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Normative brain mapping of interictal intracranial EEG to localize epileptogenic tissue

The identification of abnormal electrographic activity is important in a wide range of neurological disorders, including epilepsy for localizing epileptogenic tissue. However, this identification may be challenging during non-seizure (interictal) periods, especially if abnormalities are subtle compa...

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Autores principales: Taylor, Peter N, Papasavvas, Christoforos A, Owen, Thomas W, Schroeder, Gabrielle M, Hutchings, Frances E, Chowdhury, Fahmida A, Diehl, Beate, Duncan, John S, McEvoy, Andrew W, Miserocchi, Anna, de Tisi, Jane, Vos, Sjoerd B, Walker, Matthew C, Wang, Yujiang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9050535/
https://www.ncbi.nlm.nih.gov/pubmed/35075485
http://dx.doi.org/10.1093/brain/awab380
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author Taylor, Peter N
Papasavvas, Christoforos A
Owen, Thomas W
Schroeder, Gabrielle M
Hutchings, Frances E
Chowdhury, Fahmida A
Diehl, Beate
Duncan, John S
McEvoy, Andrew W
Miserocchi, Anna
de Tisi, Jane
Vos, Sjoerd B
Walker, Matthew C
Wang, Yujiang
author_facet Taylor, Peter N
Papasavvas, Christoforos A
Owen, Thomas W
Schroeder, Gabrielle M
Hutchings, Frances E
Chowdhury, Fahmida A
Diehl, Beate
Duncan, John S
McEvoy, Andrew W
Miserocchi, Anna
de Tisi, Jane
Vos, Sjoerd B
Walker, Matthew C
Wang, Yujiang
author_sort Taylor, Peter N
collection PubMed
description The identification of abnormal electrographic activity is important in a wide range of neurological disorders, including epilepsy for localizing epileptogenic tissue. However, this identification may be challenging during non-seizure (interictal) periods, especially if abnormalities are subtle compared to the repertoire of possible healthy brain dynamics. Here, we investigate if such interictal abnormalities become more salient by quantitatively accounting for the range of healthy brain dynamics in a location-specific manner. To this end, we constructed a normative map of brain dynamics, in terms of relative band power, from interictal intracranial recordings from 234 participants (21 598 electrode contacts). We then compared interictal recordings from 62 patients with epilepsy to the normative map to identify abnormal regions. We proposed that if the most abnormal regions were spared by surgery, then patients would be more likely to experience continued seizures postoperatively. We first confirmed that the spatial variations of band power in the normative map across brain regions were consistent with healthy variations reported in the literature. Second, when accounting for the normative variations, regions that were spared by surgery were more abnormal than those resected only in patients with persistent postoperative seizures (t = −3.6, P = 0.0003), confirming our hypothesis. Third, we found that this effect discriminated patient outcomes (area under curve 0.75 P = 0.0003). Normative mapping is a well-established practice in neuroscientific research. Our study suggests that this approach is feasible to detect interictal abnormalities in intracranial EEG, and of potential clinical value to identify pathological tissue in epilepsy. Finally, we make our normative intracranial map publicly available to facilitate future investigations in epilepsy and beyond.
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spelling pubmed-90505352022-04-29 Normative brain mapping of interictal intracranial EEG to localize epileptogenic tissue Taylor, Peter N Papasavvas, Christoforos A Owen, Thomas W Schroeder, Gabrielle M Hutchings, Frances E Chowdhury, Fahmida A Diehl, Beate Duncan, John S McEvoy, Andrew W Miserocchi, Anna de Tisi, Jane Vos, Sjoerd B Walker, Matthew C Wang, Yujiang Brain Original Article The identification of abnormal electrographic activity is important in a wide range of neurological disorders, including epilepsy for localizing epileptogenic tissue. However, this identification may be challenging during non-seizure (interictal) periods, especially if abnormalities are subtle compared to the repertoire of possible healthy brain dynamics. Here, we investigate if such interictal abnormalities become more salient by quantitatively accounting for the range of healthy brain dynamics in a location-specific manner. To this end, we constructed a normative map of brain dynamics, in terms of relative band power, from interictal intracranial recordings from 234 participants (21 598 electrode contacts). We then compared interictal recordings from 62 patients with epilepsy to the normative map to identify abnormal regions. We proposed that if the most abnormal regions were spared by surgery, then patients would be more likely to experience continued seizures postoperatively. We first confirmed that the spatial variations of band power in the normative map across brain regions were consistent with healthy variations reported in the literature. Second, when accounting for the normative variations, regions that were spared by surgery were more abnormal than those resected only in patients with persistent postoperative seizures (t = −3.6, P = 0.0003), confirming our hypothesis. Third, we found that this effect discriminated patient outcomes (area under curve 0.75 P = 0.0003). Normative mapping is a well-established practice in neuroscientific research. Our study suggests that this approach is feasible to detect interictal abnormalities in intracranial EEG, and of potential clinical value to identify pathological tissue in epilepsy. Finally, we make our normative intracranial map publicly available to facilitate future investigations in epilepsy and beyond. Oxford University Press 2022-01-24 /pmc/articles/PMC9050535/ /pubmed/35075485 http://dx.doi.org/10.1093/brain/awab380 Text en © The Author(s) (2022). Published by Oxford University Press on behalf of the Guarantors of Brain. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Article
Taylor, Peter N
Papasavvas, Christoforos A
Owen, Thomas W
Schroeder, Gabrielle M
Hutchings, Frances E
Chowdhury, Fahmida A
Diehl, Beate
Duncan, John S
McEvoy, Andrew W
Miserocchi, Anna
de Tisi, Jane
Vos, Sjoerd B
Walker, Matthew C
Wang, Yujiang
Normative brain mapping of interictal intracranial EEG to localize epileptogenic tissue
title Normative brain mapping of interictal intracranial EEG to localize epileptogenic tissue
title_full Normative brain mapping of interictal intracranial EEG to localize epileptogenic tissue
title_fullStr Normative brain mapping of interictal intracranial EEG to localize epileptogenic tissue
title_full_unstemmed Normative brain mapping of interictal intracranial EEG to localize epileptogenic tissue
title_short Normative brain mapping of interictal intracranial EEG to localize epileptogenic tissue
title_sort normative brain mapping of interictal intracranial eeg to localize epileptogenic tissue
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9050535/
https://www.ncbi.nlm.nih.gov/pubmed/35075485
http://dx.doi.org/10.1093/brain/awab380
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