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Integrating Computational and Biological Hemodynamic Approaches to Improve Modeling of Atherosclerotic Arteries.

Authors :
Vuong, Thao Nhu Anne Marie
Bartolf‐Kopp, Michael
Andelovic, Kristina
Jungst, Tomasz
Farbehi, Nona
Wise, Steven G.
Hayward, Christopher
Stevens, Michael Charles
Rnjak‐Kovacina, Jelena
Source :
Advanced Science; 7/10/2024, Vol. 11 Issue 26, p1-29, 29p
Publication Year :
2024

Abstract

Atherosclerosis is the primary cause of cardiovascular disease, resulting in mortality, elevated healthcare costs, diminished productivity, and reduced quality of life for individuals and their communities. This is exacerbated by the limited understanding of its underlying causes and limitations in current therapeutic interventions, highlighting the need for sophisticated models of atherosclerosis. This review critically evaluates the computational and biological models of atherosclerosis, focusing on the study of hemodynamics in atherosclerotic coronary arteries. Computational models account for the geometrical complexities and hemodynamics of the blood vessels and stenoses, but they fail to capture the complex biological processes involved in atherosclerosis. Different in vitro and in vivo biological models can capture aspects of the biological complexity of healthy and stenosed vessels, but rarely mimic the human anatomy and physiological hemodynamics, and require significantly more time, cost, and resources. Therefore, emerging strategies are examined that integrate computational and biological models, and the potential of advances in imaging, biofabrication, and machine learning is explored in developing more effective models of atherosclerosis. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
21983844
Volume :
11
Issue :
26
Database :
Complementary Index
Journal :
Advanced Science
Publication Type :
Academic Journal
Accession number :
178355591
Full Text :
https://doi.org/10.1002/advs.202307627