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In vivo myelin imaging and tissue microstructure in white matter hyperintensities and perilesional white matter
White matter hyperintensities negatively impact white matter structure and relate to cognitive decline in aging. Diffusion tensor imaging detects changes to white matter microstructure, both within the white matter hyperintensity and extending into surrounding (perilesional) normal-appearing white m...
Autores principales: | , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Oxford University Press
2022
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9178967/ https://www.ncbi.nlm.nih.gov/pubmed/35694147 http://dx.doi.org/10.1093/braincomms/fcac142 |
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author | Ferris, Jennifer K. Greeley, Brian Vavasour, Irene M. Kraeutner, Sarah N. Rinat, Shie Ramirez, Joel Black, Sandra E. Boyd, Lara A. |
author_facet | Ferris, Jennifer K. Greeley, Brian Vavasour, Irene M. Kraeutner, Sarah N. Rinat, Shie Ramirez, Joel Black, Sandra E. Boyd, Lara A. |
author_sort | Ferris, Jennifer K. |
collection | PubMed |
description | White matter hyperintensities negatively impact white matter structure and relate to cognitive decline in aging. Diffusion tensor imaging detects changes to white matter microstructure, both within the white matter hyperintensity and extending into surrounding (perilesional) normal-appearing white matter. However, diffusion tensor imaging markers are not specific to tissue components, complicating the interpretation of previous microstructural findings. Myelin water imaging is a novel imaging technique that provides specific markers of myelin content (myelin water fraction) and interstitial fluid (geometric mean T(2)). Here we combined diffusion tensor imaging and myelin water imaging to examine tissue characteristics in white matter hyperintensities and perilesional white matter in 80 individuals (47 older adults and 33 individuals with chronic stroke). To measure perilesional normal-appearing white matter, white matter hyperintensity masks were dilated in 2 mm segments up to 10 mm in distance from the white matter hyperintensity. Fractional anisotropy, mean diffusivity, myelin water fraction, and geometric mean T(2) were extracted from white matter hyperintensities and perilesional white matter. We observed a spatial gradient of higher mean diffusivity and geometric mean T(2), and lower fractional anisotropy, in the white matter hyperintensity and perilesional white matter. In the chronic stroke group, myelin water fraction was reduced in the white matter hyperintensity but did not show a spatial gradient in perilesional white matter. Across the entire sample, white matter metrics within the white matter hyperintensity related to whole-brain white matter hyperintensity volume; with increasing white matter hyperintensity volume there was increased mean diffusivity and geometric mean T(2), and decreased myelin water fraction in the white matter hyperintensity. Normal-appearing white matter adjacent to white matter hyperintensities exhibits characteristics of a transitional stage between healthy white matter and white matter hyperintensities. This effect was observed in markers sensitive to interstitial fluid, but not in myelin water fraction, the specific marker of myelin concentration. Within the white matter hyperintensity, interstitial fluid was higher and myelin concentration was lower in individuals with more severe cerebrovascular disease. Our data suggests white matter hyperintensities have penumbra-like effects in perilesional white matter that specifically reflect increased interstitial fluid, with no changes to myelin concentration. In contrast, within the white matter hyperintensity there are varying levels of demyelination, which vary based on the severity of cerebrovascular disease. Diffusion tensor imaging and myelin imaging may be useful clinical markers to predict white matter hyperintensity formation, and to stage neuronal damage within white matter hyperintensities. |
format | Online Article Text |
id | pubmed-9178967 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2022 |
publisher | Oxford University Press |
record_format | MEDLINE/PubMed |
spelling | pubmed-91789672022-06-09 In vivo myelin imaging and tissue microstructure in white matter hyperintensities and perilesional white matter Ferris, Jennifer K. Greeley, Brian Vavasour, Irene M. Kraeutner, Sarah N. Rinat, Shie Ramirez, Joel Black, Sandra E. Boyd, Lara A. Brain Commun Original Article White matter hyperintensities negatively impact white matter structure and relate to cognitive decline in aging. Diffusion tensor imaging detects changes to white matter microstructure, both within the white matter hyperintensity and extending into surrounding (perilesional) normal-appearing white matter. However, diffusion tensor imaging markers are not specific to tissue components, complicating the interpretation of previous microstructural findings. Myelin water imaging is a novel imaging technique that provides specific markers of myelin content (myelin water fraction) and interstitial fluid (geometric mean T(2)). Here we combined diffusion tensor imaging and myelin water imaging to examine tissue characteristics in white matter hyperintensities and perilesional white matter in 80 individuals (47 older adults and 33 individuals with chronic stroke). To measure perilesional normal-appearing white matter, white matter hyperintensity masks were dilated in 2 mm segments up to 10 mm in distance from the white matter hyperintensity. Fractional anisotropy, mean diffusivity, myelin water fraction, and geometric mean T(2) were extracted from white matter hyperintensities and perilesional white matter. We observed a spatial gradient of higher mean diffusivity and geometric mean T(2), and lower fractional anisotropy, in the white matter hyperintensity and perilesional white matter. In the chronic stroke group, myelin water fraction was reduced in the white matter hyperintensity but did not show a spatial gradient in perilesional white matter. Across the entire sample, white matter metrics within the white matter hyperintensity related to whole-brain white matter hyperintensity volume; with increasing white matter hyperintensity volume there was increased mean diffusivity and geometric mean T(2), and decreased myelin water fraction in the white matter hyperintensity. Normal-appearing white matter adjacent to white matter hyperintensities exhibits characteristics of a transitional stage between healthy white matter and white matter hyperintensities. This effect was observed in markers sensitive to interstitial fluid, but not in myelin water fraction, the specific marker of myelin concentration. Within the white matter hyperintensity, interstitial fluid was higher and myelin concentration was lower in individuals with more severe cerebrovascular disease. Our data suggests white matter hyperintensities have penumbra-like effects in perilesional white matter that specifically reflect increased interstitial fluid, with no changes to myelin concentration. In contrast, within the white matter hyperintensity there are varying levels of demyelination, which vary based on the severity of cerebrovascular disease. Diffusion tensor imaging and myelin imaging may be useful clinical markers to predict white matter hyperintensity formation, and to stage neuronal damage within white matter hyperintensities. Oxford University Press 2022-06-06 /pmc/articles/PMC9178967/ /pubmed/35694147 http://dx.doi.org/10.1093/braincomms/fcac142 Text en © The Author(s) 2022. Published by Oxford University Press on behalf of the Guarantors of Brain. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited. |
spellingShingle | Original Article Ferris, Jennifer K. Greeley, Brian Vavasour, Irene M. Kraeutner, Sarah N. Rinat, Shie Ramirez, Joel Black, Sandra E. Boyd, Lara A. In vivo myelin imaging and tissue microstructure in white matter hyperintensities and perilesional white matter |
title | In vivo myelin imaging and tissue microstructure in white matter hyperintensities and perilesional white matter |
title_full | In vivo myelin imaging and tissue microstructure in white matter hyperintensities and perilesional white matter |
title_fullStr | In vivo myelin imaging and tissue microstructure in white matter hyperintensities and perilesional white matter |
title_full_unstemmed | In vivo myelin imaging and tissue microstructure in white matter hyperintensities and perilesional white matter |
title_short | In vivo myelin imaging and tissue microstructure in white matter hyperintensities and perilesional white matter |
title_sort | in vivo myelin imaging and tissue microstructure in white matter hyperintensities and perilesional white matter |
topic | Original Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9178967/ https://www.ncbi.nlm.nih.gov/pubmed/35694147 http://dx.doi.org/10.1093/braincomms/fcac142 |
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