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  3. An optimized framework for simultaneous EEG-fMRI at 7T enabling safe, high-quality human brain imaging with millisecond temporal resolution and sub-millimeter spatial resolution.
 

An optimized framework for simultaneous EEG-fMRI at 7T enabling safe, high-quality human brain imaging with millisecond temporal resolution and sub-millimeter spatial resolution.

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BORIS DOI
10.48620/92413
Publisher DOI
10.1162/IMAG.a.983
PubMed ID
41200234
Description
The combination of electroencephalography (EEG) and functional magnetic resonance imaging (fMRI) at ultra-high field (7 Tesla) offers appealing new possibilities to probe human brain function non-invasively with high coverage, millisecond temporal precision and sub-millimeter spatial precision, unraveling cortical layers and small subcortical structures. Unfortunately, this technique has remained largely inaccessible at 7T, due to prohibitive cross-modal interference effects and physical constraints. Here, we developed a first-of-its-kind EEG-fMRI acquisition framework on a clinical 7T system combining key improvements from previous research: compact EEG transmission to reduce artifact incidence, reference sensors for artifact correction, and adapted leads for compatibility with a dense radiofrequency receive array allowing state-of-the-art fMRI sensitivity and acceleration. Two implementations were tested: one using an EEG cap adapted in-house, and another using a recently designed prototype from an industrial manufacturer, intended to be further developed into a commercial device accessible to the broader community. A comprehensive evaluation in humans showed that simultaneous acquisitions, including sub-millimeter fMRI resolution, could be conducted without detectable safety issues or major practical constraints. The EEG exerted relatively mild perturbations on fMRI quality (6-11% loss in temporal SNR), without measurably affecting the detection of resting-state networks and visual responses. The artifacts induced on EEG could be corrected to a degree where the spatial, spectral, and temporal characteristics were comparable with outside recordings, and hallmark features such as resting-state alpha and eyes-closing alpha modulation could be clearly detected. Altogether, these findings indicate excellent prospects for neuroimaging applications, which can leverage the unique possibilities achievable at 7T.
Date of Publication
2025
Publication Type
Article
Keyword(s)
EEG-fMRI
•
human
•
quality
•
safety
•
sensitivity
•
ultra-high field
Language(s)
en
Contributor(s)
Martinez, Cristina Sainz
Wirsich, Jonathan
Jäger, Cilia
Warbrick, Tracy
Vulliémoz, Serge
Lemay, Mathieu
Bastiaansen, Jessicaorcid-logo
Institute of Diagnostic, Interventional and Paediatric Radiology - Partial Clinic
Institute of Diagnostic, Interventional and Paediatric Radiology
sitem Center for Translational Medicine and Biomedical Entrepreneurship
Wiest, Roland
Institute of Diagnostic and Interventional Neuroradiology
Jorge, João
Additional Credits
sitem Center for Translational Medicine and Biomedical Entrepreneurship
Institute of Diagnostic, Interventional and Paediatric Radiology - Partial Clinic
Institute of Diagnostic and Interventional Neuroradiology
Series
Imaging Neuroscience
Publisher
Massachusetts Institute of Technology Press
ISSN
2837-6056
Access(Rights)
open.access
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