Study2022

Cortical mu rhythms during action and passive music listening

Ross JM, Comstock DC, Iversen JR, Makeig S, Balasubramaniam R

Journal of neurophysiology · 26 citations

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Mechanisms only

Neutral facts our review recorded about how this study was done. They describe method, never whether we like the result.

How it was studied

Design
In vitro/mechanistic study (classified by our AI screen)
Studied in
People
Main outcome
Mechanisms only

Who paid for it

Funding
Independent funding
Government
National Science Foundation
Government
U.S. Department of Veterans Affairs
University or hospital
University of California
Grants
National Science Foundation (1460633); National Science Foundation (1460885)

Based on 3 listed funder(s).

Publication

Published
2021-12-22 · J Neurophysiol · vol. 127 · issue 1 · pp. 213–224
Publisher
American Physiological Society
Cited
33 citations · more than 87% of similar papers · 2.1× the field average
References
71 works
Access
Open access (repository copy)
Research areas
Neuroscience and Music Perception · EEG and Brain-Computer Interfaces · Neural dynamics and brain function
Keywords
Psychology, Rhythm, Premotor cortex, Movement (music), Neuroscience, Motor imagery, Communication, Active listening, Mirror neuron, Primary motor cortex, Motor cortex, Electroencephalography, Cognitive psychology, Stimulation, Brain–computer interface, Physics
MeSH
foot, hand, motor cortex, humans, ubiquitin-protein ligases, drosophila proteins, electroencephalography, motor activity, auditory perception, music, adult, female, male, young adult, brain waves

5 authors

From US

  • Jessica Marie Ross · correspondingBeth Israel Deaconess Medical Center; Harvard University; Mental Illness Research, Education and Clinical Centers; Berenson Allen Center for Noninvasive Brain Stimulation; Stanford Medicine; Stanford University
  • Daniel C. ComstockUniversity of California, Merced
  • John Rehner IversenUniversity of California San Diego; Swartz Center for Computational Neuroscience
  • Scott MakeigUniversity of California San Diego; Swartz Center for Computational Neuroscience
  • Ramesh BalasubramaniamUniversity of California, Merced

Abstract

Brain systems supporting body movement are active during music listening in the absence of overt movement. This covert motor activity is not well understood, but some theories propose a role in auditory timing prediction facilitated by motor simulation. One question is how music-related covert motor activity relates to motor activity during overt movement. We address this question using scalp electroencephalogram by measuring mu rhythms-cortical field phenomena associated with the somatomotor system that appear over sensorimotor cortex. Lateralized mu enhancement over hand sensorimotor cortex during/just before foot movement in foot versus hand movement paradigms is thought to reflect hand movement inhibition during current/prospective movement of another effector. Behavior of mu during music listening with movement suppressed has yet to be determined. We recorded 32-channel EEG (n = 17) during silence without movement, overt movement (foot/hand), and music listening without movement. Using an independent component analysis-based source equivalent dipole clustering technique, we identified three mu-related clusters, localized to left primary motor and right and midline premotor cortices. Right foot tapping was accompanied by mu enhancement in the left lateral source cluster, replicating previous work. Music listening was accompanied by similar mu enhancement in the left, as well as midline, clusters. We are the first, to our knowledge, to report, and also to source-resolve, music-related mu modulation in the absence of overt movements. Covert music-related motor activity has been shown to play a role in beat perception (Ross JM, Iversen JR, Balasubramaniam R. Neurocase 22: 558-565, 2016). Our current results show enhancement in somatotopically organized mu, supporting overt motor inhibition during beat perception.NEW & NOTEWORTHY We are the first to report music-related mu enhancement in the absence of overt movements and the first to source-resolve mu activity during music listening. We suggest that music-related mu modulation reflects overt motor inhibition during passive music listening. This work is relevant for the development of theories relating to the involvement of covert motor system activity for predictive beat perception.

Abstract via Europe PMC. Copyright remains with the authors or publisher.

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