Cargando…

A Blueprint for Real-Time Functional Mapping via Human Intracranial Recordings

BACKGROUND: The surgical treatment of patients with intractable epilepsy is preceded by a pre-surgical evaluation period during which intracranial EEG recordings are performed to identify the epileptogenic network and provide a functional map of eloquent cerebral areas that need to be spared to mini...

Descripción completa

Detalles Bibliográficos
Autores principales: Lachaux, Jean-Philippe, Jerbi, Karim, Bertrand, Olivier, Minotti, Lorella, Hoffmann, Dominique, Schoendorff, Benjamin, Kahane, Philippe
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2007
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2040217/
https://www.ncbi.nlm.nih.gov/pubmed/17971857
http://dx.doi.org/10.1371/journal.pone.0001094
_version_ 1782137083681308672
author Lachaux, Jean-Philippe
Jerbi, Karim
Bertrand, Olivier
Minotti, Lorella
Hoffmann, Dominique
Schoendorff, Benjamin
Kahane, Philippe
author_facet Lachaux, Jean-Philippe
Jerbi, Karim
Bertrand, Olivier
Minotti, Lorella
Hoffmann, Dominique
Schoendorff, Benjamin
Kahane, Philippe
author_sort Lachaux, Jean-Philippe
collection PubMed
description BACKGROUND: The surgical treatment of patients with intractable epilepsy is preceded by a pre-surgical evaluation period during which intracranial EEG recordings are performed to identify the epileptogenic network and provide a functional map of eloquent cerebral areas that need to be spared to minimize the risk of post-operative deficits. A growing body of research based on such invasive recordings indicates that cortical oscillations at various frequencies, especially in the gamma range (40 to 150 Hz), can provide efficient markers of task-related neural network activity. PRINCIPAL FINDINGS: Here we introduce a novel real-time investigation framework for mapping human brain functions based on online visualization of the spectral power of the ongoing intracranial activity. The results obtained with the first two implanted epilepsy patients who used the proposed online system illustrate its feasibility and utility both for clinical applications, as a complementary tool to electrical stimulation for presurgical mapping purposes, and for basic research, as an exploratory tool used to detect correlations between behavior and oscillatory power modulations. Furthermore, our findings suggest a putative role for high gamma oscillations in higher-order auditory processing involved in speech and music perception. CONCLUSION/SIGNIFICANCE: The proposed real-time setup is a promising tool for presurgical mapping, the investigation of functional brain dynamics, and possibly for neurofeedback training and brain computer interfaces.
format Text
id pubmed-2040217
institution National Center for Biotechnology Information
language English
publishDate 2007
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-20402172007-10-31 A Blueprint for Real-Time Functional Mapping via Human Intracranial Recordings Lachaux, Jean-Philippe Jerbi, Karim Bertrand, Olivier Minotti, Lorella Hoffmann, Dominique Schoendorff, Benjamin Kahane, Philippe PLoS One Research Article BACKGROUND: The surgical treatment of patients with intractable epilepsy is preceded by a pre-surgical evaluation period during which intracranial EEG recordings are performed to identify the epileptogenic network and provide a functional map of eloquent cerebral areas that need to be spared to minimize the risk of post-operative deficits. A growing body of research based on such invasive recordings indicates that cortical oscillations at various frequencies, especially in the gamma range (40 to 150 Hz), can provide efficient markers of task-related neural network activity. PRINCIPAL FINDINGS: Here we introduce a novel real-time investigation framework for mapping human brain functions based on online visualization of the spectral power of the ongoing intracranial activity. The results obtained with the first two implanted epilepsy patients who used the proposed online system illustrate its feasibility and utility both for clinical applications, as a complementary tool to electrical stimulation for presurgical mapping purposes, and for basic research, as an exploratory tool used to detect correlations between behavior and oscillatory power modulations. Furthermore, our findings suggest a putative role for high gamma oscillations in higher-order auditory processing involved in speech and music perception. CONCLUSION/SIGNIFICANCE: The proposed real-time setup is a promising tool for presurgical mapping, the investigation of functional brain dynamics, and possibly for neurofeedback training and brain computer interfaces. Public Library of Science 2007-10-31 /pmc/articles/PMC2040217/ /pubmed/17971857 http://dx.doi.org/10.1371/journal.pone.0001094 Text en Lachaux 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
Lachaux, Jean-Philippe
Jerbi, Karim
Bertrand, Olivier
Minotti, Lorella
Hoffmann, Dominique
Schoendorff, Benjamin
Kahane, Philippe
A Blueprint for Real-Time Functional Mapping via Human Intracranial Recordings
title A Blueprint for Real-Time Functional Mapping via Human Intracranial Recordings
title_full A Blueprint for Real-Time Functional Mapping via Human Intracranial Recordings
title_fullStr A Blueprint for Real-Time Functional Mapping via Human Intracranial Recordings
title_full_unstemmed A Blueprint for Real-Time Functional Mapping via Human Intracranial Recordings
title_short A Blueprint for Real-Time Functional Mapping via Human Intracranial Recordings
title_sort blueprint for real-time functional mapping via human intracranial recordings
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2040217/
https://www.ncbi.nlm.nih.gov/pubmed/17971857
http://dx.doi.org/10.1371/journal.pone.0001094
work_keys_str_mv AT lachauxjeanphilippe ablueprintforrealtimefunctionalmappingviahumanintracranialrecordings
AT jerbikarim ablueprintforrealtimefunctionalmappingviahumanintracranialrecordings
AT bertrandolivier ablueprintforrealtimefunctionalmappingviahumanintracranialrecordings
AT minottilorella ablueprintforrealtimefunctionalmappingviahumanintracranialrecordings
AT hoffmanndominique ablueprintforrealtimefunctionalmappingviahumanintracranialrecordings
AT schoendorffbenjamin ablueprintforrealtimefunctionalmappingviahumanintracranialrecordings
AT kahanephilippe ablueprintforrealtimefunctionalmappingviahumanintracranialrecordings
AT lachauxjeanphilippe blueprintforrealtimefunctionalmappingviahumanintracranialrecordings
AT jerbikarim blueprintforrealtimefunctionalmappingviahumanintracranialrecordings
AT bertrandolivier blueprintforrealtimefunctionalmappingviahumanintracranialrecordings
AT minottilorella blueprintforrealtimefunctionalmappingviahumanintracranialrecordings
AT hoffmanndominique blueprintforrealtimefunctionalmappingviahumanintracranialrecordings
AT schoendorffbenjamin blueprintforrealtimefunctionalmappingviahumanintracranialrecordings
AT kahanephilippe blueprintforrealtimefunctionalmappingviahumanintracranialrecordings