Electrical Source Imaging; stereoEEG; malformations of cortical development
Abstract :
[en] OBJECTIVE: Delineating the epileptogenic zone (EZ) in refractory epilepsy related to malformations of cortical development (MCD) often requires intracranial EEG recordings, especially in cases of negative MRI or discordant MRI and video-EEG findings. It is therefore crucial to promote the development of non-invasive methods such as electrical source imaging (ESI). We aimed to (i) analyze the localization concordance of ESI derived from interictal discharges and EZ estimated by stereo-electroencephalography (SEEG), (ii) compare the concordance of ESI, MRI and electro-clinical correlations (ECC) with SEEG-EZ, and (iii) assess ESI added value in the EZ localization. METHODS: We prospectively analyzed 28 consecutive patients undergoing presurgical investigation for MCD-related refractory epilepsy in 2009-2012. ESI derived from 64-channel scalp EEG was interpreted blinded to- and subsequently compared with SEEG estimated ΕZ. Anatomical concordance of ESI with SEEG-ΕZ was compared to that of video-EEG and MRI. We further assessed ESI added value to ECC and MRI. RESULTS: Twelve (43%) patients had temporal and 16 (57%) extratemporal epilepsy. MRI was negative in 11 (39%) and revealed a cortical malformation in 17 (61%). ESI was fully concordant with the EZ in ten (36%) and partly concordant in 15 (53%). ECC presented a full and partial concordance with EZ in 11% and 82% of cases respectively and MRI in 11% and 46% respectively. Of 11 patients with negative MRI, ESI was fully concordant with the EZ in seven (64%), partly concordant in four (36%). ESI correctly confirmed, restricted or added localizations to ECC and MRI in 12 of 28 patients (43%) and in eight of 11 patients (73%) with negative MRI. SIGNIFICANCE: ESI contributes to estimate the EZ in MCD-related epilepsy. The added value of ESI to ECC is particularly high in patients with MCD and negative MRI, who represent the most challenging cases for epilepsy surgery.
Disciplines :
Neurology
Author, co-author :
RIKIR, Estelle ; Centre Hospitalier Universitaire de Liège - CHU > Neurologie Sart Tilman
KOESSLER, Laurent; Université de Lorraine, > CRAN, UMR 7039
GAVARET, Martine; INSERM UMR 1106, Institut de Neurosciences des Systèmes
BARTOLOMEI, Fabrice; INSERM UMR 1106, Institut de Neurosciences des Systèmes
COLNAT-COULBOIS, Sophie; Centre Hospitalier Universitaire de Nancy > Service de Neurochirurgie
VIGNAL, Jean-Pierre; Centre Hospitalier Universitaire de Nancy > Service de Neurologie, Explorations fonctionnelles
VESPIGNANI, Hervé; Université de Lorraine, France > Faculté de médecine
RAMANTANI, Georgia; University Hospital Freiburg, Freiburg, Germany > Epilepsy Center
MAILLARD, Louis Georges; Université de Lorraine, France > Faculté de médecine
Language :
English
Title :
Electrical Source Imaging in cortical malformation-related epilepsy : a prospective EEG-SEEG concordance study
Publication date :
June 2014
Journal title :
Epilepsia
ISSN :
0013-9580
eISSN :
1528-1167
Publisher :
Blackwell Science, Malden, United States - Massachusetts
Spencer S, Huh L,. Outcomes of epilepsy surgery in adults and children. Lancet Neurol 2008; 7: 525-537.
Papayannis CE, Consalvo D, Kauffman MA, et al. Malformations of cortical development and epilepsy in adult patients. Seizure 2012; 21: 377-384.
Chang EF, Wang DD, Barkovich AJ, et al. Predictors of seizure freedom after surgery for malformations of cortical development. Ann Neurol 2011; 70: 151-162.
Chassoux F, Devaux B, Landré E, et al. Stereoencephalography in focal cortical dysplasia: a 3D approach to delineating the dysplastic cortex. Brain 2000; 123: 1733-1751.
Krsek P, Maton B, Jayakar P, et al. Incomplete resection of focal cortical dysplasia is the main predictor of poor postsurgical outcome. Neurology 2009; 72: 217-223.
Aubert S, Wendling F, Regis J, et al. Local and remote epileptogenicity in focal cortical dysplasias and neurodevelopmental tumours. Brain 2009; 132: 3072-3086.
Ramantani G, Koessler L, Colnat-Coulbois S, et al. Intracranial evaluation of the epileptogenic zone in regional infrasylvianpolymicrogyria. Epilepsia 2013; 54: 296-304.
Maillard L, Koessler L, Colnat-Coulbois S, et al. Combined SEEG and source localisation study of temporal lobe schizencephaly and polymicrogyria. Clin Neurophysiol 2009; 120: 1628-1636.
