4.5 Article

Case Study: Intra- and Interpersonal Coherence of Muscle and Brain Activity of Two Coupled Persons during Pushing and Holding Isometric Muscle Action

期刊

BRAIN SCIENCES
卷 12, 期 6, 页码 -

出版社

MDPI
DOI: 10.3390/brainsci12060703

关键词

interpersonal muscle action; wavelet coherence; inter-brain synchronization; inter-muscle-brain synchronization; electroencephalography (EEG); mechanomyography (MMG); holding isometric muscle action (HIMA); pushing isometric muscle action (PIMA)

资金

  1. Deutsche Forschungsgemeinschaft (German Research Foundation)
  2. Open Access Publication Fund of Potsdam University

向作者/读者索取更多资源

This study investigated the presence of inter-brain synchronization during coupled muscle action and found that there was higher coherence in intra-muscle, intra-brain, and inter-muscle-brain activity in real pairs compared to random pairs. Furthermore, interpersonal muscle-brain synchronization was higher than intrapersonal synchronization, and HIMA showed more complex control strategies than PIMA.
Inter-brain synchronization is primarily investigated during social interactions but had not been examined during coupled muscle action between two persons until now. It was previously shown that mechanical muscle oscillations can develop coherent behavior between two isometrically interacting persons. This case study investigated if inter-brain synchronization appears thereby, and if differences of inter- and intrapersonal muscle and brain coherence exist regarding two different types of isometric muscle action. Electroencephalography (EEG) and mechanomyography/mechanotendography (MMG/MTG) of right elbow extensors were recorded during six fatiguing trials of two coupled isometrically interacting participants (70% MVIC). One partner performed holding and one pushing isometric muscle action (HIMA/PIMA; tasks changed). The wavelet coherence of all signals (EEG, MMG/MTG, force, ACC) were analyzed intra- and interpersonally. The five longest coherence patches in 8-15 Hz and their weighted frequency were compared between real vs. random pairs and between HIMA vs. PIMA. Real vs. random pairs showed significantly higher coherence for intra-muscle, intra-brain, and inter-muscle-brain activity (p < 0.001 to 0.019). Inter-brain coherence was significantly higher for real vs. random pairs for EEG of right and central areas and for sub-regions of EEG left (p = 0.002 to 0.025). Interpersonal muscle-brain synchronization was significantly higher than intrapersonal one, whereby it was significantly higher for HIMA vs. PIMA. These preliminary findings indicate that inter-brain synchronization can arise during muscular interaction. It is hypothesized both partners merge into one oscillating neuromuscular system. The results reinforce the hypothesis that HIMA is characterized by more complex control strategies than PIMA. The pilot study suggests investigating the topic further to verify these results on a larger sample size. Findings could contribute to the basic understanding of motor control and is relevant for functional diagnostics such as the manual muscle test which is applied in several disciplines, e.g., neurology, physiotherapy.

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