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Research Articles, Behavioral/Cognitive

Voluntary motor command release coincides with restricted sensorimotor beta rhythm phases

Sara J Hussain, Mary K Vollmer, Iñaki Iturrate and Romain Quentin
Journal of Neuroscience 14 June 2022, JN-RM-1495-21; DOI: https://doi.org/10.1523/JNEUROSCI.1495-21.2022
Sara J Hussain
1Movement and Cognitive Rehabilitation Science Program, Department of Kinesiology and Health Education, University of Texas at Austin. Austin, TX, USA, 78712
2Human Cortical Physiology and Neurorehabilitation Section, National Institute of Neurological Disorders and Stroke. Bethesda, MD, USA, 20892
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Mary K Vollmer
2Human Cortical Physiology and Neurorehabilitation Section, National Institute of Neurological Disorders and Stroke. Bethesda, MD, USA, 20892
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Iñaki Iturrate
2Human Cortical Physiology and Neurorehabilitation Section, National Institute of Neurological Disorders and Stroke. Bethesda, MD, USA, 20892
3Amazon EU, Spain
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Romain Quentin
2Human Cortical Physiology and Neurorehabilitation Section, National Institute of Neurological Disorders and Stroke. Bethesda, MD, USA, 20892
4MEL group, EDUWELL team, Lyon Neuroscience Research Center (CRNL), INSERM U1028, CRNS UMR5292, Université Claude Bernard Lyon 1, Lyon, France.
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Abstract

Sensory perception and memory are enhanced during restricted phases of ongoing brain rhythms, but whether voluntary movement is constrained by brain rhythm phase is not known. Voluntary movement requires motor commands to be released from motor cortex (M1) and transmitted to spinal motoneurons and effector muscles. Here, we tested the hypothesis that motor commands are preferentially released from M1 during circumscribed phases of ongoing sensorimotor rhythms. Healthy humans of both sexes performed a self-paced finger movement task during electroencephalography (EEG) and electromyography (EMG) recordings. We first estimated the time of motor command release preceding each finger movement by subtracting individually-measured corticomuscular transmission latencies from EMG-determined movement onset times. Then, we determined the phase of ipsilateral and contralateral sensorimotor mu (8-12 Hz) and beta (13-35 Hz) rhythms during release of each motor command. We report that motor commands were most often released between 120° and 140° along the contralateral beta cycle but were released uniformly along the contralateral mu cycle. Motor commands were also released uniformly along ipsilateral mu and beta cycles. Results demonstrate that motor command release coincides with restricted phases of the contralateral sensorimotor beta rhythm, suggesting that sensorimotor beta rhythm phase may sculpt the timing of voluntary human movement.

SIGNIFICANCE STATEMENT:

Perceptual and cognitive function is optimal during specific brain rhythm phases. Although brain rhythm phase influences motor cortical neuronal activity and communication between the motor cortex and spinal cord, its role in voluntary movement is poorly understood. Here, we show that the motor commands needed to produce voluntary movements are preferentially released from the motor cortex during contralateral sensorimotor beta rhythm phases. Our findings are consistent with the notion that sensorimotor rhythm phase influences the timing of voluntary human movement.

Footnotes

  • The authors declare no competing financial interests.

  • This work was supported by the Intramural Research Program of the National Institute of Neurological Disorders and Stroke (NINDS). SJH and RQ were supported by NINDS Intramural Competitive Fellowships. RQ was supported by the ATIP-AVENIR program. Data included in this publication were acquired at the Human Cortical Physiology and Neurorehabilitation Section (directed by Leonardo Cohen) at NINDS.

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Voluntary motor command release coincides with restricted sensorimotor beta rhythm phases
Sara J Hussain, Mary K Vollmer, Iñaki Iturrate, Romain Quentin
Journal of Neuroscience 14 June 2022, JN-RM-1495-21; DOI: 10.1523/JNEUROSCI.1495-21.2022

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Voluntary motor command release coincides with restricted sensorimotor beta rhythm phases
Sara J Hussain, Mary K Vollmer, Iñaki Iturrate, Romain Quentin
Journal of Neuroscience 14 June 2022, JN-RM-1495-21; DOI: 10.1523/JNEUROSCI.1495-21.2022
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