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Exercise-Induced Changes of Multimodal Interactions Within the Autonomic Nervous Network

Physical exercise has been shown to modulate activity within the autonomic nervous system (ANS). Considering physical exercise as a holistic stimulus on the nervous system and specifically the ANS, uni- and multimodal analysis tools were applied to characterize centrally driven interactions and cont...

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Autores principales: Vieluf, Solveig, Hasija, Tanuj, Jakobsmeyer, Rasmus, Schreier, Peter J., Reinsberger, Claus
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6449462/
https://www.ncbi.nlm.nih.gov/pubmed/30984010
http://dx.doi.org/10.3389/fphys.2019.00240
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author Vieluf, Solveig
Hasija, Tanuj
Jakobsmeyer, Rasmus
Schreier, Peter J.
Reinsberger, Claus
author_facet Vieluf, Solveig
Hasija, Tanuj
Jakobsmeyer, Rasmus
Schreier, Peter J.
Reinsberger, Claus
author_sort Vieluf, Solveig
collection PubMed
description Physical exercise has been shown to modulate activity within the autonomic nervous system (ANS). Considering physical exercise as a holistic stimulus on the nervous system and specifically the ANS, uni- and multimodal analysis tools were applied to characterize centrally driven interactions and control of ANS functions. Nineteen young and physically active participants performed treadmill tests at individually determined moderate and high intensities. Continuous electrodermal activity (EDA), heart rate (HR), and skin temperature at wrist (Temp) were recorded by wireless multisensor devices (Empatica(®) E4, Milan, Italy) before and 30 min after exercise. Artifact-free continuous 3 min intervals were analyzed. For unimodal analysis, mean values were calculated, for bimodal and multimodal analysis canonical correlation analysis (CCA) was performed. Unimodal results indicate that physical exercise affects ANS activity. More specifically, Temp increased due to physical activity (moderate intensity: from 34.15°C to 35.34°C and high intensity: from 34.11°C to 35.09°C). HR increased more for the high (from 60.76 bpm to 79.89 bpm) than for the moderate (from 64.81 bpm to 70.83 bpm) intensity. EDA was higher for the high (pre: 8.06 μS and post: 9.37 μS) than for the moderate (pre: 4.31 μS and post: 3.91 μS) intensity. Bimodal analyses revealed high variations in correlations before exercise. The overall correlation coefficient showed varying correlations in pretest measures for all modality pairs (EDA-HR, HR-Temp, Temp-EDA at moderate: 0.831, 0.998, 0.921 and high: 0.706, 0, 0.578). After exercising at moderate intensity coefficients changed little (0.828, 0.744, 0.994), but increased substantially for all modality pairs after exercising at high intensity (0.976, 0.898, 0.926). Multimodal analysis confirmed bimodal results. Exercise-induced changes in ANS activity can be found in multiple ANS modalities as well as in their interactions. Those changes are intensity-specific: with higher intensity the interactions increase. Canonical correlations between different ANS modalities may therefore offer a feasible approach to determine exercise induced modulations of ANS activity.
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spelling pubmed-64494622019-04-12 Exercise-Induced Changes of Multimodal Interactions Within the Autonomic Nervous Network Vieluf, Solveig Hasija, Tanuj Jakobsmeyer, Rasmus Schreier, Peter J. Reinsberger, Claus Front Physiol Physiology Physical exercise has been shown to modulate activity within the autonomic nervous system (ANS). Considering physical exercise as a holistic stimulus on the nervous system and specifically the ANS, uni- and multimodal analysis tools were applied to characterize centrally driven interactions and control of ANS functions. Nineteen young and physically active participants performed treadmill tests at individually determined moderate and high intensities. Continuous electrodermal activity (EDA), heart rate (HR), and skin temperature at wrist (Temp) were recorded by wireless multisensor devices (Empatica(®) E4, Milan, Italy) before and 30 min after exercise. Artifact-free continuous 3 min intervals were analyzed. For unimodal analysis, mean values were calculated, for bimodal and multimodal analysis canonical correlation analysis (CCA) was performed. Unimodal results indicate that physical exercise affects ANS activity. More specifically, Temp increased due to physical activity (moderate intensity: from 34.15°C to 35.34°C and high intensity: from 34.11°C to 35.09°C). HR increased more for the high (from 60.76 bpm to 79.89 bpm) than for the moderate (from 64.81 bpm to 70.83 bpm) intensity. EDA was higher for the high (pre: 8.06 μS and post: 9.37 μS) than for the moderate (pre: 4.31 μS and post: 3.91 μS) intensity. Bimodal analyses revealed high variations in correlations before exercise. The overall correlation coefficient showed varying correlations in pretest measures for all modality pairs (EDA-HR, HR-Temp, Temp-EDA at moderate: 0.831, 0.998, 0.921 and high: 0.706, 0, 0.578). After exercising at moderate intensity coefficients changed little (0.828, 0.744, 0.994), but increased substantially for all modality pairs after exercising at high intensity (0.976, 0.898, 0.926). Multimodal analysis confirmed bimodal results. Exercise-induced changes in ANS activity can be found in multiple ANS modalities as well as in their interactions. Those changes are intensity-specific: with higher intensity the interactions increase. Canonical correlations between different ANS modalities may therefore offer a feasible approach to determine exercise induced modulations of ANS activity. Frontiers Media S.A. 2019-03-29 /pmc/articles/PMC6449462/ /pubmed/30984010 http://dx.doi.org/10.3389/fphys.2019.00240 Text en Copyright © 2019 Vieluf, Hasija, Jakobsmeyer, Schreier and Reinsberger. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Physiology
Vieluf, Solveig
Hasija, Tanuj
Jakobsmeyer, Rasmus
Schreier, Peter J.
Reinsberger, Claus
Exercise-Induced Changes of Multimodal Interactions Within the Autonomic Nervous Network
title Exercise-Induced Changes of Multimodal Interactions Within the Autonomic Nervous Network
title_full Exercise-Induced Changes of Multimodal Interactions Within the Autonomic Nervous Network
title_fullStr Exercise-Induced Changes of Multimodal Interactions Within the Autonomic Nervous Network
title_full_unstemmed Exercise-Induced Changes of Multimodal Interactions Within the Autonomic Nervous Network
title_short Exercise-Induced Changes of Multimodal Interactions Within the Autonomic Nervous Network
title_sort exercise-induced changes of multimodal interactions within the autonomic nervous network
topic Physiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6449462/
https://www.ncbi.nlm.nih.gov/pubmed/30984010
http://dx.doi.org/10.3389/fphys.2019.00240
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