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Combined effect of prefrontal transcranial direct current stimulation and a working memory task on heart rate variability

Prefrontal cortex activity has been associated with changes to heart rate variability (HRV) via mediation of the cortico-subcortical pathways that regulate the parasympathetic and sympathetic branches of the autonomic nervous system. Changes in HRV due to altered prefrontal cortex functioning can be...

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Detalles Bibliográficos
Autores principales: Nikolin, Stevan, Boonstra, Tjeerd W., Loo, Colleen K., Martin, Donel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5542548/
https://www.ncbi.nlm.nih.gov/pubmed/28771509
http://dx.doi.org/10.1371/journal.pone.0181833
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author Nikolin, Stevan
Boonstra, Tjeerd W.
Loo, Colleen K.
Martin, Donel
author_facet Nikolin, Stevan
Boonstra, Tjeerd W.
Loo, Colleen K.
Martin, Donel
author_sort Nikolin, Stevan
collection PubMed
description Prefrontal cortex activity has been associated with changes to heart rate variability (HRV) via mediation of the cortico-subcortical pathways that regulate the parasympathetic and sympathetic branches of the autonomic nervous system. Changes in HRV due to altered prefrontal cortex functioning can be predicted using the neurovisceral integration model, which suggests that prefrontal hyperactivity increases parasympathetic tone and decreases contributions from the sympathetic nervous system. Working memory (WM) tasks and transcranial direct current stimulation (tDCS) have been used independently to modulate brain activity demonstrating changes to HRV in agreement with the model. We investigated the combined effects of prefrontal tDCS and a WM task on HRV. Bifrontal tDCS was administered for 15 minutes at 2mA to 20 participants in a sham controlled, single-blind study using parallel groups. A WM task was completed by participants at three time points; pre-, during-, and post-tDCS, with resting state data collected at similar times. Frequency-domain HRV was computed for high frequency (HF; 0.15–0.4Hz) and low frequency (LF; 0.04–0.15Hz) power reflecting parasympathetic and sympathetic branch activity, respectively. Response time on the WM task, but not accuracy, improved from baseline to during-tDCS and post-tDCS with sham, but not active, stimulation. HF-HRV was significantly increased in the active tDCS group compared to sham, lasting beyond cessation of stimulation. Additionally, HF-HRV showed a task-related reduction in power during performance on the WM task. Changes in LF-HRV were moderately inversely correlated (r > 0.4) with changes in WM accuracy during and following tDCS compared to baseline levels. Stimulation of the prefrontal cortex resulted in changes to the parasympathetic branch of the nervous system in agreement with a linearly additive interpretation of effects. Sympathetic activity was not directly altered by tDCS, but was correlated with changes in WM performance. This suggests that the parasympathetic and sympathetic branches respond differentially due to similar, but distinct neural pathways. Given the ease of HRV data collection, studies of prefrontal tDCS would benefit from collection of this data as it provides unique insight into tDCS effects resulting from propagation through brain networks.
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spelling pubmed-55425482017-08-12 Combined effect of prefrontal transcranial direct current stimulation and a working memory task on heart rate variability Nikolin, Stevan Boonstra, Tjeerd W. Loo, Colleen K. Martin, Donel PLoS One Research Article Prefrontal cortex activity has been associated with changes to heart rate variability (HRV) via mediation of the cortico-subcortical pathways that regulate the parasympathetic and sympathetic branches of the autonomic nervous system. Changes in HRV due to altered prefrontal cortex functioning can be predicted using the neurovisceral integration model, which suggests that prefrontal hyperactivity increases parasympathetic tone and decreases contributions from the sympathetic nervous system. Working memory (WM) tasks and transcranial direct current stimulation (tDCS) have been used independently to modulate brain activity demonstrating changes to HRV in agreement with the model. We investigated the combined effects of prefrontal tDCS and a WM task on HRV. Bifrontal tDCS was administered for 15 minutes at 2mA to 20 participants in a sham controlled, single-blind study using parallel groups. A WM task was completed by participants at three time points; pre-, during-, and post-tDCS, with resting state data collected at similar times. Frequency-domain HRV was computed for high frequency (HF; 0.15–0.4Hz) and low frequency (LF; 0.04–0.15Hz) power reflecting parasympathetic and sympathetic branch activity, respectively. Response time on the WM task, but not accuracy, improved from baseline to during-tDCS and post-tDCS with sham, but not active, stimulation. HF-HRV was significantly increased in the active tDCS group compared to sham, lasting beyond cessation of stimulation. Additionally, HF-HRV showed a task-related reduction in power during performance on the WM task. Changes in LF-HRV were moderately inversely correlated (r > 0.4) with changes in WM accuracy during and following tDCS compared to baseline levels. Stimulation of the prefrontal cortex resulted in changes to the parasympathetic branch of the nervous system in agreement with a linearly additive interpretation of effects. Sympathetic activity was not directly altered by tDCS, but was correlated with changes in WM performance. This suggests that the parasympathetic and sympathetic branches respond differentially due to similar, but distinct neural pathways. Given the ease of HRV data collection, studies of prefrontal tDCS would benefit from collection of this data as it provides unique insight into tDCS effects resulting from propagation through brain networks. Public Library of Science 2017-08-03 /pmc/articles/PMC5542548/ /pubmed/28771509 http://dx.doi.org/10.1371/journal.pone.0181833 Text en © 2017 Nikolin 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 (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Nikolin, Stevan
Boonstra, Tjeerd W.
Loo, Colleen K.
Martin, Donel
Combined effect of prefrontal transcranial direct current stimulation and a working memory task on heart rate variability
title Combined effect of prefrontal transcranial direct current stimulation and a working memory task on heart rate variability
title_full Combined effect of prefrontal transcranial direct current stimulation and a working memory task on heart rate variability
title_fullStr Combined effect of prefrontal transcranial direct current stimulation and a working memory task on heart rate variability
title_full_unstemmed Combined effect of prefrontal transcranial direct current stimulation and a working memory task on heart rate variability
title_short Combined effect of prefrontal transcranial direct current stimulation and a working memory task on heart rate variability
title_sort combined effect of prefrontal transcranial direct current stimulation and a working memory task on heart rate variability
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5542548/
https://www.ncbi.nlm.nih.gov/pubmed/28771509
http://dx.doi.org/10.1371/journal.pone.0181833
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