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Quantifying Patient-Specific in vivo Coronary Plaque Material Properties for Accurate Stress/Strain Calculations: An IVUS-Based Multi-Patient Study

Introduction: Mechanical forces are closely associated with plaque progression and rupture. Precise quantifications of biomechanical conditions using in vivo image-based computational models depend heavily on the accurate estimation of patient-specific plaque mechanical properties. Currently, mechan...

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Autores principales: Wang, Liang, Zhu, Jian, Maehara, Akiko, Lv, Rui, Qu, Yangyang, Zhang, Xiaoguo, Guo, Xiaoya, Billiar, Kristen L., Chen, Lijuan, Ma, Genshan, Mintz, Gary S., Tang, Dalin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8575450/
https://www.ncbi.nlm.nih.gov/pubmed/34759832
http://dx.doi.org/10.3389/fphys.2021.721195
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author Wang, Liang
Zhu, Jian
Maehara, Akiko
Lv, Rui
Qu, Yangyang
Zhang, Xiaoguo
Guo, Xiaoya
Billiar, Kristen L.
Chen, Lijuan
Ma, Genshan
Mintz, Gary S.
Tang, Dalin
author_facet Wang, Liang
Zhu, Jian
Maehara, Akiko
Lv, Rui
Qu, Yangyang
Zhang, Xiaoguo
Guo, Xiaoya
Billiar, Kristen L.
Chen, Lijuan
Ma, Genshan
Mintz, Gary S.
Tang, Dalin
author_sort Wang, Liang
collection PubMed
description Introduction: Mechanical forces are closely associated with plaque progression and rupture. Precise quantifications of biomechanical conditions using in vivo image-based computational models depend heavily on the accurate estimation of patient-specific plaque mechanical properties. Currently, mechanical experiments are commonly performed on ex vivo cardiovascular tissues to determine plaque material properties. Patient-specific in vivo coronary material properties are scarce in the existing literature. Methods: In vivo Cine intravascular ultrasound and virtual histology intravascular ultrasound (IVUS) slices were acquired at 20 plaque sites from 13 patients. A three-dimensional thin-slice structure-only model was constructed for each slice to obtain patient-specific in vivo material parameter values following an iterative scheme. Effective Young's modulus (YM) was calculated to indicate plaque stiffness for easy comparison purposes. IVUS-based 3D thin-slice models using in vivo and ex vivo material properties were constructed to investigate their impacts on plaque wall stress/strain (PWS/PWSn) calculations. Results: The average YM values in the axial and circumferential directions for the 20 plaque slices were 599.5 and 1,042.8 kPa, respectively, 36.1% lower than those from published ex vivo data. The YM values in the circumferential direction of the softest and stiffest plaques were 103.4 and 2,317.3 kPa, respectively. The relative difference of mean PWSn on lumen using the in vivo and ex vivo material properties could be as high as 431%, while the relative difference of mean PWS was much lower, about 3.07% on average. Conclusion: There is a large inter-patient and intra-patient variability in the in vivo plaque material properties. In vivo material properties have a great impact on plaque stress/strain calculations. In vivo plaque material properties have a greater impact on strain calculations. Large-scale-patient studies are needed to further verify our findings.
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spelling pubmed-85754502021-11-09 Quantifying Patient-Specific in vivo Coronary Plaque Material Properties for Accurate Stress/Strain Calculations: An IVUS-Based Multi-Patient Study Wang, Liang Zhu, Jian Maehara, Akiko Lv, Rui Qu, Yangyang Zhang, Xiaoguo Guo, Xiaoya Billiar, Kristen L. Chen, Lijuan Ma, Genshan Mintz, Gary S. Tang, Dalin Front Physiol Physiology Introduction: Mechanical forces are closely associated with plaque progression and rupture. Precise quantifications of biomechanical conditions using in vivo image-based computational models depend heavily on the accurate estimation of patient-specific plaque mechanical properties. Currently, mechanical experiments are commonly performed on ex vivo cardiovascular tissues to determine plaque material properties. Patient-specific in vivo coronary material properties are scarce in the existing literature. Methods: In vivo Cine intravascular ultrasound and virtual histology intravascular ultrasound (IVUS) slices were acquired at 20 plaque sites from 13 patients. A three-dimensional thin-slice structure-only model was constructed for each slice to obtain patient-specific in vivo material parameter values following an iterative scheme. Effective Young's modulus (YM) was calculated to indicate plaque stiffness for easy comparison purposes. IVUS-based 3D thin-slice models using in vivo and ex vivo material properties were constructed to investigate their impacts on plaque wall stress/strain (PWS/PWSn) calculations. Results: The average YM values in the axial and circumferential directions for the 20 plaque slices were 599.5 and 1,042.8 kPa, respectively, 36.1% lower than those from published ex vivo data. The YM values in the circumferential direction of the softest and stiffest plaques were 103.4 and 2,317.3 kPa, respectively. The relative difference of mean PWSn on lumen using the in vivo and ex vivo material properties could be as high as 431%, while the relative difference of mean PWS was much lower, about 3.07% on average. Conclusion: There is a large inter-patient and intra-patient variability in the in vivo plaque material properties. In vivo material properties have a great impact on plaque stress/strain calculations. In vivo plaque material properties have a greater impact on strain calculations. Large-scale-patient studies are needed to further verify our findings. Frontiers Media S.A. 2021-10-25 /pmc/articles/PMC8575450/ /pubmed/34759832 http://dx.doi.org/10.3389/fphys.2021.721195 Text en Copyright © 2021 Wang, Zhu, Maehara, Lv, Qu, Zhang, Guo, Billiar, Chen, Ma, Mintz and Tang. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Physiology
Wang, Liang
Zhu, Jian
Maehara, Akiko
Lv, Rui
Qu, Yangyang
Zhang, Xiaoguo
Guo, Xiaoya
Billiar, Kristen L.
Chen, Lijuan
Ma, Genshan
Mintz, Gary S.
Tang, Dalin
Quantifying Patient-Specific in vivo Coronary Plaque Material Properties for Accurate Stress/Strain Calculations: An IVUS-Based Multi-Patient Study
title Quantifying Patient-Specific in vivo Coronary Plaque Material Properties for Accurate Stress/Strain Calculations: An IVUS-Based Multi-Patient Study
title_full Quantifying Patient-Specific in vivo Coronary Plaque Material Properties for Accurate Stress/Strain Calculations: An IVUS-Based Multi-Patient Study
title_fullStr Quantifying Patient-Specific in vivo Coronary Plaque Material Properties for Accurate Stress/Strain Calculations: An IVUS-Based Multi-Patient Study
title_full_unstemmed Quantifying Patient-Specific in vivo Coronary Plaque Material Properties for Accurate Stress/Strain Calculations: An IVUS-Based Multi-Patient Study
title_short Quantifying Patient-Specific in vivo Coronary Plaque Material Properties for Accurate Stress/Strain Calculations: An IVUS-Based Multi-Patient Study
title_sort quantifying patient-specific in vivo coronary plaque material properties for accurate stress/strain calculations: an ivus-based multi-patient study
topic Physiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8575450/
https://www.ncbi.nlm.nih.gov/pubmed/34759832
http://dx.doi.org/10.3389/fphys.2021.721195
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