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Effect of calcification on the mechanical stability of plaque based on a three-dimensional carotid bifurcation model

BACKGROUND: This study characterizes the distribution and components of plaque structure by presenting a three-dimensional blood-vessel modelling with the aim of determining mechanical properties due to the effect of lipid core and calcification within a plaque. Numerical simulation has been used to...

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Autores principales: Wong, Kelvin KL, Thavornpattanapong, Pongpat, Cheung, Sherman CP, Sun, Zhonghua, Tu, Jiyuan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3310807/
https://www.ncbi.nlm.nih.gov/pubmed/22336469
http://dx.doi.org/10.1186/1471-2261-12-7
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author Wong, Kelvin KL
Thavornpattanapong, Pongpat
Cheung, Sherman CP
Sun, Zhonghua
Tu, Jiyuan
author_facet Wong, Kelvin KL
Thavornpattanapong, Pongpat
Cheung, Sherman CP
Sun, Zhonghua
Tu, Jiyuan
author_sort Wong, Kelvin KL
collection PubMed
description BACKGROUND: This study characterizes the distribution and components of plaque structure by presenting a three-dimensional blood-vessel modelling with the aim of determining mechanical properties due to the effect of lipid core and calcification within a plaque. Numerical simulation has been used to answer how cap thickness and calcium distribution in lipids influence the biomechanical stress on the plaque. METHOD: Modelling atherosclerotic plaque based on structural analysis confirms the rationale for plaque mechanical examination and the feasibility of our simulation model. Meaningful validation of predictions from modelled atherosclerotic plaque model typically requires examination of bona fide atherosclerotic lesions. To analyze a more accurate plaque rupture, fluid-structure interaction is applied to three-dimensional blood-vessel carotid bifurcation modelling. A patient-specific pressure variation is applied onto the plaque to influence its vulnerability. RESULTS: Modelling of the human atherosclerotic artery with varying degrees of lipid core elasticity, fibrous cap thickness and calcification gap, which is defined as the distance between the fibrous cap and calcification agglomerate, form the basis of our rupture analysis. Finite element analysis shows that the calcification gap should be conservatively smaller than its threshold to maintain plaque stability. The results add new mechanistic insights and methodologically sound data to investigate plaque rupture mechanics. CONCLUSION: Structural analysis using a three-dimensional calcified model represents a more realistic simulation of late-stage atherosclerotic plaque. We also demonstrate that increases of calcium content that is coupled with a decrease in lipid core volume can stabilize plaque structurally.
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spelling pubmed-33108072012-03-23 Effect of calcification on the mechanical stability of plaque based on a three-dimensional carotid bifurcation model Wong, Kelvin KL Thavornpattanapong, Pongpat Cheung, Sherman CP Sun, Zhonghua Tu, Jiyuan BMC Cardiovasc Disord Research Article BACKGROUND: This study characterizes the distribution and components of plaque structure by presenting a three-dimensional blood-vessel modelling with the aim of determining mechanical properties due to the effect of lipid core and calcification within a plaque. Numerical simulation has been used to answer how cap thickness and calcium distribution in lipids influence the biomechanical stress on the plaque. METHOD: Modelling atherosclerotic plaque based on structural analysis confirms the rationale for plaque mechanical examination and the feasibility of our simulation model. Meaningful validation of predictions from modelled atherosclerotic plaque model typically requires examination of bona fide atherosclerotic lesions. To analyze a more accurate plaque rupture, fluid-structure interaction is applied to three-dimensional blood-vessel carotid bifurcation modelling. A patient-specific pressure variation is applied onto the plaque to influence its vulnerability. RESULTS: Modelling of the human atherosclerotic artery with varying degrees of lipid core elasticity, fibrous cap thickness and calcification gap, which is defined as the distance between the fibrous cap and calcification agglomerate, form the basis of our rupture analysis. Finite element analysis shows that the calcification gap should be conservatively smaller than its threshold to maintain plaque stability. The results add new mechanistic insights and methodologically sound data to investigate plaque rupture mechanics. CONCLUSION: Structural analysis using a three-dimensional calcified model represents a more realistic simulation of late-stage atherosclerotic plaque. We also demonstrate that increases of calcium content that is coupled with a decrease in lipid core volume can stabilize plaque structurally. BioMed Central 2012-02-15 /pmc/articles/PMC3310807/ /pubmed/22336469 http://dx.doi.org/10.1186/1471-2261-12-7 Text en Copyright ©2012 Wong et al; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Wong, Kelvin KL
Thavornpattanapong, Pongpat
Cheung, Sherman CP
Sun, Zhonghua
Tu, Jiyuan
Effect of calcification on the mechanical stability of plaque based on a three-dimensional carotid bifurcation model
title Effect of calcification on the mechanical stability of plaque based on a three-dimensional carotid bifurcation model
title_full Effect of calcification on the mechanical stability of plaque based on a three-dimensional carotid bifurcation model
title_fullStr Effect of calcification on the mechanical stability of plaque based on a three-dimensional carotid bifurcation model
title_full_unstemmed Effect of calcification on the mechanical stability of plaque based on a three-dimensional carotid bifurcation model
title_short Effect of calcification on the mechanical stability of plaque based on a three-dimensional carotid bifurcation model
title_sort effect of calcification on the mechanical stability of plaque based on a three-dimensional carotid bifurcation model
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3310807/
https://www.ncbi.nlm.nih.gov/pubmed/22336469
http://dx.doi.org/10.1186/1471-2261-12-7
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