Atlas of the normal intracranial electroencephalogram: neurophysiological awake activity in different cortical areas
Language English Country England, Great Britain Media print
Document type Journal Article, Multicenter Study, Research Support, Non-U.S. Gov't
Grant support
FDN-143208
CIHR - Canada
PubMed
29506200
DOI
10.1093/brain/awy035
PII: 4915909
Knihovny.cz E-resources
- MeSH
- Wakefulness MeSH
- Adult MeSH
- Electrodes MeSH
- Electrocorticography methods MeSH
- Epilepsy diagnostic imaging pathology MeSH
- Middle Aged MeSH
- Humans MeSH
- Brain Mapping * MeSH
- Young Adult MeSH
- Cerebral Cortex diagnostic imaging physiopathology MeSH
- Neuroimaging MeSH
- Spectrum Analysis MeSH
- Check Tag
- Adult MeSH
- Middle Aged MeSH
- Humans MeSH
- Young Adult MeSH
- Male MeSH
- Female MeSH
- Publication type
- Journal Article MeSH
- Multicenter Study MeSH
- Research Support, Non-U.S. Gov't MeSH
UNLABELLED: In contrast to scalp EEG, our knowledge of the normal physiological intracranial EEG activity is scarce. This multicentre study provides an atlas of normal intracranial EEG of the human brain during wakefulness. Here we present the results of power spectra analysis during wakefulness. Intracranial electrodes are placed in or on the brain of epilepsy patients when candidates for surgical treatment and non-invasive approaches failed to sufficiently localize the epileptic focus. Electrode contacts are usually in cortical regions showing epileptic activity, but some are placed in normal regions, at distance from the epileptogenic zone or lesion. Intracranial EEG channels defined using strict criteria as very likely to be in healthy brain regions were selected from three tertiary epilepsy centres. All contacts were localized in a common stereotactic space allowing the accumulation and superposition of results from many subjects. Sixty-second artefact-free sections during wakefulness were selected. Power spectra were calculated for 38 brain regions, and compared to a set of channels with no spectral peaks in order to identify significant peaks in the different regions. A total of 1785 channels with normal brain activity from 106 patients were identified. There were on average 2.7 channels per cm3 of cortical grey matter. The number of contacts per brain region averaged 47 (range 6-178). We found significant differences in the spectral density distributions across the different brain lobes, with beta activity in the frontal lobe (20-24 Hz), a clear alpha peak in the occipital lobe (9.25-10.25 Hz), intermediate alpha (8.25-9.25 Hz) and beta (17-20 Hz) frequencies in the parietal lobe, and lower alpha (7.75-8.25 Hz) and delta (0.75-2.25 Hz) peaks in the temporal lobe. Some cortical regions showed a specific electrophysiological signature: peaks present in >60% of channels were found in the precentral gyrus (lateral: peak frequency range, 20-24 Hz; mesial: 24-30 Hz), opercular part of the inferior frontal gyrus (20-24 Hz), cuneus (7.75-8.75 Hz), and hippocampus (0.75-1.25 Hz). Eight per cent of all analysed channels had more than one spectral peak; these channels were mostly recording from sensory and motor regions. Alpha activity was not present throughout the occipital lobe, and some cortical regions showed peaks in delta activity during wakefulness. This is the first atlas of normal intracranial EEG activity; it includes dense coverage of all cortical regions in a common stereotactic space, enabling direct comparisons of EEG across subjects. This atlas provides a normative baseline against which clinical EEGs and experimental results can be compared. It is provided as an open web resource (https://mni-open-ieegatlas. RESEARCH: mcgill.ca).
Centre hospitalier de l'Université de Montréal Hôpital Notre Dame Montréal Québec Canada
Montreal Neurological Institute and Hospital McGill University Montreal Quebec Canada
References provided by Crossref.org
Rapid Eye Movement Sleep Sawtooth Waves Are Associated with Widespread Cortical Activations
Multi-feature localization of epileptic foci from interictal, intracranial EEG