Atlas of optimal coil orientation and position for TMS: A computational study

Background: Transcranial magnetic stimulation (TMS) activates target brain structures in a non-invasive manner. The optimal orientation of the TMS coil for the motor cortex is well known and can be estimated using motor evoked potentials. However, there are no easily measurable responses for activat...

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Main Authors: Jose Gomez-Tames, Atsushi Hamasaka, Ilkka Laakso, Akimasa Hirata, Yoshikazu Ugawa
Format: Article
Language:English
Published: Elsevier 2018-07-01
Series:Brain Stimulation
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S1935861X18301335
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spelling doaj-ee6440b50f11474b8bb0e1725dff25982021-03-19T07:12:04ZengElsevierBrain Stimulation1935-861X2018-07-01114839848Atlas of optimal coil orientation and position for TMS: A computational studyJose Gomez-Tames0Atsushi Hamasaka1Ilkka Laakso2Akimasa Hirata3Yoshikazu Ugawa4Nagoya Institute of Technology, Department of Electrical and Mechanical Engineering, Nagoya, Aichi, 466-8555, Japan; Corresponding author.Nagoya Institute of Technology, Department of Electrical and Mechanical Engineering, Nagoya, Aichi, 466-8555, JapanAalto University, Department of Electrical Engineering and Automation, Espoo, FI-00076, FinlandNagoya Institute of Technology, Department of Electrical and Mechanical Engineering, Nagoya, Aichi, 466-8555, Japan; Corresponding author.Fukushima Medical University, Department of Neurology, School of Medicine, Fukushima, 960-1295, Japan; Aizu Chuo Hospital, Department of Neurology, Aizuwakamatsu City, Fukushima, 965-8611, JapanBackground: Transcranial magnetic stimulation (TMS) activates target brain structures in a non-invasive manner. The optimal orientation of the TMS coil for the motor cortex is well known and can be estimated using motor evoked potentials. However, there are no easily measurable responses for activation of other cortical areas and the optimal orientation for these areas is currently unknown. Objective: This study investigated the electric field strength, optimal coil orientation, and relative locations to optimally stimulate the target cortex based on computed electric field distributions. Methods: A total of 518,616 stimulation scenarios were studied using realistic head models (2401 coil locations × 12 coil angles × 18 head models). Inter-subject registration methods were used to generate an atlas of optimized TMS coil orientations on locations on the standard brain. Results: We found that the maximum electric field strength is greater in primary somatosensory cortex and primary motor cortex than in other cortical areas. Additionally, a universal optimal coil orientation applicable to most subjects is more feasible at the primary somatosensory cortex and primary motor cortex. We confirmed that optimal coil angle follows the anatomical shape of the hand motor area to realize personalized optimization of TMS. Finally, on average, the optimal coil positions for TMS on the scalp deviated 5.5 mm from the scalp points with minimum cortex-scalp distance. This deviation was minimal at the premotor cortex and primary motor cortex. Conclusion: Personalized optimal coil orientation is preferable for obtaining the most effective stimulation.http://www.sciencedirect.com/science/article/pii/S1935861X18301335Transcranial magnetic stimulationOptimization of coil orientationBrain atlasPersonalized stimulation
collection DOAJ
language English
format Article
sources DOAJ
author Jose Gomez-Tames
Atsushi Hamasaka
Ilkka Laakso
Akimasa Hirata
Yoshikazu Ugawa
spellingShingle Jose Gomez-Tames
Atsushi Hamasaka
Ilkka Laakso
Akimasa Hirata
Yoshikazu Ugawa
Atlas of optimal coil orientation and position for TMS: A computational study
Brain Stimulation
Transcranial magnetic stimulation
Optimization of coil orientation
Brain atlas
Personalized stimulation
author_facet Jose Gomez-Tames
Atsushi Hamasaka
Ilkka Laakso
Akimasa Hirata
Yoshikazu Ugawa
author_sort Jose Gomez-Tames
title Atlas of optimal coil orientation and position for TMS: A computational study
title_short Atlas of optimal coil orientation and position for TMS: A computational study
title_full Atlas of optimal coil orientation and position for TMS: A computational study
title_fullStr Atlas of optimal coil orientation and position for TMS: A computational study
title_full_unstemmed Atlas of optimal coil orientation and position for TMS: A computational study
title_sort atlas of optimal coil orientation and position for tms: a computational study
publisher Elsevier
series Brain Stimulation
issn 1935-861X
publishDate 2018-07-01
description Background: Transcranial magnetic stimulation (TMS) activates target brain structures in a non-invasive manner. The optimal orientation of the TMS coil for the motor cortex is well known and can be estimated using motor evoked potentials. However, there are no easily measurable responses for activation of other cortical areas and the optimal orientation for these areas is currently unknown. Objective: This study investigated the electric field strength, optimal coil orientation, and relative locations to optimally stimulate the target cortex based on computed electric field distributions. Methods: A total of 518,616 stimulation scenarios were studied using realistic head models (2401 coil locations × 12 coil angles × 18 head models). Inter-subject registration methods were used to generate an atlas of optimized TMS coil orientations on locations on the standard brain. Results: We found that the maximum electric field strength is greater in primary somatosensory cortex and primary motor cortex than in other cortical areas. Additionally, a universal optimal coil orientation applicable to most subjects is more feasible at the primary somatosensory cortex and primary motor cortex. We confirmed that optimal coil angle follows the anatomical shape of the hand motor area to realize personalized optimization of TMS. Finally, on average, the optimal coil positions for TMS on the scalp deviated 5.5 mm from the scalp points with minimum cortex-scalp distance. This deviation was minimal at the premotor cortex and primary motor cortex. Conclusion: Personalized optimal coil orientation is preferable for obtaining the most effective stimulation.
topic Transcranial magnetic stimulation
Optimization of coil orientation
Brain atlas
Personalized stimulation
url http://www.sciencedirect.com/science/article/pii/S1935861X18301335
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