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Integrating particle tracking with computational fluid dynamics to assess haemodynamic perturbation by coronary artery stents

AIMS: Coronary artery stents have profound effects on arterial function by altering fluid flow mass transport and wall shear stress. We developed a new integrated methodology to analyse the effects of stents on mass transport and shear stress to inform the design of haemodynamically-favourable stent...

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Autores principales: Boldock, Luke, Inzoli, Amanda, Bonardelli, Silvia, Hsiao, Sarah, Marzo, Alberto, Narracott, Andrew, Gunn, Julian, Dubini, Gabriele, Chiastra, Claudio, Halliday, Ian, Morris, Paul D., Evans, Paul C., C. M., Perrault
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9333229/
https://www.ncbi.nlm.nih.gov/pubmed/35901129
http://dx.doi.org/10.1371/journal.pone.0271469
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author Boldock, Luke
Inzoli, Amanda
Bonardelli, Silvia
Hsiao, Sarah
Marzo, Alberto
Narracott, Andrew
Gunn, Julian
Dubini, Gabriele
Chiastra, Claudio
Halliday, Ian
Morris, Paul D.
Evans, Paul C.
C. M., Perrault
author_facet Boldock, Luke
Inzoli, Amanda
Bonardelli, Silvia
Hsiao, Sarah
Marzo, Alberto
Narracott, Andrew
Gunn, Julian
Dubini, Gabriele
Chiastra, Claudio
Halliday, Ian
Morris, Paul D.
Evans, Paul C.
C. M., Perrault
author_sort Boldock, Luke
collection PubMed
description AIMS: Coronary artery stents have profound effects on arterial function by altering fluid flow mass transport and wall shear stress. We developed a new integrated methodology to analyse the effects of stents on mass transport and shear stress to inform the design of haemodynamically-favourable stents. METHODS AND RESULTS: Stents were deployed in model vessels followed by tracking of fluorescent particles under flow. Parallel analyses involved high-resolution micro-computed tomography scanning followed by computational fluid dynamics simulations to assess wall shear stress distribution. Several stent designs were analysed to assess whether the workflow was robust for diverse strut geometries. Stents had striking effects on fluid flow streamlines, flow separation or funnelling, and the accumulation of particles at areas of complex geometry that were tightly coupled to stent shape. CFD analysis revealed that stents had a major influence on wall shear stress magnitude, direction and distribution and this was highly sensitive to geometry. CONCLUSIONS: Integration of particle tracking with CFD allows assessment of fluid flow and shear stress in stented arteries in unprecedented detail. Deleterious flow perturbations, such as accumulation of particles at struts and non-physiological shear stress, were highly sensitive to individual stent geometry. Novel designs for stents should be tested for mass transport and shear stress which are important effectors of vascular health and repair.
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spelling pubmed-93332292022-07-29 Integrating particle tracking with computational fluid dynamics to assess haemodynamic perturbation by coronary artery stents Boldock, Luke Inzoli, Amanda Bonardelli, Silvia Hsiao, Sarah Marzo, Alberto Narracott, Andrew Gunn, Julian Dubini, Gabriele Chiastra, Claudio Halliday, Ian Morris, Paul D. Evans, Paul C. C. M., Perrault PLoS One Research Article AIMS: Coronary artery stents have profound effects on arterial function by altering fluid flow mass transport and wall shear stress. We developed a new integrated methodology to analyse the effects of stents on mass transport and shear stress to inform the design of haemodynamically-favourable stents. METHODS AND RESULTS: Stents were deployed in model vessels followed by tracking of fluorescent particles under flow. Parallel analyses involved high-resolution micro-computed tomography scanning followed by computational fluid dynamics simulations to assess wall shear stress distribution. Several stent designs were analysed to assess whether the workflow was robust for diverse strut geometries. Stents had striking effects on fluid flow streamlines, flow separation or funnelling, and the accumulation of particles at areas of complex geometry that were tightly coupled to stent shape. CFD analysis revealed that stents had a major influence on wall shear stress magnitude, direction and distribution and this was highly sensitive to geometry. CONCLUSIONS: Integration of particle tracking with CFD allows assessment of fluid flow and shear stress in stented arteries in unprecedented detail. Deleterious flow perturbations, such as accumulation of particles at struts and non-physiological shear stress, were highly sensitive to individual stent geometry. Novel designs for stents should be tested for mass transport and shear stress which are important effectors of vascular health and repair. Public Library of Science 2022-07-28 /pmc/articles/PMC9333229/ /pubmed/35901129 http://dx.doi.org/10.1371/journal.pone.0271469 Text en © 2022 Boldock 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
Boldock, Luke
Inzoli, Amanda
Bonardelli, Silvia
Hsiao, Sarah
Marzo, Alberto
Narracott, Andrew
Gunn, Julian
Dubini, Gabriele
Chiastra, Claudio
Halliday, Ian
Morris, Paul D.
Evans, Paul C.
C. M., Perrault
Integrating particle tracking with computational fluid dynamics to assess haemodynamic perturbation by coronary artery stents
title Integrating particle tracking with computational fluid dynamics to assess haemodynamic perturbation by coronary artery stents
title_full Integrating particle tracking with computational fluid dynamics to assess haemodynamic perturbation by coronary artery stents
title_fullStr Integrating particle tracking with computational fluid dynamics to assess haemodynamic perturbation by coronary artery stents
title_full_unstemmed Integrating particle tracking with computational fluid dynamics to assess haemodynamic perturbation by coronary artery stents
title_short Integrating particle tracking with computational fluid dynamics to assess haemodynamic perturbation by coronary artery stents
title_sort integrating particle tracking with computational fluid dynamics to assess haemodynamic perturbation by coronary artery stents
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9333229/
https://www.ncbi.nlm.nih.gov/pubmed/35901129
http://dx.doi.org/10.1371/journal.pone.0271469
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