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Cerebral tomoelastography based on multifrequency MR elastography in two and three dimensions

Purpose: Magnetic resonance elastography (MRE) generates quantitative maps of the mechanical properties of biological soft tissues. However, published values obtained by brain MRE vary largely and lack detail resolution, due to either true biological effects or technical challenges. We here introduc...

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Autores principales: Herthum, Helge, Hetzer, Stefan, Kreft, Bernhard, Tzschätzsch, Heiko, Shahryari, Mehrgan, Meyer, Tom, Görner, Steffen, Neubauer, Hennes, Guo, Jing, Braun, Jürgen, Sack, Ingolf
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9755504/
https://www.ncbi.nlm.nih.gov/pubmed/36532573
http://dx.doi.org/10.3389/fbioe.2022.1056131
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author Herthum, Helge
Hetzer, Stefan
Kreft, Bernhard
Tzschätzsch, Heiko
Shahryari, Mehrgan
Meyer, Tom
Görner, Steffen
Neubauer, Hennes
Guo, Jing
Braun, Jürgen
Sack, Ingolf
author_facet Herthum, Helge
Hetzer, Stefan
Kreft, Bernhard
Tzschätzsch, Heiko
Shahryari, Mehrgan
Meyer, Tom
Görner, Steffen
Neubauer, Hennes
Guo, Jing
Braun, Jürgen
Sack, Ingolf
author_sort Herthum, Helge
collection PubMed
description Purpose: Magnetic resonance elastography (MRE) generates quantitative maps of the mechanical properties of biological soft tissues. However, published values obtained by brain MRE vary largely and lack detail resolution, due to either true biological effects or technical challenges. We here introduce cerebral tomoelastography in two and three dimensions for improved data consistency and detail resolution while considering aging, brain parenchymal fraction (BPF), systolic blood pressure, and body mass index (BMI). Methods: Multifrequency MRE with 2D- and 3D-tomoelastography postprocessing was applied to the brains of 31 volunteers (age range: 22—61 years) for analyzing the coefficient of variation (CV) and effects of biological factors. Eleven volunteers were rescanned after 1 day and 1 year to determine intraclass correlation coefficient (ICC) and identify possible long-term changes. Results: White matter shear wave speed (SWS) was slightly higher in 2D-MRE (1.28 ± 0.02 m/s) than 3D-MRE (1.22 ± 0.05 m/s, p < 0.0001), with less variation after 1 day in 2D (0.33 ± 0.32%) than in 3D (0.96 ± 0.66%, p = 0.004), which was also reflected in a slightly lower CV and higher ICC in 2D (1.84%, 0.97 [0.88–0.99]) than in 3D (3.89%, 0.95 [0.76–0.99]). Remarkably, 3D-MRE was sensitive to a decrease in white matter SWS within only 1 year, whereas no change in white matter volume was observed during this follow-up period. Across volunteers, stiffness correlated with age and BPF, but not with blood pressure and BMI. Conclusion: Cerebral tomoelastography provides high-resolution viscoelasticity maps with excellent consistency. Brain MRE in 2D shows less variation across volunteers in shorter scan times than 3D-MRE, while 3D-MRE appears to be more sensitive to subtle biological effects such as aging.
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spelling pubmed-97555042022-12-17 Cerebral tomoelastography based on multifrequency MR elastography in two and three dimensions Herthum, Helge Hetzer, Stefan Kreft, Bernhard Tzschätzsch, Heiko Shahryari, Mehrgan Meyer, Tom Görner, Steffen Neubauer, Hennes Guo, Jing Braun, Jürgen Sack, Ingolf Front Bioeng Biotechnol Bioengineering and Biotechnology Purpose: Magnetic resonance elastography (MRE) generates quantitative maps of the mechanical properties of biological soft tissues. However, published values obtained by brain MRE vary largely and lack detail resolution, due to either true biological effects or technical challenges. We here introduce cerebral tomoelastography in two and three dimensions for improved data consistency and detail resolution while considering aging, brain parenchymal fraction (BPF), systolic blood pressure, and body mass index (BMI). Methods: Multifrequency MRE with 2D- and 3D-tomoelastography postprocessing was applied to the brains of 31 volunteers (age range: 22—61 years) for analyzing the coefficient of variation (CV) and effects of biological factors. Eleven volunteers were rescanned after 1 day and 1 year to determine intraclass correlation coefficient (ICC) and identify possible long-term changes. Results: White matter shear wave speed (SWS) was slightly higher in 2D-MRE (1.28 ± 0.02 m/s) than 3D-MRE (1.22 ± 0.05 m/s, p < 0.0001), with less variation after 1 day in 2D (0.33 ± 0.32%) than in 3D (0.96 ± 0.66%, p = 0.004), which was also reflected in a slightly lower CV and higher ICC in 2D (1.84%, 0.97 [0.88–0.99]) than in 3D (3.89%, 0.95 [0.76–0.99]). Remarkably, 3D-MRE was sensitive to a decrease in white matter SWS within only 1 year, whereas no change in white matter volume was observed during this follow-up period. Across volunteers, stiffness correlated with age and BPF, but not with blood pressure and BMI. Conclusion: Cerebral tomoelastography provides high-resolution viscoelasticity maps with excellent consistency. Brain MRE in 2D shows less variation across volunteers in shorter scan times than 3D-MRE, while 3D-MRE appears to be more sensitive to subtle biological effects such as aging. Frontiers Media S.A. 2022-12-02 /pmc/articles/PMC9755504/ /pubmed/36532573 http://dx.doi.org/10.3389/fbioe.2022.1056131 Text en Copyright © 2022 Herthum, Hetzer, Kreft, Tzschätzsch, Shahryari, Meyer, Görner, Neubauer, Guo, Braun and Sack. 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 Bioengineering and Biotechnology
Herthum, Helge
Hetzer, Stefan
Kreft, Bernhard
Tzschätzsch, Heiko
Shahryari, Mehrgan
Meyer, Tom
Görner, Steffen
Neubauer, Hennes
Guo, Jing
Braun, Jürgen
Sack, Ingolf
Cerebral tomoelastography based on multifrequency MR elastography in two and three dimensions
title Cerebral tomoelastography based on multifrequency MR elastography in two and three dimensions
title_full Cerebral tomoelastography based on multifrequency MR elastography in two and three dimensions
title_fullStr Cerebral tomoelastography based on multifrequency MR elastography in two and three dimensions
title_full_unstemmed Cerebral tomoelastography based on multifrequency MR elastography in two and three dimensions
title_short Cerebral tomoelastography based on multifrequency MR elastography in two and three dimensions
title_sort cerebral tomoelastography based on multifrequency mr elastography in two and three dimensions
topic Bioengineering and Biotechnology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9755504/
https://www.ncbi.nlm.nih.gov/pubmed/36532573
http://dx.doi.org/10.3389/fbioe.2022.1056131
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