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Numerical modelling of blood rheology and platelet activation through a stenosed left coronary artery bifurcation

Coronary bifurcations are prone to atherosclerotic plaque growth, experiencing regions of reduced wall shear stress (WSS) and increased platelet adhesion. This study compares effects across different rheological approaches on hemodynamics, combined with a shear stress exposure history model of plate...

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Autores principales: Owen, David G., de Oliveira, Diana C., Neale, Emma K., Shepherd, Duncan E. T., Espino, Daniel M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8565790/
https://www.ncbi.nlm.nih.gov/pubmed/34731193
http://dx.doi.org/10.1371/journal.pone.0259196
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author Owen, David G.
de Oliveira, Diana C.
Neale, Emma K.
Shepherd, Duncan E. T.
Espino, Daniel M.
author_facet Owen, David G.
de Oliveira, Diana C.
Neale, Emma K.
Shepherd, Duncan E. T.
Espino, Daniel M.
author_sort Owen, David G.
collection PubMed
description Coronary bifurcations are prone to atherosclerotic plaque growth, experiencing regions of reduced wall shear stress (WSS) and increased platelet adhesion. This study compares effects across different rheological approaches on hemodynamics, combined with a shear stress exposure history model of platelets within a stenosed porcine bifurcation. Simulations used both single/multiphase blood models to determine which approach best predicts phenomena associated with atherosclerosis and atherothrombosis. A novel Lagrangian platelet tracking model was used to evaluate residence time and shear history of platelets indicating likely regions of thrombus formation. Results show a decrease in area of regions with pathologically low time-averaged WSS with the use of multiphase models, particularly in a stenotic bifurcation. Significant non-Newtonian effects were observed due to low-shear and varying hematocrit levels found on the outer walls of the bifurcation and distal to the stenosis. Platelet residence time increased 11% in the stenosed artery, with exposure times to low-shear sufficient for red blood cell aggregation (>1.5 s). increasing the risk of thrombosis. This shows stenotic artery hemodynamics are inherently non-Newtonian and multiphase, with variations in hematocrit (0.163–0.617) and elevated vorticity distal to stenosis (+15%) impairing the function of the endothelium via reduced time-averaged WSS regions, rheological properties and platelet activation/adhesion.
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spelling pubmed-85657902021-11-04 Numerical modelling of blood rheology and platelet activation through a stenosed left coronary artery bifurcation Owen, David G. de Oliveira, Diana C. Neale, Emma K. Shepherd, Duncan E. T. Espino, Daniel M. PLoS One Research Article Coronary bifurcations are prone to atherosclerotic plaque growth, experiencing regions of reduced wall shear stress (WSS) and increased platelet adhesion. This study compares effects across different rheological approaches on hemodynamics, combined with a shear stress exposure history model of platelets within a stenosed porcine bifurcation. Simulations used both single/multiphase blood models to determine which approach best predicts phenomena associated with atherosclerosis and atherothrombosis. A novel Lagrangian platelet tracking model was used to evaluate residence time and shear history of platelets indicating likely regions of thrombus formation. Results show a decrease in area of regions with pathologically low time-averaged WSS with the use of multiphase models, particularly in a stenotic bifurcation. Significant non-Newtonian effects were observed due to low-shear and varying hematocrit levels found on the outer walls of the bifurcation and distal to the stenosis. Platelet residence time increased 11% in the stenosed artery, with exposure times to low-shear sufficient for red blood cell aggregation (>1.5 s). increasing the risk of thrombosis. This shows stenotic artery hemodynamics are inherently non-Newtonian and multiphase, with variations in hematocrit (0.163–0.617) and elevated vorticity distal to stenosis (+15%) impairing the function of the endothelium via reduced time-averaged WSS regions, rheological properties and platelet activation/adhesion. Public Library of Science 2021-11-03 /pmc/articles/PMC8565790/ /pubmed/34731193 http://dx.doi.org/10.1371/journal.pone.0259196 Text en © 2021 Owen et al https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Owen, David G.
de Oliveira, Diana C.
Neale, Emma K.
Shepherd, Duncan E. T.
Espino, Daniel M.
Numerical modelling of blood rheology and platelet activation through a stenosed left coronary artery bifurcation
title Numerical modelling of blood rheology and platelet activation through a stenosed left coronary artery bifurcation
title_full Numerical modelling of blood rheology and platelet activation through a stenosed left coronary artery bifurcation
title_fullStr Numerical modelling of blood rheology and platelet activation through a stenosed left coronary artery bifurcation
title_full_unstemmed Numerical modelling of blood rheology and platelet activation through a stenosed left coronary artery bifurcation
title_short Numerical modelling of blood rheology and platelet activation through a stenosed left coronary artery bifurcation
title_sort numerical modelling of blood rheology and platelet activation through a stenosed left coronary artery bifurcation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8565790/
https://www.ncbi.nlm.nih.gov/pubmed/34731193
http://dx.doi.org/10.1371/journal.pone.0259196
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