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PMID: 33156343 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

The Story of Wall Shear Stress in Coronary Artery Atherosclerosis: Biochemical Transport and Mechanotransduction.

Journal of biomechanical engineering ·Vol. 143 ·No. 4 ·2021-00-01

Mahmoudi M, Farghadan A, McConnell DR, Barker AJ, Wentzel JJ, Budoff MJ, Arzani A

Abstract

Coronary artery atherosclerosis is a local, multifactorial, complex disease, and the leading cause of death in the US. Complex interactions between biochemical transport and biomechanical forces influence disease growth. Wall shear stress (WSS) affects coronary artery atherosclerosis by inducing endothelial cell mechanotransduction and by controlling the near-wall transport processes involved in atherosclerosis. Each of these processes is controlled by WSS differently and therefore has complicated the interpretation of WSS in atherosclerosis. In this paper, we present a comprehensive theory for WSS in atherosclerosis. First, a short review of shear stress-mediated mechanotransduction in atherosclerosis was presented. Next, subject-specific computational fluid dynamics (CFD) simulations were performed in ten coronary artery models of diseased and healthy subjects. Biochemical-specific mass transport models were developed to study low-density lipoprotein, nitric oxide, adenosine triphosphate, oxygen, monocyte chemoattractant protein-1, and monocyte transport. The transport results were compared with WSS vectors and WSS Lagrangian coherent structures (WSS LCS). High WSS magnitude protected against atherosclerosis by increasing the production or flux of atheroprotective biochemicals and decreasing the near-wall localization of atherogenic biochemicals. Low WSS magnitude promoted atherosclerosis by increasing atherogenic biochemical localization. Finally, the attracting WSS LCS's role was more complex where it promoted or prevented atherosclerosis based on different biochemicals. We present a summary of the different pathways by which WSS influences coronary artery atherosclerosis and compare different mechanotransduction and biotransport mechanisms.

Keywords
Coronary artery disease Lagrangian coherent structures biochemical transport endothelial cells hemodynamics mechanotransduction
作者与单位
共 7 位作者,点击展开单位 / ORCID
Mahmoudi Mostafa
Department of Mechanical Engineering, Northern Arizona University, Flagstaff, AZ 86011.
Farghadan Ali
Department of Mechanical Engineering, Northern Arizona University, Flagstaff, AZ 86011.
McConnell Daniel R
Department of Mechanical Engineering, Northern Arizona University, Flagstaff, AZ 86011.
Barker Alex J
Department of Pediatric Radiology, University of Colorado Denver Anschutz Medical Campus, Aurora, CO 80045.
Wentzel Jolanda J
Department of Cardiology, Biomedical Engineering, Erasmus MC, Rotterdam, The Netherlands.
Budoff Matthew J
Lundquist Institute at Harbor-UCLA, Torrance, CA 90502.
Arzani Amirhossein
Department of Mechanical Engineering, Northern Arizona University, Flagstaff, AZ 86011.
Article Info
Journal
Journal of biomechanical engineering
Abbr.
J Biomech Eng
ISSN
1528-8951
Published
2021-00-01
Language
English
Country/Region
United States
NLM ID
7909584
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