Visual perceptual training reconfigures post-task resting-state functional connectivity with a feature-representation region.

The neural mechanisms underlying visual perceptual learning (VPL) have typically been studied by examining changes in task-related brain activation after training. However, the relationship between post-task "offline" processes and VPL remains unclear. The present study examined this quest...

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Main Authors: Mitra Taghizadeh Sarabi, Ryuta Aoki, Kaho Tsumura, Ruedeerat Keerativittayayut, Koji Jimura, Kiyoshi Nakahara
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2018-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC5942817?pdf=render
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spelling doaj-3980bf75cc6444b38bceb22fbc17a45b2020-11-25T02:08:06ZengPublic Library of Science (PLoS)PLoS ONE1932-62032018-01-01135e019686610.1371/journal.pone.0196866Visual perceptual training reconfigures post-task resting-state functional connectivity with a feature-representation region.Mitra Taghizadeh SarabiRyuta AokiKaho TsumuraRuedeerat KeerativittayayutKoji JimuraKiyoshi NakaharaThe neural mechanisms underlying visual perceptual learning (VPL) have typically been studied by examining changes in task-related brain activation after training. However, the relationship between post-task "offline" processes and VPL remains unclear. The present study examined this question by obtaining resting-state functional magnetic resonance imaging (fMRI) scans of human brains before and after a task-fMRI session involving visual perceptual training. During the task-fMRI session, participants performed a motion coherence discrimination task in which they judged the direction of moving dots with a coherence level that varied between trials (20, 40, and 80%). We found that stimulus-induced activation increased with motion coherence in the middle temporal cortex (MT+), a feature-specific region representing visual motion. On the other hand, stimulus-induced activation decreased with motion coherence in the dorsal anterior cingulate cortex (dACC) and bilateral insula, regions involved in decision making under perceptual ambiguity. Moreover, by comparing pre-task and post-task rest periods, we revealed that resting-state functional connectivity (rs-FC) with the MT+ was significantly increased after training in widespread cortical regions including the bilateral sensorimotor and temporal cortices. In contrast, rs-FC with the MT+ was significantly decreased in subcortical regions including the thalamus and putamen. Importantly, the training-induced change in rs-FC was observed only with the MT+, but not with the dACC or insula. Thus, our findings suggest that perceptual training induces plastic changes in offline functional connectivity specifically in brain regions representing the trained visual feature, emphasising the distinct roles of feature-representation regions and decision-related regions in VPL.http://europepmc.org/articles/PMC5942817?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Mitra Taghizadeh Sarabi
Ryuta Aoki
Kaho Tsumura
Ruedeerat Keerativittayayut
Koji Jimura
Kiyoshi Nakahara
spellingShingle Mitra Taghizadeh Sarabi
Ryuta Aoki
Kaho Tsumura
Ruedeerat Keerativittayayut
Koji Jimura
Kiyoshi Nakahara
Visual perceptual training reconfigures post-task resting-state functional connectivity with a feature-representation region.
PLoS ONE
author_facet Mitra Taghizadeh Sarabi
Ryuta Aoki
Kaho Tsumura
Ruedeerat Keerativittayayut
Koji Jimura
Kiyoshi Nakahara
author_sort Mitra Taghizadeh Sarabi
title Visual perceptual training reconfigures post-task resting-state functional connectivity with a feature-representation region.
title_short Visual perceptual training reconfigures post-task resting-state functional connectivity with a feature-representation region.
title_full Visual perceptual training reconfigures post-task resting-state functional connectivity with a feature-representation region.
title_fullStr Visual perceptual training reconfigures post-task resting-state functional connectivity with a feature-representation region.
title_full_unstemmed Visual perceptual training reconfigures post-task resting-state functional connectivity with a feature-representation region.
title_sort visual perceptual training reconfigures post-task resting-state functional connectivity with a feature-representation region.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2018-01-01
description The neural mechanisms underlying visual perceptual learning (VPL) have typically been studied by examining changes in task-related brain activation after training. However, the relationship between post-task "offline" processes and VPL remains unclear. The present study examined this question by obtaining resting-state functional magnetic resonance imaging (fMRI) scans of human brains before and after a task-fMRI session involving visual perceptual training. During the task-fMRI session, participants performed a motion coherence discrimination task in which they judged the direction of moving dots with a coherence level that varied between trials (20, 40, and 80%). We found that stimulus-induced activation increased with motion coherence in the middle temporal cortex (MT+), a feature-specific region representing visual motion. On the other hand, stimulus-induced activation decreased with motion coherence in the dorsal anterior cingulate cortex (dACC) and bilateral insula, regions involved in decision making under perceptual ambiguity. Moreover, by comparing pre-task and post-task rest periods, we revealed that resting-state functional connectivity (rs-FC) with the MT+ was significantly increased after training in widespread cortical regions including the bilateral sensorimotor and temporal cortices. In contrast, rs-FC with the MT+ was significantly decreased in subcortical regions including the thalamus and putamen. Importantly, the training-induced change in rs-FC was observed only with the MT+, but not with the dACC or insula. Thus, our findings suggest that perceptual training induces plastic changes in offline functional connectivity specifically in brain regions representing the trained visual feature, emphasising the distinct roles of feature-representation regions and decision-related regions in VPL.
url http://europepmc.org/articles/PMC5942817?pdf=render
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