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Multi-locus transcranial magnetic stimulation system for electronically targeted brain stimulation

BACKGROUND: Transcranial magnetic stimulation (TMS) allows non-invasive stimulation of the cortex. In multi-locus TMS (mTMS), the stimulating electric field (E-field) is controlled electronically without coil movement by adjusting currents in the coils of a transducer. OBJECTIVE: To develop an mTMS...

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Autores principales: Nieminen, Jaakko O., Sinisalo, Heikki, Souza, Victor H., Malmi, Mikko, Yuryev, Mikhail, Tervo, Aino E., Stenroos, Matti, Milardovich, Diego, Korhonen, Juuso T., Koponen, Lari M., Ilmoniemi, Risto J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8807400/
https://www.ncbi.nlm.nih.gov/pubmed/34818580
http://dx.doi.org/10.1016/j.brs.2021.11.014
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author Nieminen, Jaakko O.
Sinisalo, Heikki
Souza, Victor H.
Malmi, Mikko
Yuryev, Mikhail
Tervo, Aino E.
Stenroos, Matti
Milardovich, Diego
Korhonen, Juuso T.
Koponen, Lari M.
Ilmoniemi, Risto J.
author_facet Nieminen, Jaakko O.
Sinisalo, Heikki
Souza, Victor H.
Malmi, Mikko
Yuryev, Mikhail
Tervo, Aino E.
Stenroos, Matti
Milardovich, Diego
Korhonen, Juuso T.
Koponen, Lari M.
Ilmoniemi, Risto J.
author_sort Nieminen, Jaakko O.
collection PubMed
description BACKGROUND: Transcranial magnetic stimulation (TMS) allows non-invasive stimulation of the cortex. In multi-locus TMS (mTMS), the stimulating electric field (E-field) is controlled electronically without coil movement by adjusting currents in the coils of a transducer. OBJECTIVE: To develop an mTMS system that allows adjusting the location and orientation of the E-field maximum within a cortical region. METHODS: We designed and manufactured a planar 5-coil mTMS transducer to allow controlling the maximum of the induced E-field within a cortical region approximately 30 mm in diameter. We developed electronics with a design consisting of independently controlled H-bridge circuits to drive up to six TMS coils. To control the hardware, we programmed software that runs on a field-programmable gate array and a computer. To induce the desired E-field in the cortex, we developed an optimization method to calculate the currents needed in the coils. We characterized the mTMS system and conducted a proof-of-concept motor-mapping experiment on a healthy volunteer. In the motor mapping, we kept the transducer placement fixed while electronically shifting the E-field maximum on the precentral gyrus and measuring electromyography from the contralateral hand. RESULTS: The transducer consists of an oval coil, two figure-of-eight coils, and two four-leaf-clover coils stacked on top of each other. The technical characterization indicated that the mTMS system performs as designed. The measured motor evoked potential amplitudes varied consistently as a function of the location of the E-field maximum. CONCLUSION: The developed mTMS system enables electronically targeted brain stimulation within a cortical region.
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spelling pubmed-88074002022-02-07 Multi-locus transcranial magnetic stimulation system for electronically targeted brain stimulation Nieminen, Jaakko O. Sinisalo, Heikki Souza, Victor H. Malmi, Mikko Yuryev, Mikhail Tervo, Aino E. Stenroos, Matti Milardovich, Diego Korhonen, Juuso T. Koponen, Lari M. Ilmoniemi, Risto J. Brain Stimul Article BACKGROUND: Transcranial magnetic stimulation (TMS) allows non-invasive stimulation of the cortex. In multi-locus TMS (mTMS), the stimulating electric field (E-field) is controlled electronically without coil movement by adjusting currents in the coils of a transducer. OBJECTIVE: To develop an mTMS system that allows adjusting the location and orientation of the E-field maximum within a cortical region. METHODS: We designed and manufactured a planar 5-coil mTMS transducer to allow controlling the maximum of the induced E-field within a cortical region approximately 30 mm in diameter. We developed electronics with a design consisting of independently controlled H-bridge circuits to drive up to six TMS coils. To control the hardware, we programmed software that runs on a field-programmable gate array and a computer. To induce the desired E-field in the cortex, we developed an optimization method to calculate the currents needed in the coils. We characterized the mTMS system and conducted a proof-of-concept motor-mapping experiment on a healthy volunteer. In the motor mapping, we kept the transducer placement fixed while electronically shifting the E-field maximum on the precentral gyrus and measuring electromyography from the contralateral hand. RESULTS: The transducer consists of an oval coil, two figure-of-eight coils, and two four-leaf-clover coils stacked on top of each other. The technical characterization indicated that the mTMS system performs as designed. The measured motor evoked potential amplitudes varied consistently as a function of the location of the E-field maximum. CONCLUSION: The developed mTMS system enables electronically targeted brain stimulation within a cortical region. Elsevier 2022 /pmc/articles/PMC8807400/ /pubmed/34818580 http://dx.doi.org/10.1016/j.brs.2021.11.014 Text en © 2021 The Author(s) https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Nieminen, Jaakko O.
Sinisalo, Heikki
Souza, Victor H.
Malmi, Mikko
Yuryev, Mikhail
Tervo, Aino E.
Stenroos, Matti
Milardovich, Diego
Korhonen, Juuso T.
Koponen, Lari M.
Ilmoniemi, Risto J.
Multi-locus transcranial magnetic stimulation system for electronically targeted brain stimulation
title Multi-locus transcranial magnetic stimulation system for electronically targeted brain stimulation
title_full Multi-locus transcranial magnetic stimulation system for electronically targeted brain stimulation
title_fullStr Multi-locus transcranial magnetic stimulation system for electronically targeted brain stimulation
title_full_unstemmed Multi-locus transcranial magnetic stimulation system for electronically targeted brain stimulation
title_short Multi-locus transcranial magnetic stimulation system for electronically targeted brain stimulation
title_sort multi-locus transcranial magnetic stimulation system for electronically targeted brain stimulation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8807400/
https://www.ncbi.nlm.nih.gov/pubmed/34818580
http://dx.doi.org/10.1016/j.brs.2021.11.014
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