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Compensatory Effort Parallels Midbrain Deactivation during Mental Fatigue: An fMRI Study

Fatigue reflects the functioning of our physiological negative feedback system, which prevents us from overworking. When fatigued, however, we often try to suppress this system in an effort to compensate for the resulting deterioration in performance. Previous studies have suggested that the effect...

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Autores principales: Nakagawa, Seishu, Sugiura, Motoaki, Akitsuki, Yuko, Hosseini, S. M. Hadi, Kotozaki, Yuka, Miyauchi, Carlos Makoto, Yomogida, Yukihito, Yokoyama, Ryoichi, Takeuchi, Hikaru, Kawashima, Ryuta
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3573002/
https://www.ncbi.nlm.nih.gov/pubmed/23457592
http://dx.doi.org/10.1371/journal.pone.0056606
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author Nakagawa, Seishu
Sugiura, Motoaki
Akitsuki, Yuko
Hosseini, S. M. Hadi
Kotozaki, Yuka
Miyauchi, Carlos Makoto
Yomogida, Yukihito
Yokoyama, Ryoichi
Takeuchi, Hikaru
Kawashima, Ryuta
author_facet Nakagawa, Seishu
Sugiura, Motoaki
Akitsuki, Yuko
Hosseini, S. M. Hadi
Kotozaki, Yuka
Miyauchi, Carlos Makoto
Yomogida, Yukihito
Yokoyama, Ryoichi
Takeuchi, Hikaru
Kawashima, Ryuta
author_sort Nakagawa, Seishu
collection PubMed
description Fatigue reflects the functioning of our physiological negative feedback system, which prevents us from overworking. When fatigued, however, we often try to suppress this system in an effort to compensate for the resulting deterioration in performance. Previous studies have suggested that the effect of fatigue on neurovascular demand may be influenced by this compensatory effort. The primary goal of the present study was to isolate the effect of compensatory effort on neurovascular demand. Healthy male volunteers participated in a series of visual and auditory divided attention tasks that steadily increased fatigue levels for 2 hours. Functional magnetic resonance imaging scans were performed during the first and last quarter of the study (Pre and Post sessions, respectively). Tasks with low and high attentional load (Low and High conditions, respectively) were administrated in alternating blocks. We assumed that compensatory effort would be greater under the High-attentional-load condition compared with the Low-load condition. The difference was assessed during the two sessions. The effect of compensatory effort on neurovascular demand was evaluated by examining the interaction between load (High vs. Low) and time (Pre vs. Post). Significant fatigue-induced deactivation (i.e., Pre>Post) was observed in the frontal, temporal, occipital, and parietal cortices, in the cerebellum, and in the midbrain in both the High and Low conditions. The interaction was significantly greater in the High than in the Low condition in the midbrain. Neither significant fatigue-induced activation (i.e., Pre<Post), nor its interaction with factor Load, was identified. The observed midbrain deactivation ([PreH – PostH]>[PreE– PostE]) may reflect suppression of the negative feedback system that normally triggers recuperative rest to maintain homeostasis.
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spelling pubmed-35730022013-03-01 Compensatory Effort Parallels Midbrain Deactivation during Mental Fatigue: An fMRI Study Nakagawa, Seishu Sugiura, Motoaki Akitsuki, Yuko Hosseini, S. M. Hadi Kotozaki, Yuka Miyauchi, Carlos Makoto Yomogida, Yukihito Yokoyama, Ryoichi Takeuchi, Hikaru Kawashima, Ryuta PLoS One Research Article Fatigue reflects the functioning of our physiological negative feedback system, which prevents us from overworking. When fatigued, however, we often try to suppress this system in an effort to compensate for the resulting deterioration in performance. Previous studies have suggested that the effect of fatigue on neurovascular demand may be influenced by this compensatory effort. The primary goal of the present study was to isolate the effect of compensatory effort on neurovascular demand. Healthy male volunteers participated in a series of visual and auditory divided attention tasks that steadily increased fatigue levels for 2 hours. Functional magnetic resonance imaging scans were performed during the first and last quarter of the study (Pre and Post sessions, respectively). Tasks with low and high attentional load (Low and High conditions, respectively) were administrated in alternating blocks. We assumed that compensatory effort would be greater under the High-attentional-load condition compared with the Low-load condition. The difference was assessed during the two sessions. The effect of compensatory effort on neurovascular demand was evaluated by examining the interaction between load (High vs. Low) and time (Pre vs. Post). Significant fatigue-induced deactivation (i.e., Pre>Post) was observed in the frontal, temporal, occipital, and parietal cortices, in the cerebellum, and in the midbrain in both the High and Low conditions. The interaction was significantly greater in the High than in the Low condition in the midbrain. Neither significant fatigue-induced activation (i.e., Pre<Post), nor its interaction with factor Load, was identified. The observed midbrain deactivation ([PreH – PostH]>[PreE– PostE]) may reflect suppression of the negative feedback system that normally triggers recuperative rest to maintain homeostasis. Public Library of Science 2013-02-14 /pmc/articles/PMC3573002/ /pubmed/23457592 http://dx.doi.org/10.1371/journal.pone.0056606 Text en © 2013 Nakagawa et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Nakagawa, Seishu
Sugiura, Motoaki
Akitsuki, Yuko
Hosseini, S. M. Hadi
Kotozaki, Yuka
Miyauchi, Carlos Makoto
Yomogida, Yukihito
Yokoyama, Ryoichi
Takeuchi, Hikaru
Kawashima, Ryuta
Compensatory Effort Parallels Midbrain Deactivation during Mental Fatigue: An fMRI Study
title Compensatory Effort Parallels Midbrain Deactivation during Mental Fatigue: An fMRI Study
title_full Compensatory Effort Parallels Midbrain Deactivation during Mental Fatigue: An fMRI Study
title_fullStr Compensatory Effort Parallels Midbrain Deactivation during Mental Fatigue: An fMRI Study
title_full_unstemmed Compensatory Effort Parallels Midbrain Deactivation during Mental Fatigue: An fMRI Study
title_short Compensatory Effort Parallels Midbrain Deactivation during Mental Fatigue: An fMRI Study
title_sort compensatory effort parallels midbrain deactivation during mental fatigue: an fmri study
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3573002/
https://www.ncbi.nlm.nih.gov/pubmed/23457592
http://dx.doi.org/10.1371/journal.pone.0056606
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