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Combining EEG and MEG for the Reconstruction of Epileptic Activity Using a Calibrated Realistic Volume Conductor Model

To increase the reliability for the non-invasive determination of the irritative zone in presurgical epilepsy diagnosis, we introduce here a new experimental and methodological source analysis pipeline that combines the complementary information in EEG and MEG, and apply it to data from a patient, s...

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Autores principales: Aydin, Ümit, Vorwerk, Johannes, Küpper, Philipp, Heers, Marcel, Kugel, Harald, Galka, Andreas, Hamid, Laith, Wellmer, Jörg, Kellinghaus, Christoph, Rampp, Stefan, Wolters, Carsten Hermann
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3966892/
https://www.ncbi.nlm.nih.gov/pubmed/24671208
http://dx.doi.org/10.1371/journal.pone.0093154
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author Aydin, Ümit
Vorwerk, Johannes
Küpper, Philipp
Heers, Marcel
Kugel, Harald
Galka, Andreas
Hamid, Laith
Wellmer, Jörg
Kellinghaus, Christoph
Rampp, Stefan
Wolters, Carsten Hermann
author_facet Aydin, Ümit
Vorwerk, Johannes
Küpper, Philipp
Heers, Marcel
Kugel, Harald
Galka, Andreas
Hamid, Laith
Wellmer, Jörg
Kellinghaus, Christoph
Rampp, Stefan
Wolters, Carsten Hermann
author_sort Aydin, Ümit
collection PubMed
description To increase the reliability for the non-invasive determination of the irritative zone in presurgical epilepsy diagnosis, we introduce here a new experimental and methodological source analysis pipeline that combines the complementary information in EEG and MEG, and apply it to data from a patient, suffering from refractory focal epilepsy. Skull conductivity parameters in a six compartment finite element head model with brain anisotropy, constructed from individual MRI data, are estimated in a calibration procedure using somatosensory evoked potential (SEP) and field (SEF) data. These data are measured in a single run before acquisition of further runs of spontaneous epileptic activity. Our results show that even for single interictal spikes, volume conduction effects dominate over noise and need to be taken into account for accurate source analysis. While cerebrospinal fluid and brain anisotropy influence both modalities, only EEG is sensitive to skull conductivity and conductivity calibration significantly reduces the difference in especially depth localization of both modalities, emphasizing its importance for combining EEG and MEG source analysis. On the other hand, localization differences which are due to the distinct sensitivity profiles of EEG and MEG persist. In case of a moderate error in skull conductivity, combined source analysis results can still profit from the different sensitivity profiles of EEG and MEG to accurately determine location, orientation and strength of the underlying sources. On the other side, significant errors in skull modeling are reflected in EEG reconstruction errors and could reduce the goodness of fit to combined datasets. For combined EEG and MEG source analysis, we therefore recommend calibrating skull conductivity using additionally acquired SEP/SEF data.
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spelling pubmed-39668922014-03-31 Combining EEG and MEG for the Reconstruction of Epileptic Activity Using a Calibrated Realistic Volume Conductor Model Aydin, Ümit Vorwerk, Johannes Küpper, Philipp Heers, Marcel Kugel, Harald Galka, Andreas Hamid, Laith Wellmer, Jörg Kellinghaus, Christoph Rampp, Stefan Wolters, Carsten Hermann PLoS One Research Article To increase the reliability for the non-invasive determination of the irritative zone in presurgical epilepsy diagnosis, we introduce here a new experimental and methodological source analysis pipeline that combines the complementary information in EEG and MEG, and apply it to data from a patient, suffering from refractory focal epilepsy. Skull conductivity parameters in a six compartment finite element head model with brain anisotropy, constructed from individual MRI data, are estimated in a calibration procedure using somatosensory evoked potential (SEP) and field (SEF) data. These data are measured in a single run before acquisition of further runs of spontaneous epileptic activity. Our results show that even for single interictal spikes, volume conduction effects dominate over noise and need to be taken into account for accurate source analysis. While cerebrospinal fluid and brain anisotropy influence both modalities, only EEG is sensitive to skull conductivity and conductivity calibration significantly reduces the difference in especially depth localization of both modalities, emphasizing its importance for combining EEG and MEG source analysis. On the other hand, localization differences which are due to the distinct sensitivity profiles of EEG and MEG persist. In case of a moderate error in skull conductivity, combined source analysis results can still profit from the different sensitivity profiles of EEG and MEG to accurately determine location, orientation and strength of the underlying sources. On the other side, significant errors in skull modeling are reflected in EEG reconstruction errors and could reduce the goodness of fit to combined datasets. For combined EEG and MEG source analysis, we therefore recommend calibrating skull conductivity using additionally acquired SEP/SEF data. Public Library of Science 2014-03-26 /pmc/articles/PMC3966892/ /pubmed/24671208 http://dx.doi.org/10.1371/journal.pone.0093154 Text en © 2014 Aydin et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Aydin, Ümit
Vorwerk, Johannes
Küpper, Philipp
Heers, Marcel
Kugel, Harald
Galka, Andreas
Hamid, Laith
Wellmer, Jörg
Kellinghaus, Christoph
Rampp, Stefan
Wolters, Carsten Hermann
Combining EEG and MEG for the Reconstruction of Epileptic Activity Using a Calibrated Realistic Volume Conductor Model
title Combining EEG and MEG for the Reconstruction of Epileptic Activity Using a Calibrated Realistic Volume Conductor Model
title_full Combining EEG and MEG for the Reconstruction of Epileptic Activity Using a Calibrated Realistic Volume Conductor Model
title_fullStr Combining EEG and MEG for the Reconstruction of Epileptic Activity Using a Calibrated Realistic Volume Conductor Model
title_full_unstemmed Combining EEG and MEG for the Reconstruction of Epileptic Activity Using a Calibrated Realistic Volume Conductor Model
title_short Combining EEG and MEG for the Reconstruction of Epileptic Activity Using a Calibrated Realistic Volume Conductor Model
title_sort combining eeg and meg for the reconstruction of epileptic activity using a calibrated realistic volume conductor model
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3966892/
https://www.ncbi.nlm.nih.gov/pubmed/24671208
http://dx.doi.org/10.1371/journal.pone.0093154
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