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A Computer-Simulation Study on the Effects of MRI Voxel Dimensions on Carotid Plaque Lipid-Core and Fibrous Cap Segmentation and Stress Modeling

BACKGROUND: The benefits of a decreased slice thickness and/or in-plane voxel size in carotid MRI for atherosclerotic plaque component quantification accuracy and biomechanical peak cap stress analysis have not yet been investigated in detail because of practical limitations. METHODS: In order to pr...

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Autores principales: Nieuwstadt, Harm A., Kassar, Zaid A. M., van der Lugt, Aad, Breeuwer, Marcel, van der Steen, Anton F. W., Wentzel, Jolanda J., Gijsen, Frank J. H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4391711/
https://www.ncbi.nlm.nih.gov/pubmed/25856094
http://dx.doi.org/10.1371/journal.pone.0123031
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author Nieuwstadt, Harm A.
Kassar, Zaid A. M.
van der Lugt, Aad
Breeuwer, Marcel
van der Steen, Anton F. W.
Wentzel, Jolanda J.
Gijsen, Frank J. H.
author_facet Nieuwstadt, Harm A.
Kassar, Zaid A. M.
van der Lugt, Aad
Breeuwer, Marcel
van der Steen, Anton F. W.
Wentzel, Jolanda J.
Gijsen, Frank J. H.
author_sort Nieuwstadt, Harm A.
collection PubMed
description BACKGROUND: The benefits of a decreased slice thickness and/or in-plane voxel size in carotid MRI for atherosclerotic plaque component quantification accuracy and biomechanical peak cap stress analysis have not yet been investigated in detail because of practical limitations. METHODS: In order to provide a methodology that allows such an investigation in detail, numerical simulations of a T1-weighted, contrast-enhanced, 2D MRI sequence were employed. Both the slice thickness (2 mm, 1 mm, and 0.5 mm) and the in plane acquired voxel size (0.62x0.62 mm(2) and 0.31x0.31 mm(2)) were varied. This virtual MRI approach was applied to 8 histology-based 3D patient carotid atherosclerotic plaque models. RESULTS: A decreased slice thickness did not result in major improvements in lumen, vessel wall, and lipid-rich necrotic core size measurements. At 0.62x0.62 mm(2) in-plane, only a 0.5 mm slice thickness resulted in improved minimum fibrous cap thickness measurements (a 2–3 fold reduction in measurement error) and only marginally improved peak cap stress computations. Acquiring voxels of 0.31x0.31 mm(2) in-plane, however, led to either similar or significantly larger improvements in plaque component quantification and computed peak cap stress. CONCLUSIONS: This study provides evidence that for currently-used 2D carotid MRI protocols, a decreased slice thickness might not be more beneficial for plaque measurement accuracy than a decreased in-plane voxel size. The MRI simulations performed indicate that not a reduced slice thickness (i.e. more isotropic imaging), but the acquisition of anisotropic voxels with a relatively smaller in-plane voxel size could improve carotid plaque quantification and computed peak cap stress accuracy.
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spelling pubmed-43917112015-04-21 A Computer-Simulation Study on the Effects of MRI Voxel Dimensions on Carotid Plaque Lipid-Core and Fibrous Cap Segmentation and Stress Modeling Nieuwstadt, Harm A. Kassar, Zaid A. M. van der Lugt, Aad Breeuwer, Marcel van der Steen, Anton F. W. Wentzel, Jolanda J. Gijsen, Frank J. H. PLoS One Research Article BACKGROUND: The benefits of a decreased slice thickness and/or in-plane voxel size in carotid MRI for atherosclerotic plaque component quantification accuracy and biomechanical peak cap stress analysis have not yet been investigated in detail because of practical limitations. METHODS: In order to provide a methodology that allows such an investigation in detail, numerical simulations of a T1-weighted, contrast-enhanced, 2D MRI sequence were employed. Both the slice thickness (2 mm, 1 mm, and 0.5 mm) and the in plane acquired voxel size (0.62x0.62 mm(2) and 0.31x0.31 mm(2)) were varied. This virtual MRI approach was applied to 8 histology-based 3D patient carotid atherosclerotic plaque models. RESULTS: A decreased slice thickness did not result in major improvements in lumen, vessel wall, and lipid-rich necrotic core size measurements. At 0.62x0.62 mm(2) in-plane, only a 0.5 mm slice thickness resulted in improved minimum fibrous cap thickness measurements (a 2–3 fold reduction in measurement error) and only marginally improved peak cap stress computations. Acquiring voxels of 0.31x0.31 mm(2) in-plane, however, led to either similar or significantly larger improvements in plaque component quantification and computed peak cap stress. CONCLUSIONS: This study provides evidence that for currently-used 2D carotid MRI protocols, a decreased slice thickness might not be more beneficial for plaque measurement accuracy than a decreased in-plane voxel size. The MRI simulations performed indicate that not a reduced slice thickness (i.e. more isotropic imaging), but the acquisition of anisotropic voxels with a relatively smaller in-plane voxel size could improve carotid plaque quantification and computed peak cap stress accuracy. Public Library of Science 2015-04-09 /pmc/articles/PMC4391711/ /pubmed/25856094 http://dx.doi.org/10.1371/journal.pone.0123031 Text en © 2015 Nieuwstadt et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Nieuwstadt, Harm A.
Kassar, Zaid A. M.
van der Lugt, Aad
Breeuwer, Marcel
van der Steen, Anton F. W.
Wentzel, Jolanda J.
Gijsen, Frank J. H.
A Computer-Simulation Study on the Effects of MRI Voxel Dimensions on Carotid Plaque Lipid-Core and Fibrous Cap Segmentation and Stress Modeling
title A Computer-Simulation Study on the Effects of MRI Voxel Dimensions on Carotid Plaque Lipid-Core and Fibrous Cap Segmentation and Stress Modeling
title_full A Computer-Simulation Study on the Effects of MRI Voxel Dimensions on Carotid Plaque Lipid-Core and Fibrous Cap Segmentation and Stress Modeling
title_fullStr A Computer-Simulation Study on the Effects of MRI Voxel Dimensions on Carotid Plaque Lipid-Core and Fibrous Cap Segmentation and Stress Modeling
title_full_unstemmed A Computer-Simulation Study on the Effects of MRI Voxel Dimensions on Carotid Plaque Lipid-Core and Fibrous Cap Segmentation and Stress Modeling
title_short A Computer-Simulation Study on the Effects of MRI Voxel Dimensions on Carotid Plaque Lipid-Core and Fibrous Cap Segmentation and Stress Modeling
title_sort computer-simulation study on the effects of mri voxel dimensions on carotid plaque lipid-core and fibrous cap segmentation and stress modeling
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4391711/
https://www.ncbi.nlm.nih.gov/pubmed/25856094
http://dx.doi.org/10.1371/journal.pone.0123031
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