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PMID: 27467730 Published · ppublish English Journal Article

Haemodynamic assessment of human coronary arteries is affected by degree of freedom of artery movement.

Computer methods in biomechanics and biomedical engineering ·Vol. 20 ·No. 3 ·2017-02-00 ·页码 260-272

Javadzadegan A, Yong AS, Chang M, Ng MK, Behnia M, Kritharides L

Abstract

Abnormal haemodynamic parameters are associated with atheroma plaque progression and instability in coronary arteries. Flow recirculation, shear stress and pressure gradient are understood to be important pathogenic mediators in coronary disease. The effect of freedom of coronary artery movement on these parameters is still unknown. Fluid-structure interaction (FSI) simulations were carried out in 25 coronary artery models derived from authentic human coronaries in order to investigate the effect of degree of freedom of movement of the coronary arteries on flow recirculation, wall shear stress (WSS) and wall pressure gradient (WPG). Each FSI model had distinctive supports placed upon it. The quantitative and qualitative differences in flow recirculation, maximum wall shear stress (MWSS), areas of low wall shear stress (ALWSS) and maximum wall pressure gradient (MWPG) for each model were determined. The results showed that greater freedom of movement was associated with lower MWSS, smaller ALWSS, smaller flow recirculation zones and lower MWPG. With increasing percentage diameter stenosis (%DS), the effect of degree of freedom on flow recirculation and WSS diminished. Freedom of movement is an important variable to be considered for computational modelling of human coronary arteries, especially in the setting of mild to moderate stenosis. 3D: Three-dimensional; 3DR: Three-dimensional Reconstruction; 3D-QCA: Three-dimensional quantitative coronary angiography; ALWSS: Areas of low wall shear stress; CAD: Coronary artery disease; CFD: Computational fluid dynamics; %DS: Diameter stenosis percentage; EPCS: End point of counter-rotating streamlines; FSI: Fluid-structure interaction; IVUS: Intravascular ultrasound; LAD: Left anterior descending; MWSS: Maximum wall shear stress; SST: Shear stress transport; TAWSS: Time-averaged wall shear stress; WSS: wall shear stress; WPG: Wall pressure gradient; MWPG: Maximum wall pressure gradient; FFR: Fractional flow reserve; iFR: Instantaneous wave-free ratio.

Keywords
Fluid–structure interaction coronary artery degree of freedom of movement flow recirculation wall pressure gradient wall shear stress
MeSH 主题词
Aged Cohort Studies Computer Simulation Coronary Artery Disease/physiopathology Coronary Vessels/pathology Female Heart/physiology Hemodynamics Humans Hydrodynamics Imaging, Three-Dimensional Male Middle Aged Models, Cardiovascular Movement Normal Distribution Plaque, Atherosclerotic/pathology Pressure Shear Strength Stress, Mechanical Ultrasonography
作者与单位
共 6 位作者,点击展开单位 / ORCID
Javadzadegan Ashkan
a Faculty of Medicine and Health Sciences , Macquarie University , Sydney , Australia. | b ANZAC Research Institute , The University of Sydney , Sydney , Australia.
Yong Andy S C
a Faculty of Medicine and Health Sciences , Macquarie University , Sydney , Australia. | b ANZAC Research Institute , The University of Sydney , Sydney , Australia. | c Department of Cardiology, Concord Hospital , The University of Sydney , Sydney , Australia.
Chang Michael
c Department of Cardiology, Concord Hospital , The University of Sydney , Sydney , Australia.
Ng Martin K C
d Department of Cardiology , Royal Prince Alfred Hospital , Sydney , Australia.
Behnia Masud
e School of Management , Macquarie University , Sydney , Australia.
Kritharides Leonard
b ANZAC Research Institute , The University of Sydney , Sydney , Australia. | c Department of Cardiology, Concord Hospital , The University of Sydney , Sydney , Australia.
Article Info
Journal
Computer methods in biomechanics and biomedical engineering
Abbr.
Comput Methods Biomech Biomed Engin
ISSN
1476-8259
Published
2017-02-00
电子出版
2016-00-28
页码
260-272
Language
English
Country/Region
England
NLM ID
9802899
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