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Dynamics of White Matter Plasticity Underlying Working Memory Training: Multimodal Evidence from Diffusion MRI and Relaxometry

Adaptive working memory (WM) training may lead to cognitive benefits that are associated with white matter plasticity in parietofrontal networks, but the underlying mechanisms remain poorly understood. We investigated white matter microstructural changes after adaptive WM training relative to a nona...

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Autores principales: Metzler-Baddeley, Claudia, Foley, Sonya, de Santis, Silvia, Charron, Cyril, Hampshire, Adam, Caeyenberghs, Karen, Jones, Derek K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5881889/
https://www.ncbi.nlm.nih.gov/pubmed/28358656
http://dx.doi.org/10.1162/jocn_a_01127
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author Metzler-Baddeley, Claudia
Foley, Sonya
de Santis, Silvia
Charron, Cyril
Hampshire, Adam
Caeyenberghs, Karen
Jones, Derek K.
author_facet Metzler-Baddeley, Claudia
Foley, Sonya
de Santis, Silvia
Charron, Cyril
Hampshire, Adam
Caeyenberghs, Karen
Jones, Derek K.
author_sort Metzler-Baddeley, Claudia
collection PubMed
description Adaptive working memory (WM) training may lead to cognitive benefits that are associated with white matter plasticity in parietofrontal networks, but the underlying mechanisms remain poorly understood. We investigated white matter microstructural changes after adaptive WM training relative to a nonadaptive comparison group. Microstructural changes were studied in the superior longitudinal fasciculus, the main parietofrontal connection, and the cingulum bundle as a comparison pathway. MRI-based metrics were the myelin water fraction and longitudinal relaxation rate R(1) from multicomponent relaxometry (captured with the mcDESPOT approach) as proxy metrics of myelin, the restricted volume fraction from the composite hindered and restricted model of diffusion as an estimate of axon morphology, and fractional anisotropy and radial diffusivity from diffusion tensor imaging. PCA was used for dimensionality reduction. Adaptive training was associated with benefits in a “WM capacity” component and increases in a microstructural component (increases in R(1), restricted volume fraction, fractional anisotropy, and reduced radial diffusivity) that predominantly loaded on changes in the right dorsolateral superior longitudinal fasciculus and the left parahippocampal cingulum. In contrast, nonadaptive comparison activities were associated with the opposite pattern of reductions in WM capacity and microstructure. No group differences were observed for the myelin water fraction metric suggesting that R(1) was a more sensitive “myelin” index. These results demonstrate task complexity and location-specific white matter microstructural changes that are consistent with tissue alterations underlying myelination in response to training.
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spelling pubmed-58818892018-04-03 Dynamics of White Matter Plasticity Underlying Working Memory Training: Multimodal Evidence from Diffusion MRI and Relaxometry Metzler-Baddeley, Claudia Foley, Sonya de Santis, Silvia Charron, Cyril Hampshire, Adam Caeyenberghs, Karen Jones, Derek K. J Cogn Neurosci Article Adaptive working memory (WM) training may lead to cognitive benefits that are associated with white matter plasticity in parietofrontal networks, but the underlying mechanisms remain poorly understood. We investigated white matter microstructural changes after adaptive WM training relative to a nonadaptive comparison group. Microstructural changes were studied in the superior longitudinal fasciculus, the main parietofrontal connection, and the cingulum bundle as a comparison pathway. MRI-based metrics were the myelin water fraction and longitudinal relaxation rate R(1) from multicomponent relaxometry (captured with the mcDESPOT approach) as proxy metrics of myelin, the restricted volume fraction from the composite hindered and restricted model of diffusion as an estimate of axon morphology, and fractional anisotropy and radial diffusivity from diffusion tensor imaging. PCA was used for dimensionality reduction. Adaptive training was associated with benefits in a “WM capacity” component and increases in a microstructural component (increases in R(1), restricted volume fraction, fractional anisotropy, and reduced radial diffusivity) that predominantly loaded on changes in the right dorsolateral superior longitudinal fasciculus and the left parahippocampal cingulum. In contrast, nonadaptive comparison activities were associated with the opposite pattern of reductions in WM capacity and microstructure. No group differences were observed for the myelin water fraction metric suggesting that R(1) was a more sensitive “myelin” index. These results demonstrate task complexity and location-specific white matter microstructural changes that are consistent with tissue alterations underlying myelination in response to training. 2017-03-30 2017-09 /pmc/articles/PMC5881889/ /pubmed/28358656 http://dx.doi.org/10.1162/jocn_a_01127 Text en http://creativecommons.org/licenses/by/3.0/ Published under a Creative Commons Attribution 3.0 Unported (CC BY 3.0) license. (http://creativecommons.org/licenses/by/3.0/)
spellingShingle Article
Metzler-Baddeley, Claudia
Foley, Sonya
de Santis, Silvia
Charron, Cyril
Hampshire, Adam
Caeyenberghs, Karen
Jones, Derek K.
Dynamics of White Matter Plasticity Underlying Working Memory Training: Multimodal Evidence from Diffusion MRI and Relaxometry
title Dynamics of White Matter Plasticity Underlying Working Memory Training: Multimodal Evidence from Diffusion MRI and Relaxometry
title_full Dynamics of White Matter Plasticity Underlying Working Memory Training: Multimodal Evidence from Diffusion MRI and Relaxometry
title_fullStr Dynamics of White Matter Plasticity Underlying Working Memory Training: Multimodal Evidence from Diffusion MRI and Relaxometry
title_full_unstemmed Dynamics of White Matter Plasticity Underlying Working Memory Training: Multimodal Evidence from Diffusion MRI and Relaxometry
title_short Dynamics of White Matter Plasticity Underlying Working Memory Training: Multimodal Evidence from Diffusion MRI and Relaxometry
title_sort dynamics of white matter plasticity underlying working memory training: multimodal evidence from diffusion mri and relaxometry
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5881889/
https://www.ncbi.nlm.nih.gov/pubmed/28358656
http://dx.doi.org/10.1162/jocn_a_01127
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