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Repeatability and reproducibility of human brain morphometry using three‐dimensional magnetic resonance fingerprinting

Three‐dimensional (3D) Magnetic resonance fingerprinting (MRF) permits whole‐brain volumetric quantification of T1 and T2 relaxation values, potentially replacing conventional T1‐weighted structural imaging for common brain imaging analysis. The aim of this study was to evaluate the repeatability an...

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Autores principales: Fujita, Shohei, Buonincontri, Guido, Cencini, Matteo, Fukunaga, Issei, Takei, Naoyuki, Schulte, Rolf F., Hagiwara, Akifumi, Uchida, Wataru, Hori, Masaaki, Kamagata, Koji, Abe, Osamu, Aoki, Shigeki
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley & Sons, Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7775993/
https://www.ncbi.nlm.nih.gov/pubmed/33089962
http://dx.doi.org/10.1002/hbm.25232
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author Fujita, Shohei
Buonincontri, Guido
Cencini, Matteo
Fukunaga, Issei
Takei, Naoyuki
Schulte, Rolf F.
Hagiwara, Akifumi
Uchida, Wataru
Hori, Masaaki
Kamagata, Koji
Abe, Osamu
Aoki, Shigeki
author_facet Fujita, Shohei
Buonincontri, Guido
Cencini, Matteo
Fukunaga, Issei
Takei, Naoyuki
Schulte, Rolf F.
Hagiwara, Akifumi
Uchida, Wataru
Hori, Masaaki
Kamagata, Koji
Abe, Osamu
Aoki, Shigeki
author_sort Fujita, Shohei
collection PubMed
description Three‐dimensional (3D) Magnetic resonance fingerprinting (MRF) permits whole‐brain volumetric quantification of T1 and T2 relaxation values, potentially replacing conventional T1‐weighted structural imaging for common brain imaging analysis. The aim of this study was to evaluate the repeatability and reproducibility of 3D MRF in evaluating brain cortical thickness and subcortical volumetric analysis in healthy volunteers using conventional 3D T1‐weighted images as a reference standard. Scan‐rescan tests of both 3D MRF and conventional 3D fast spoiled gradient recalled echo (FSPGR) were performed. For each sequence, the regional cortical thickness and volume of the subcortical structures were measured using standard automatic brain segmentation software. Repeatability and reproducibility were assessed using the within‐subject coefficient of variation (wCV), intraclass correlation coefficient (ICC), and mean percent difference and ICC, respectively. The wCV and ICC of cortical thickness were similar across all regions with both 3D MRF and FSPGR. The percent relative difference in cortical thickness between 3D MRF and FSPGR across all regions was 8.0 ± 3.2%. The wCV and ICC of the volume of subcortical structures across all structures were similar between 3D MRF and FSPGR. The percent relative difference in the volume of subcortical structures between 3D MRF and FSPGR across all structures was 7.1 ± 3.6%. 3D MRF measurements of human brain cortical thickness and subcortical volumes are highly repeatable, and consistent with measurements taken on conventional 3D T1‐weighted images. A slight, consistent bias was evident between the two, and thus careful attention is required when combining data from MRF and conventional acquisitions.
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spelling pubmed-77759932021-01-07 Repeatability and reproducibility of human brain morphometry using three‐dimensional magnetic resonance fingerprinting Fujita, Shohei Buonincontri, Guido Cencini, Matteo Fukunaga, Issei Takei, Naoyuki Schulte, Rolf F. Hagiwara, Akifumi Uchida, Wataru Hori, Masaaki Kamagata, Koji Abe, Osamu Aoki, Shigeki Hum Brain Mapp Technical Report Three‐dimensional (3D) Magnetic resonance fingerprinting (MRF) permits whole‐brain volumetric quantification of T1 and T2 relaxation values, potentially replacing conventional T1‐weighted structural imaging for common brain imaging analysis. The aim of this study was to evaluate the repeatability and reproducibility of 3D MRF in evaluating brain cortical thickness and subcortical volumetric analysis in healthy volunteers using conventional 3D T1‐weighted images as a reference standard. Scan‐rescan tests of both 3D MRF and conventional 3D fast spoiled gradient recalled echo (FSPGR) were performed. For each sequence, the regional cortical thickness and volume of the subcortical structures were measured using standard automatic brain segmentation software. Repeatability and reproducibility were assessed using the within‐subject coefficient of variation (wCV), intraclass correlation coefficient (ICC), and mean percent difference and ICC, respectively. The wCV and ICC of cortical thickness were similar across all regions with both 3D MRF and FSPGR. The percent relative difference in cortical thickness between 3D MRF and FSPGR across all regions was 8.0 ± 3.2%. The wCV and ICC of the volume of subcortical structures across all structures were similar between 3D MRF and FSPGR. The percent relative difference in the volume of subcortical structures between 3D MRF and FSPGR across all structures was 7.1 ± 3.6%. 3D MRF measurements of human brain cortical thickness and subcortical volumes are highly repeatable, and consistent with measurements taken on conventional 3D T1‐weighted images. A slight, consistent bias was evident between the two, and thus careful attention is required when combining data from MRF and conventional acquisitions. John Wiley & Sons, Inc. 2020-10-22 /pmc/articles/PMC7775993/ /pubmed/33089962 http://dx.doi.org/10.1002/hbm.25232 Text en © 2020 The Authors. Human Brain Mapping published by Wiley Periodicals LLC. This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Technical Report
Fujita, Shohei
Buonincontri, Guido
Cencini, Matteo
Fukunaga, Issei
Takei, Naoyuki
Schulte, Rolf F.
Hagiwara, Akifumi
Uchida, Wataru
Hori, Masaaki
Kamagata, Koji
Abe, Osamu
Aoki, Shigeki
Repeatability and reproducibility of human brain morphometry using three‐dimensional magnetic resonance fingerprinting
title Repeatability and reproducibility of human brain morphometry using three‐dimensional magnetic resonance fingerprinting
title_full Repeatability and reproducibility of human brain morphometry using three‐dimensional magnetic resonance fingerprinting
title_fullStr Repeatability and reproducibility of human brain morphometry using three‐dimensional magnetic resonance fingerprinting
title_full_unstemmed Repeatability and reproducibility of human brain morphometry using three‐dimensional magnetic resonance fingerprinting
title_short Repeatability and reproducibility of human brain morphometry using three‐dimensional magnetic resonance fingerprinting
title_sort repeatability and reproducibility of human brain morphometry using three‐dimensional magnetic resonance fingerprinting
topic Technical Report
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7775993/
https://www.ncbi.nlm.nih.gov/pubmed/33089962
http://dx.doi.org/10.1002/hbm.25232
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