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[Structural and functional imaging: particularities in children].

Abstract
Surgery of partial epilepsies in childhood has largely benefited from the recent advances of imaging techniques, which carry a triple goal: (1) to contribute to the localization of the epilepsy onset zone, (2) to detect and delineate an underlying lesion, and (3) to study the spatial relationship between the epileptogenic zone and the neighboring functional cortex, in order to select patients and plan the resection. This noninvasive presurgical imaging workup must be compared to clinical and electrical data to estimate the postoperative prognosis, while invasive techniques such as SEEG, cortical stimulations, and IAT often remain indispensable in difficult cases, i.e., in cryptogenic epilepsies. As in adults, advances in MRI allow us to detect more and more subtle underlying lesions, but this requires repeating MR studies during early childhood and using adapted sequence parameters to account for ongoing myelination. Ictal SPECT and PET imaging prove especially useful in planning depth electrode placement when video-EEG is not contributive, when MRI looks normal or shows multiple abnormalities, or in cases of discrepant findings. Multimodal imaging greatly enhances the sensitivity of all of these techniques. Finally, functional MRI of motor and language functions provide noninvasive cortical mapping of essential functions, using age-adapted paradigms, in cooperating children from age five to six and from IQs around 60.
AuthorsC Chiron, L Hertz-Pannier
JournalNeuro-Chirurgie (Neurochirurgie) Vol. 54 Issue 3 Pg. 212-8 (May 2008) ISSN: 0028-3770 [Print] France
Vernacular TitleImagerie morphologique et fonctionnelle: particularités chez l'enfant.
PMID18440570 (Publication Type: Journal Article, Review)
Topics
  • Child
  • Electroencephalography
  • Epilepsy (diagnosis, diagnostic imaging, pathology, surgery)
  • Humans
  • Magnetic Resonance Imaging
  • Neurosurgical Procedures
  • Positron-Emission Tomography
  • Tomography, Emission-Computed, Single-Photon

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