bioRxiv · 10.1101/2023.02.02.526912
Low-dimensional dynamics of brain-muscle networks during gait
Abstract
Walking is a complex motor activity that requires coordinated interactions between sensory and motor systems. We used mobile EEG and EMG to investigate the brain-muscle networks involved in gait control during overground walking in young, older and individuals with Parkinsons Disease. Dynamic interactions between the sensorimotor cortices and eight leg muscles within a gait cycle were assessed using multivariate analysis. We identified three distinct brain-muscle networks during a gait cycle. These networks include a bilateral network, a left-lateralised network activated during the left swing phase, and a right-lateralised network active during right swing. The trajectories of these networks are contracted in older adults, indicating a reduction in neuromuscular connectivity with age. Individuals with impaired tactile sensitivity of the foot showed a selective enhancement of the bilateral network, possibly reflecting a compensation strategy to maintain gait stability. These findings provide a parsimonious description of interindividual differences in neuromuscular connectivity during gait. TeaserDynamic network analysis shows how brain-muscle connectivity during gait varies with age and somatosensory function.
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Roeder, L., Breakspear, M., Kerr, G. K., Boonstra, T. W.. 2023-02-03. Low-dimensional dynamics of brain-muscle networks during gait. https://doi.org/10.1101/2023.02.02.526912
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