Consideration of stiffness of wall layers is decisive for patient-specific analysis of carotid artery with atheroma.

The paper deals with the impact of chosen geometric and material factors on maximal stresses in carotid atherosclerotic plaque calculated using patient-specific finite element models. These stresses are believed to be decisive for the plaque vulnerability but all applied models suffer from inaccurac...

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Main Authors: Ondřej Lisický, Aneta Malá, Zdeněk Bednařík, Tomáš Novotný, Jiří Burša
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2020-01-01
Series:PLoS ONE
Online Access:https://doi.org/10.1371/journal.pone.0239447
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spelling doaj-5006d57499674bdd9b74d7ac7c8301492021-03-03T22:06:34ZengPublic Library of Science (PLoS)PLoS ONE1932-62032020-01-01159e023944710.1371/journal.pone.0239447Consideration of stiffness of wall layers is decisive for patient-specific analysis of carotid artery with atheroma.Ondřej LisickýAneta MaláZdeněk BednaříkTomáš NovotnýJiří BuršaThe paper deals with the impact of chosen geometric and material factors on maximal stresses in carotid atherosclerotic plaque calculated using patient-specific finite element models. These stresses are believed to be decisive for the plaque vulnerability but all applied models suffer from inaccuracy of input data, especially when obtained in vivo only. One hundred computational models based on ex vivo MRI are used to investigate the impact of wall thickness, MRI slice thickness, lipid core and fibrous tissue stiffness, and media anisotropy on the calculated peak plaque and peak cap stresses. The investigated factors are taken as continuous in the range based on published experimental results, only the impact of anisotropy is evaluated by comparison with a corresponding isotropic model. Design of Experiment concept is applied to assess the statistical significance of these investigated factors representing uncertainties in the input data of the model. The results show that consideration of realistic properties of arterial wall in the model is decisive for the stress evaluation; assignment of properties of fibrous tissue even to media and adventitia layers as done in some studies may induce up to eightfold overestimation of peak stress. The impact of MRI slice thickness may play a key role when local thin fibrous cap is present. Anisotropy of media layer is insignificant, and the stiffness of fibrous tissue and lipid core may become significant in some combinations.https://doi.org/10.1371/journal.pone.0239447
collection DOAJ
language English
format Article
sources DOAJ
author Ondřej Lisický
Aneta Malá
Zdeněk Bednařík
Tomáš Novotný
Jiří Burša
spellingShingle Ondřej Lisický
Aneta Malá
Zdeněk Bednařík
Tomáš Novotný
Jiří Burša
Consideration of stiffness of wall layers is decisive for patient-specific analysis of carotid artery with atheroma.
PLoS ONE
author_facet Ondřej Lisický
Aneta Malá
Zdeněk Bednařík
Tomáš Novotný
Jiří Burša
author_sort Ondřej Lisický
title Consideration of stiffness of wall layers is decisive for patient-specific analysis of carotid artery with atheroma.
title_short Consideration of stiffness of wall layers is decisive for patient-specific analysis of carotid artery with atheroma.
title_full Consideration of stiffness of wall layers is decisive for patient-specific analysis of carotid artery with atheroma.
title_fullStr Consideration of stiffness of wall layers is decisive for patient-specific analysis of carotid artery with atheroma.
title_full_unstemmed Consideration of stiffness of wall layers is decisive for patient-specific analysis of carotid artery with atheroma.
title_sort consideration of stiffness of wall layers is decisive for patient-specific analysis of carotid artery with atheroma.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2020-01-01
description The paper deals with the impact of chosen geometric and material factors on maximal stresses in carotid atherosclerotic plaque calculated using patient-specific finite element models. These stresses are believed to be decisive for the plaque vulnerability but all applied models suffer from inaccuracy of input data, especially when obtained in vivo only. One hundred computational models based on ex vivo MRI are used to investigate the impact of wall thickness, MRI slice thickness, lipid core and fibrous tissue stiffness, and media anisotropy on the calculated peak plaque and peak cap stresses. The investigated factors are taken as continuous in the range based on published experimental results, only the impact of anisotropy is evaluated by comparison with a corresponding isotropic model. Design of Experiment concept is applied to assess the statistical significance of these investigated factors representing uncertainties in the input data of the model. The results show that consideration of realistic properties of arterial wall in the model is decisive for the stress evaluation; assignment of properties of fibrous tissue even to media and adventitia layers as done in some studies may induce up to eightfold overestimation of peak stress. The impact of MRI slice thickness may play a key role when local thin fibrous cap is present. Anisotropy of media layer is insignificant, and the stiffness of fibrous tissue and lipid core may become significant in some combinations.
url https://doi.org/10.1371/journal.pone.0239447
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