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Quantitative myelin water imaging using short TR adiabatic inversion recovery prepared echo-planar imaging (STAIR-EPI) sequence

INTRODUCTION: Numerous techniques for myelin water imaging (MWI) have been devised to specifically assess alterations in myelin. The biomarker employed to measure changes in myelin content is known as the myelin water fraction (MWF). The short TR adiabatic inversion recovery (STAIR) sequence has rec...

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Autores principales: Shaterian Mohammadi, Hamidreza, Moazamian, Dina, Athertya, Jiyo S., Shin, Soo Hyun, Lo, James, Suprana, Arya, Malhi, Bhavsimran S., Ma, Yajun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10568074/
https://www.ncbi.nlm.nih.gov/pubmed/37840897
http://dx.doi.org/10.3389/fradi.2023.1263491
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author Shaterian Mohammadi, Hamidreza
Moazamian, Dina
Athertya, Jiyo S.
Shin, Soo Hyun
Lo, James
Suprana, Arya
Malhi, Bhavsimran S.
Ma, Yajun
author_facet Shaterian Mohammadi, Hamidreza
Moazamian, Dina
Athertya, Jiyo S.
Shin, Soo Hyun
Lo, James
Suprana, Arya
Malhi, Bhavsimran S.
Ma, Yajun
author_sort Shaterian Mohammadi, Hamidreza
collection PubMed
description INTRODUCTION: Numerous techniques for myelin water imaging (MWI) have been devised to specifically assess alterations in myelin. The biomarker employed to measure changes in myelin content is known as the myelin water fraction (MWF). The short TR adiabatic inversion recovery (STAIR) sequence has recently been identified as a highly effective method for calculating MWF. The purpose of this study is to develop a new clinical transitional myelin water imaging (MWI) technique that combines STAIR preparation and echo-planar imaging (EPI) (STAIR-EPI) sequence for data acquisition. METHODS: Myelin water (MW) in the brain has shorter T(1) and T(2) relaxation times than intracellular and extracellular water. In the proposed STAIR-EPI sequence, a short TR (e.g., ≤300 ms) together with an optimized inversion time enable robust long T(1) water suppression with a wide range of T(1) values [i.e., (600, 2,000) ms]. The EPI allows fast data acquisition of the remaining MW signals. Seven healthy volunteers and seven patients with multiple sclerosis (MS) were recruited and scanned in this study. The apparent myelin water fraction (aMWF), defined as the signal ratio of MW to total water, was measured in the lesions and normal-appearing white matter (NAWM) in MS patients and compared with those measured in the normal white matter (NWM) in healthy volunteers. RESULTS: As seen in the STAIR-EPI images acquired from MS patients, the MS lesions show lower signal intensities than NAWM do. The aMWF measurements for both MS lesions (3.6 ± 1.3%) and NAWM (8.6 ± 1.2%) in MS patients are significantly lower than NWM (10 ± 1.3%) in healthy volunteers (P < 0.001). DISCUSSION: The proposed STAIR-EPI technique, which can be implemented in MRI scanners from all vendors, is able to detect myelin loss in both MS lesions and NAWM in MS patients.
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spelling pubmed-105680742023-10-13 Quantitative myelin water imaging using short TR adiabatic inversion recovery prepared echo-planar imaging (STAIR-EPI) sequence Shaterian Mohammadi, Hamidreza Moazamian, Dina Athertya, Jiyo S. Shin, Soo Hyun Lo, James Suprana, Arya Malhi, Bhavsimran S. Ma, Yajun Front Radiol Radiology INTRODUCTION: Numerous techniques for myelin water imaging (MWI) have been devised to specifically assess alterations in myelin. The biomarker employed to measure changes in myelin content is known as the myelin water fraction (MWF). The short TR adiabatic inversion recovery (STAIR) sequence has recently been identified as a highly effective method for calculating MWF. The purpose of this study is to develop a new clinical transitional myelin water imaging (MWI) technique that combines STAIR preparation and echo-planar imaging (EPI) (STAIR-EPI) sequence for data acquisition. METHODS: Myelin water (MW) in the brain has shorter T(1) and T(2) relaxation times than intracellular and extracellular water. In the proposed STAIR-EPI sequence, a short TR (e.g., ≤300 ms) together with an optimized inversion time enable robust long T(1) water suppression with a wide range of T(1) values [i.e., (600, 2,000) ms]. The EPI allows fast data acquisition of the remaining MW signals. Seven healthy volunteers and seven patients with multiple sclerosis (MS) were recruited and scanned in this study. The apparent myelin water fraction (aMWF), defined as the signal ratio of MW to total water, was measured in the lesions and normal-appearing white matter (NAWM) in MS patients and compared with those measured in the normal white matter (NWM) in healthy volunteers. RESULTS: As seen in the STAIR-EPI images acquired from MS patients, the MS lesions show lower signal intensities than NAWM do. The aMWF measurements for both MS lesions (3.6 ± 1.3%) and NAWM (8.6 ± 1.2%) in MS patients are significantly lower than NWM (10 ± 1.3%) in healthy volunteers (P < 0.001). DISCUSSION: The proposed STAIR-EPI technique, which can be implemented in MRI scanners from all vendors, is able to detect myelin loss in both MS lesions and NAWM in MS patients. Frontiers Media S.A. 2023-09-28 /pmc/articles/PMC10568074/ /pubmed/37840897 http://dx.doi.org/10.3389/fradi.2023.1263491 Text en © 2023 Shaterian Mohammadi, Moazamian, Athertya, Shin, Lo, Suprana, Malhi and Ma. 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) (https://creativecommons.org/licenses/by/4.0/) . 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 Radiology
Shaterian Mohammadi, Hamidreza
Moazamian, Dina
Athertya, Jiyo S.
Shin, Soo Hyun
Lo, James
Suprana, Arya
Malhi, Bhavsimran S.
Ma, Yajun
Quantitative myelin water imaging using short TR adiabatic inversion recovery prepared echo-planar imaging (STAIR-EPI) sequence
title Quantitative myelin water imaging using short TR adiabatic inversion recovery prepared echo-planar imaging (STAIR-EPI) sequence
title_full Quantitative myelin water imaging using short TR adiabatic inversion recovery prepared echo-planar imaging (STAIR-EPI) sequence
title_fullStr Quantitative myelin water imaging using short TR adiabatic inversion recovery prepared echo-planar imaging (STAIR-EPI) sequence
title_full_unstemmed Quantitative myelin water imaging using short TR adiabatic inversion recovery prepared echo-planar imaging (STAIR-EPI) sequence
title_short Quantitative myelin water imaging using short TR adiabatic inversion recovery prepared echo-planar imaging (STAIR-EPI) sequence
title_sort quantitative myelin water imaging using short tr adiabatic inversion recovery prepared echo-planar imaging (stair-epi) sequence
topic Radiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10568074/
https://www.ncbi.nlm.nih.gov/pubmed/37840897
http://dx.doi.org/10.3389/fradi.2023.1263491
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