alison L Marsden
Journal:  PLoS Comput Biol       Date:  2017-10-30       Impact factor: 4.475

Review 2.  Computational Modeling of Blood Flow Hemodynamics for Biomechanical Investigation of Cardiac Development and Disease.

Authors:  Huseyin Enes Salman; Huseyin Cagatay Yalcin
Journal:  J Cardiovasc Dev Dis       Date:  2021-01-31

3.  Fluid mechanics of the left atrial ligation chick embryonic model of hypoplastic left heart syndrome.

Authors:  Sheldon Ho; Wei Xuan Chan; Choon Hwai Yap
Journal:  Biomech Model Mechanobiol       Date:  2021-03-28

4.  Organ Dynamics and Hemodynamic of the Whole HH25 Avian Embryonic Heart, Revealed by Ultrasound Biomicroscopy, Boundary Tracking, and Flow Simulations.

Authors:  Sheldon Ho; Wei Xuan Chan; Nhan Phan-Thien; Choon Hwai Yap
Journal:  Sci Rep       Date:  2019-12-02       Impact factor: 4.379

5.  Retinal oxygen supply shaped the functional evolution of the vertebrate eye.

Authors:  Jens R Nyengaard; Michael Berenbrink; Mark Bayley; Christian Damsgaard; Henrik Lauridsen; Anette Md Funder; Jesper S Thomsen; Thomas Desvignes; Dane A Crossley; Peter R Møller; Do Tt Huong; Nguyen T Phuong; H William Detrich; Annemarie Brüel; Horst Wilkens; Eric Warrant; Tobias Wang
Journal:  Elife       Date:  2019-12-10       Impact factor: 8.140

  5 in total

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