Cargando…

Rapid computation of TMS-induced E-fields using a dipole-based magnetic stimulation profile approach

BACKGROUND: TMS neuronavigation with on-line display of the induced electric field (E-field) has the potential to improve quantitative targeting and dosing of stimulation, but present commercially available solutions are limited by simplified approximations. OBJECTIVE: Developing a near real-time me...

Descripción completa

Detalles Bibliográficos
Autores principales: Daneshzand, Mohammad, Makarov, Sergey N., de Lara, Lucia I. Navarro, Guerin, Bastien, McNab, Jennifer, Rosen, Bruce R., Hämäläinen, Matti S., Raij, Tommi, Nummenmaa, Aapo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8353625/
https://www.ncbi.nlm.nih.gov/pubmed/33940151
http://dx.doi.org/10.1016/j.neuroimage.2021.118097
_version_ 1783736442440122368
author Daneshzand, Mohammad
Makarov, Sergey N.
de Lara, Lucia I. Navarro
Guerin, Bastien
McNab, Jennifer
Rosen, Bruce R.
Hämäläinen, Matti S.
Raij, Tommi
Nummenmaa, Aapo
author_facet Daneshzand, Mohammad
Makarov, Sergey N.
de Lara, Lucia I. Navarro
Guerin, Bastien
McNab, Jennifer
Rosen, Bruce R.
Hämäläinen, Matti S.
Raij, Tommi
Nummenmaa, Aapo
author_sort Daneshzand, Mohammad
collection PubMed
description BACKGROUND: TMS neuronavigation with on-line display of the induced electric field (E-field) has the potential to improve quantitative targeting and dosing of stimulation, but present commercially available solutions are limited by simplified approximations. OBJECTIVE: Developing a near real-time method for accurate approximation of TMS induced E-fields with subject-specific high-resolution surface-based head models that can be utilized for TMS navigation. METHODS: Magnetic dipoles are placed on a closed surface enclosing an MRI-based head model of the subject to define a set of basis functions for the incident and total E-fields that define the subject’s Magnetic Stimulation Profile (MSP). The near real-time speed is achieved by recognizing that the total E-field of the coil only depends on the incident E-field and the conductivity boundary geometry. The total E-field for any coil position can be obtained by matching the incident field of the stationary dipole basis set with the incident E-field of the moving coil and applying the same basis coefficients to the total E-field basis functions. RESULTS: Comparison of the MSP-based approximation with an established TMS solver shows great agreement in the E-field amplitude (relative maximum error around 5%) and the spatial distribution patterns (correlation > 98%). Computation of the E-field took ~100 ms on a cortical surface mesh with 120k facets. CONCLUSION: The numerical accuracy and speed of the MSP approximation method make it well suited for a wide range of computational tasks including interactive planning, targeting, dosing, and visualization of the intracranial E-fields for near real-time guidance of coil positioning.
format Online
Article
Text
id pubmed-8353625
institution National Center for Biotechnology Information
language English
publishDate 2021
record_format MEDLINE/PubMed
spelling pubmed-83536252021-08-15 Rapid computation of TMS-induced E-fields using a dipole-based magnetic stimulation profile approach Daneshzand, Mohammad Makarov, Sergey N. de Lara, Lucia I. Navarro Guerin, Bastien McNab, Jennifer Rosen, Bruce R. Hämäläinen, Matti S. Raij, Tommi Nummenmaa, Aapo Neuroimage Article BACKGROUND: TMS neuronavigation with on-line display of the induced electric field (E-field) has the potential to improve quantitative targeting and dosing of stimulation, but present commercially available solutions are limited by simplified approximations. OBJECTIVE: Developing a near real-time method for accurate approximation of TMS induced E-fields with subject-specific high-resolution surface-based head models that can be utilized for TMS navigation. METHODS: Magnetic dipoles are placed on a closed surface enclosing an MRI-based head model of the subject to define a set of basis functions for the incident and total E-fields that define the subject’s Magnetic Stimulation Profile (MSP). The near real-time speed is achieved by recognizing that the total E-field of the coil only depends on the incident E-field and the conductivity boundary geometry. The total E-field for any coil position can be obtained by matching the incident field of the stationary dipole basis set with the incident E-field of the moving coil and applying the same basis coefficients to the total E-field basis functions. RESULTS: Comparison of the MSP-based approximation with an established TMS solver shows great agreement in the E-field amplitude (relative maximum error around 5%) and the spatial distribution patterns (correlation > 98%). Computation of the E-field took ~100 ms on a cortical surface mesh with 120k facets. CONCLUSION: The numerical accuracy and speed of the MSP approximation method make it well suited for a wide range of computational tasks including interactive planning, targeting, dosing, and visualization of the intracranial E-fields for near real-time guidance of coil positioning. 2021-04-30 2021-08-15 /pmc/articles/PMC8353625/ /pubmed/33940151 http://dx.doi.org/10.1016/j.neuroimage.2021.118097 Text en 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/ (https://creativecommons.org/licenses/by-nc-nd/4.0/) )
spellingShingle Article
Daneshzand, Mohammad
Makarov, Sergey N.
de Lara, Lucia I. Navarro
Guerin, Bastien
McNab, Jennifer
Rosen, Bruce R.
Hämäläinen, Matti S.
Raij, Tommi
Nummenmaa, Aapo
Rapid computation of TMS-induced E-fields using a dipole-based magnetic stimulation profile approach
title Rapid computation of TMS-induced E-fields using a dipole-based magnetic stimulation profile approach
title_full Rapid computation of TMS-induced E-fields using a dipole-based magnetic stimulation profile approach
title_fullStr Rapid computation of TMS-induced E-fields using a dipole-based magnetic stimulation profile approach
title_full_unstemmed Rapid computation of TMS-induced E-fields using a dipole-based magnetic stimulation profile approach
title_short Rapid computation of TMS-induced E-fields using a dipole-based magnetic stimulation profile approach
title_sort rapid computation of tms-induced e-fields using a dipole-based magnetic stimulation profile approach
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8353625/
https://www.ncbi.nlm.nih.gov/pubmed/33940151
http://dx.doi.org/10.1016/j.neuroimage.2021.118097
work_keys_str_mv AT daneshzandmohammad rapidcomputationoftmsinducedefieldsusingadipolebasedmagneticstimulationprofileapproach
AT makarovsergeyn rapidcomputationoftmsinducedefieldsusingadipolebasedmagneticstimulationprofileapproach
AT delaraluciainavarro rapidcomputationoftmsinducedefieldsusingadipolebasedmagneticstimulationprofileapproach
AT guerinbastien rapidcomputationoftmsinducedefieldsusingadipolebasedmagneticstimulationprofileapproach
AT mcnabjennifer rapidcomputationoftmsinducedefieldsusingadipolebasedmagneticstimulationprofileapproach
AT rosenbrucer rapidcomputationoftmsinducedefieldsusingadipolebasedmagneticstimulationprofileapproach
AT hamalainenmattis rapidcomputationoftmsinducedefieldsusingadipolebasedmagneticstimulationprofileapproach
AT raijtommi rapidcomputationoftmsinducedefieldsusingadipolebasedmagneticstimulationprofileapproach
AT nummenmaaaapo rapidcomputationoftmsinducedefieldsusingadipolebasedmagneticstimulationprofileapproach