NARA Discovery
Article Details
← Back to Search Results
Journal Article

Dynamic modulations of effective brain connectivity associated with postural instability during multi-joint compound movement on compliant surface

Tim Lehmann; Anton Visser; Tim Havers; Daniel Büchel; Jochen Baumeister
Experimental Brain Research · Vol. 243, Issue 4 · 2025

Abstract

Random fluctuations in somatosensory signals affect the ability of effectively coordinating multimodal information pertaining to the postural state during movement. Therefore, this study aimed to investigate the impact of a compliant surface on cortico-cortical causal information flow during multi-joint compound movements. Fifteen healthy adults (7 female / 8 male, 25.9 ± 4.0 years) performed 5 × 20 repetitions of bodyweight squats on firm and compliant surface. Motor behavior was quantified by center of pressure (CoP) displacements, hip movement and the root mean square of the rectus femoris activity. Using source space analysis, renormalized partial directed coherence (rPDC) computed subject-level multivariate effective brain connectivity of sensorimotor nodes. Bootstrap statistics revealed significantly decreased medio-lateral CoP displacement ( p < 0.001), significantly increased velocity of medio-lateral hip motion ( p < 0.001) as well as significantly lower rectus femoris activity ( p < 0.01) in the compliant surface condition. On the cortical level, rPDC showed significantly modulated information flow in theta and beta frequencies for fronto-parietal edges ( p < 0.01) only during the concentric phase of the movement. The compliant surface led to increased difficulties controlling hip but not center of pressure motion in the medio-lateral plane. Moreover, a decreased activation of the prime movers accompanied by modulations of effective brain connectivity among fronto-central nodes may point to altered demands on sensorimotor information processing in presence of sensory noise when performing bodyweight squats on compliant surface. Further studies are needed to evaluate a potential benefit for athletic and clinical populations.

Bibliographic Information

JournalExperimental Brain Research
PublisherSpringer
Publication Date2025-04-01
Publication Year2025
Volume243
Issue4
Document TypeJournal Article
Print ISSN0014-4819
eISSN1432-1106
DOI10.1007/s00221-025-07039-2

Access Information

NARA Access Coverage1966-01-01~Current
Journal Homepagehttps://www.springer.com/journal/221
Publisher PageOpen Publisher Page
Full-text access depends on NARA's subscribed coverage and institutional access.