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Published in: Brain Topography 4/2017

Open Access 01-07-2017 | Original Paper

Cortical Correlates of Human Balance Control

Authors: Andreas Mierau, Britta Pester, Thorben Hülsdünker, Karin Schiecke, Heiko K. Strüder, Herbert Witte

Published in: Brain Topography | Issue 4/2017

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Abstract

Balance control is a fundamental component of human every day motor activities such as standing or walking, and its impairment is associated with an increased risk of falling. However, in humans the exact neurobiological mechanisms underlying balance control are still unclear. Specifically, although previous studies have identified a number of cortical regions that become significantly activated during real or imagined balancing, the interactions within and between the relevant cortical regions remain to be investigated. The working hypothesis of this study is that cortical networks contribute to an optimization of balance control, and that this contribution can be revealed by partial directed coherence—a time-variant, frequency-selective and directed functional connectivity analysis tool. Electroencephalographic activity was recorded in 37 subjects during single-leg balancing on a stable as well as an unstable surface. Results of this study show that in the transition from balancing on a stable surface to an unstable surface, two topographically delimitable connectivity networks (weighted directed networks) are established; one associated with the alpha and one with the theta frequency band. The theta network sequence can be described as a set of subnetworks (modules) comprising the frontal, central and parietal cortex with individual temporal and spatial developments within and between those modules. In the alpha network, the occipital electrodes O1 and O2 act as a source, and the interactions propagate predominantly in the directions from occipital to parietal and to centro-parietal areas. These important findings indicate that balance control is supported by at least two functional cortical networks.
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Metadata
Title
Cortical Correlates of Human Balance Control
Authors
Andreas Mierau
Britta Pester
Thorben Hülsdünker
Karin Schiecke
Heiko K. Strüder
Herbert Witte
Publication date
01-07-2017
Publisher
Springer US
Published in
Brain Topography / Issue 4/2017
Print ISSN: 0896-0267
Electronic ISSN: 1573-6792
DOI
https://doi.org/10.1007/s10548-017-0567-x

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