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Ultrasound stimulation of the motor cortex during tonic muscle contraction
Transcranial ultrasound stimulation (tUS) shows potential as a noninvasive brain stimulation (NIBS) technique, offering increased spatial precision compared to other NIBS techniques. However, its reported effects on primary motor cortex (M1) are limited. We aimed to better understand tUS effects in...
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Published in: | PloS one 2022-04, Vol.17 (4), p.e0267268-e0267268 |
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description | Transcranial ultrasound stimulation (tUS) shows potential as a noninvasive brain stimulation (NIBS) technique, offering increased spatial precision compared to other NIBS techniques. However, its reported effects on primary motor cortex (M1) are limited. We aimed to better understand tUS effects in human M1 by performing tUS of the hand area of M1 (M1hand) during tonic muscle contraction of the index finger. Stimulation during muscle contraction was chosen because of the transcranial magnetic stimulation-induced phenomenon known as cortical silent period (cSP), in which transcranial magnetic stimulation (TMS) of M1hand involuntarily suppresses voluntary motor activity. Since cSP is widely considered an inhibitory phenomenon, it presents an ideal parallel for tUS, which has often been proposed to preferentially influence inhibitory interneurons. Recording electromyography (EMG) of the first dorsal interosseous (FDI) muscle, we investigated effects on muscle activity both during and after tUS. We found no change in FDI EMG activity concurrent with tUS stimulation. Using single-pulse TMS, we found no difference in M1 excitability before versus after sparsely repetitive tUS exposure. Using acoustic simulations in models made from structural MRI of the participants that matched the experimental setups, we estimated in-brain pressures and generated an estimate of cumulative tUS exposure experienced by M1hand for each subject. We were unable to find any correlation between cumulative M1hand exposure and M1 excitability change. We also present data that suggest a TMS-induced MEP always preceded a near-threshold cSP. |
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Using single-pulse TMS, we found no difference in M1 excitability before versus after sparsely repetitive tUS exposure. Using acoustic simulations in models made from structural MRI of the participants that matched the experimental setups, we estimated in-brain pressures and generated an estimate of cumulative tUS exposure experienced by M1hand for each subject. We were unable to find any correlation between cumulative M1hand exposure and M1 excitability change. We also present data that suggest a TMS-induced MEP always preceded a near-threshold cSP.</description><identifier>ISSN: 1932-6203</identifier><identifier>EISSN: 1932-6203</identifier><identifier>DOI: 10.1371/journal.pone.0267268</identifier><identifier>PMID: 35442956</identifier><language>eng</language><publisher>United States: Public Library of Science</publisher><subject>Analysis ; Biology and Life Sciences ; Brain ; Brain research ; Cortex (motor) ; Electric Stimulation ; Electrodes ; Electromyography ; Evaluation ; Evoked Potentials, Motor - physiology ; Excitability ; Experiments ; Exposure ; Geffen, David ; Human performance ; Humans ; Interneurons ; Magnetic fields ; Magnetic resonance imaging ; Medical research ; Medicine ; Medicine and Health Sciences ; Motor activity ; Motor cortex ; Motor Cortex - physiology ; Motor evoked potentials ; Muscle contraction ; Muscle Contraction - physiology ; Muscle, Skeletal - physiology ; Muscles ; Muscular function ; Neurology ; Physical Sciences ; Research and Analysis Methods ; Skull ; Transcranial magnetic stimulation ; Transcranial Magnetic Stimulation - methods ; Ultrasonic imaging ; Ultrasonic waves ; Ultrasound</subject><ispartof>PloS one, 2022-04, Vol.17 (4), p.e0267268-e0267268</ispartof><rights>COPYRIGHT 2022 Public Library of Science</rights><rights>2022 Heimbuch et al. 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Using single-pulse TMS, we found no difference in M1 excitability before versus after sparsely repetitive tUS exposure. Using acoustic simulations in models made from structural MRI of the participants that matched the experimental setups, we estimated in-brain pressures and generated an estimate of cumulative tUS exposure experienced by M1hand for each subject. We were unable to find any correlation between cumulative M1hand exposure and M1 excitability change. 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However, its reported effects on primary motor cortex (M1) are limited. We aimed to better understand tUS effects in human M1 by performing tUS of the hand area of M1 (M1hand) during tonic muscle contraction of the index finger. Stimulation during muscle contraction was chosen because of the transcranial magnetic stimulation-induced phenomenon known as cortical silent period (cSP), in which transcranial magnetic stimulation (TMS) of M1hand involuntarily suppresses voluntary motor activity. Since cSP is widely considered an inhibitory phenomenon, it presents an ideal parallel for tUS, which has often been proposed to preferentially influence inhibitory interneurons. Recording electromyography (EMG) of the first dorsal interosseous (FDI) muscle, we investigated effects on muscle activity both during and after tUS. We found no change in FDI EMG activity concurrent with tUS stimulation. Using single-pulse TMS, we found no difference in M1 excitability before versus after sparsely repetitive tUS exposure. Using acoustic simulations in models made from structural MRI of the participants that matched the experimental setups, we estimated in-brain pressures and generated an estimate of cumulative tUS exposure experienced by M1hand for each subject. We were unable to find any correlation between cumulative M1hand exposure and M1 excitability change. We also present data that suggest a TMS-induced MEP always preceded a near-threshold cSP.</abstract><cop>United States</cop><pub>Public Library of Science</pub><pmid>35442956</pmid><doi>10.1371/journal.pone.0267268</doi><tpages>e0267268</tpages><orcidid>https://orcid.org/0000-0002-4821-7888</orcidid><orcidid>https://orcid.org/0000-0002-0035-5413</orcidid><oa>free_for_read</oa></addata></record> |
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subjects | Analysis Biology and Life Sciences Brain Brain research Cortex (motor) Electric Stimulation Electrodes Electromyography Evaluation Evoked Potentials, Motor - physiology Excitability Experiments Exposure Geffen, David Human performance Humans Interneurons Magnetic fields Magnetic resonance imaging Medical research Medicine Medicine and Health Sciences Motor activity Motor cortex Motor Cortex - physiology Motor evoked potentials Muscle contraction Muscle Contraction - physiology Muscle, Skeletal - physiology Muscles Muscular function Neurology Physical Sciences Research and Analysis Methods Skull Transcranial magnetic stimulation Transcranial Magnetic Stimulation - methods Ultrasonic imaging Ultrasonic waves Ultrasound |
title | Ultrasound stimulation of the motor cortex during tonic muscle contraction |
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