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Coupled versus decoupled visuomotor feedback: Differential frontoparietal activity during curved reach planning on simultaneous functional near‐infrared spectroscopy and electroencephalography

INTRODUCTION: Interacting with the environment requires the planning and execution of reach‐to‐target movements along given reach trajectory paths. Human neural mechanisms for the motor planning of linear, or point‐to‐point, reaching movements are relatively well studied. However, the corresponding...

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Autores principales: Le, Duc Trung, Ogawa, Hiroki, Tsuyuhara, Masato, Watanabe, Kazuki, Watanabe, Tatsunori, Ochi, Ryosuke, Nishijo, Hisao, Mihara, Masahito, Fujita, Naoto, Urakawa, Susumu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9304848/
https://www.ncbi.nlm.nih.gov/pubmed/35701382
http://dx.doi.org/10.1002/brb3.2681
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author Le, Duc Trung
Ogawa, Hiroki
Tsuyuhara, Masato
Watanabe, Kazuki
Watanabe, Tatsunori
Ochi, Ryosuke
Nishijo, Hisao
Mihara, Masahito
Fujita, Naoto
Urakawa, Susumu
author_facet Le, Duc Trung
Ogawa, Hiroki
Tsuyuhara, Masato
Watanabe, Kazuki
Watanabe, Tatsunori
Ochi, Ryosuke
Nishijo, Hisao
Mihara, Masahito
Fujita, Naoto
Urakawa, Susumu
author_sort Le, Duc Trung
collection PubMed
description INTRODUCTION: Interacting with the environment requires the planning and execution of reach‐to‐target movements along given reach trajectory paths. Human neural mechanisms for the motor planning of linear, or point‐to‐point, reaching movements are relatively well studied. However, the corresponding representations for curved and more complex reaching movements require further investigation. Additionally, the visual and proprioceptive feedback of hand positioning can be spatially and sequentially coupled in alignment (e.g., directly reaching for an object), termed coupled visuomotor feedback, or spatially decoupled (e.g., dragging the computer mouse forward to move the cursor upward), termed decoupled visuomotor feedback. During reach planning, visuomotor processing routes may differ across feedback types. METHODS: We investigated the involvement of the frontoparietal regions, including the superior parietal lobule (SPL), dorsal premotor cortex (PMd), and dorsolateral prefrontal cortex (dlPFC), in curved reach planning under different feedback conditions. Participants engaged in two delayed‐response reaching tasks with identical starting and target position sets but different reach trajectory paths (linear or curved) under two feedback conditions (coupled or decoupled). Neural responses in frontoparietal regions were analyzed using a combination of functional near‐infrared spectroscopy and electroencephalography. RESULTS: The results revealed that, regarding the cue period, curved reach planning had a higher hemodynamic response in the left SPL and bilateral PMd and a smaller high‐beta power in the left parietal regions than linear reach planning. Regarding the delay period, higher hemodynamic responses during curved reach planning were observed in the right dlPFC for decoupled feedback than those for coupled feedback. CONCLUSION: These findings suggest the crucial involvement of both SPL and PMd activities in trajectory‐path processing for curved reach planning. Moreover, the dlPFC may be especially involved in the planning of curved reaching movements under decoupled feedback conditions. Thus, this study provides insight into the neural mechanisms underlying reaching function via different feedback conditions.
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spelling pubmed-93048482022-07-26 Coupled versus decoupled visuomotor feedback: Differential frontoparietal activity during curved reach planning on simultaneous functional near‐infrared spectroscopy and electroencephalography Le, Duc Trung Ogawa, Hiroki Tsuyuhara, Masato Watanabe, Kazuki Watanabe, Tatsunori Ochi, Ryosuke Nishijo, Hisao Mihara, Masahito Fujita, Naoto Urakawa, Susumu Brain Behav Original Articles INTRODUCTION: Interacting with the environment requires the planning and execution of reach‐to‐target movements along given reach trajectory paths. Human neural mechanisms for the motor planning of linear, or point‐to‐point, reaching movements are relatively well studied. However, the corresponding representations for curved and more complex reaching movements require further investigation. Additionally, the visual and proprioceptive feedback of hand positioning can be spatially and sequentially coupled in alignment (e.g., directly reaching for an object), termed coupled visuomotor feedback, or spatially decoupled (e.g., dragging the computer mouse forward to move the cursor upward), termed decoupled visuomotor feedback. During reach planning, visuomotor processing routes may differ across feedback types. METHODS: We investigated the involvement of the frontoparietal regions, including the superior parietal lobule (SPL), dorsal premotor cortex (PMd), and dorsolateral prefrontal cortex (dlPFC), in curved reach planning under different feedback conditions. Participants engaged in two delayed‐response reaching tasks with identical starting and target position sets but different reach trajectory paths (linear or curved) under two feedback conditions (coupled or decoupled). Neural responses in frontoparietal regions were analyzed using a combination of functional near‐infrared spectroscopy and electroencephalography. RESULTS: The results revealed that, regarding the cue period, curved reach planning had a higher hemodynamic response in the left SPL and bilateral PMd and a smaller high‐beta power in the left parietal regions than linear reach planning. Regarding the delay period, higher hemodynamic responses during curved reach planning were observed in the right dlPFC for decoupled feedback than those for coupled feedback. CONCLUSION: These findings suggest the crucial involvement of both SPL and PMd activities in trajectory‐path processing for curved reach planning. Moreover, the dlPFC may be especially involved in the planning of curved reaching movements under decoupled feedback conditions. Thus, this study provides insight into the neural mechanisms underlying reaching function via different feedback conditions. John Wiley and Sons Inc. 2022-06-14 /pmc/articles/PMC9304848/ /pubmed/35701382 http://dx.doi.org/10.1002/brb3.2681 Text en © 2022 The Authors. Brain and Behavior published by Wiley Periodicals LLC. https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Le, Duc Trung
Ogawa, Hiroki
Tsuyuhara, Masato
Watanabe, Kazuki
Watanabe, Tatsunori
Ochi, Ryosuke
Nishijo, Hisao
Mihara, Masahito
Fujita, Naoto
Urakawa, Susumu
Coupled versus decoupled visuomotor feedback: Differential frontoparietal activity during curved reach planning on simultaneous functional near‐infrared spectroscopy and electroencephalography
title Coupled versus decoupled visuomotor feedback: Differential frontoparietal activity during curved reach planning on simultaneous functional near‐infrared spectroscopy and electroencephalography
title_full Coupled versus decoupled visuomotor feedback: Differential frontoparietal activity during curved reach planning on simultaneous functional near‐infrared spectroscopy and electroencephalography
title_fullStr Coupled versus decoupled visuomotor feedback: Differential frontoparietal activity during curved reach planning on simultaneous functional near‐infrared spectroscopy and electroencephalography
title_full_unstemmed Coupled versus decoupled visuomotor feedback: Differential frontoparietal activity during curved reach planning on simultaneous functional near‐infrared spectroscopy and electroencephalography
title_short Coupled versus decoupled visuomotor feedback: Differential frontoparietal activity during curved reach planning on simultaneous functional near‐infrared spectroscopy and electroencephalography
title_sort coupled versus decoupled visuomotor feedback: differential frontoparietal activity during curved reach planning on simultaneous functional near‐infrared spectroscopy and electroencephalography
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9304848/
https://www.ncbi.nlm.nih.gov/pubmed/35701382
http://dx.doi.org/10.1002/brb3.2681
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