Kahane P, Landré E, Minotti L, et al. The Bancaud and Talairach view on the epileptogenic zone: a working hypothesis. Epileptic Disord 2006; 8 (Suppl. 2): S16-S26.
Brodbeck V, Spinelli L, Lascano AM, et al. Electroencephalographic source imaging: a prospective study of 152 operated epileptic patients. Brain 2011; 134: 2887-2897.
Gavaret M, Badier JM, Marquis P, et al. Electric source imaging in temporal lobe epilepsy. J Clin Neurophysiol 2004; 21: 267-282.
Gavaret M, Badier JM, Marquis P, et al. Electric source imaging in frontal lobe epilepsy. J Clin Neurophysiol 2006; 23: 358-370.
Knowlton RC, Elgavish R, Howell J, et al. Magnetic source imaging versus intracranial electroencephalogram in epilepsy surgery: a prospective study. Ann Neurol 2006; 59: 835-842.
Koessler L, Benar C, Maillard L, et al. Source localization of ictal epileptic activity investigated by high resolution EEG and validated by SEEG. Neuroimage 2010; 51: 642-653.
Lantz G, Grave de PeraltaMenendez R, Gonzalez Andino S, et al. Noninvasive localization of electromagnetic epileptic activity. II. Demonstration of sublobar accuracy in patients with simultaneous surface and depth recordings. Brain Topogr 2001; 14: 139-147.
Merlet I, Gotman J,. Dipole modeling of scalp electroencephalogram epileptic discharges: correlation with intracerebral fields. Clin Neurophysiol 2001; 112: 414-430.
Michel CM, Lantz G, Spinelli L, et al. 128-channel EEG source imaging in epilepsy: clinical yield and localization precision. J Clin Neurophysiol 2004; 21: 71-83.
Bast T, Oezkan O, Rona S, et al. EEG and MEG source analysis of single and averaged interictal spikes reveals intrinsic epileptogenicity in focal cortical dysplasia. Epilepsia 2004; 45: 621-631.
Bast T, Ramantani G, Boppel T, et al. Source analysis of interictal spikes in polymicrogyria: loss of relevant cortical fissures requires simultaneous EEG to avoid MEG misinterpretation. Neuroimage 2005; 25: 1232-1241.
Blenkmann A, Seifer G, Princich JP, et al. Association between equivalent current dipole source localization and focal cortical dysplasia in epilepsy patients. Epilepsy Res 2012; 98: 223-231.
Lüders H, Najm I, Nair D, et al. The epileptogenic zone: general principles. Epileptic Disord 2006; 8 (Suppl. 2): S1-S9.
Duncan JS,. Neuroimaging in epilepsy: quality and not just quantity is important: current resources for neuroimaging could be used more efficiently. J Neurol Neurosurg Psychiatry 2003; 73: 612-613.
Koessler L, Maillard L, Benhadid A, et al. Automated cortical projection of EEG sensors: anatomical correlation via the international 10-10 system. Neuroimage 2009; 46: 64-72.
Oostenveld R, Praamstra P,. The five percent electrode system for high-resolution EEG and ERP measurements. Clin Neurophysiol 2001; 112: 713-719.
Koessler L, Benhadid A, Maillard L, et al. Automatic localization and labeling of EEG sensors (ALLES) in MRI volume. Neuroimage 2008; 41: 914-923.
Walczak TS, Jayakar P, Mizrahi EM,. Interictal encephalography. In, Engel J Jr, Pedley TA, (Eds) Epilepsy-A comprehensive textbook. 2nd Ed. Philadelphia: Wolters-Kluwer Lippincott Williams & Wilkins, 2008: 809-823.
Chatrian GE,. Report on the Committee on Terminology. Proceedings of the general assembly. The VIIIth international congress of electroencephalography and clinical neurophysiology. Electroencephalogr Clin Neurophysiol 1974; 37: 521-553.
Diekmann V, Becker W, Jurgens R,. Localisation of epileptic foci with electric, magnetic and combined electromagnetic models. Electroencephalogr Clin Neurophysiol 1998; 106: 297-313.
Guggisberg AG, Dalal SS, Zumer JM, et al. Localization of cortico-peripheral coherence with electroencephalography. Neuroimage 2011; 57: 1348-1357.
Gonçalves S, de Munck JC, Heethaar RM, et al. The application of electrical impedance tomography to reduce systematic errors in the EEG inverse problem-A simulation study. Physiol Meas 2000; 21: 379-393.
Hämäläinen MS, Ilmoniemi RJ,. Interpreting measured magnetic fields of the brain: estimation of current distributions. Technical Report TKK-F-A559, Helsinki University of Technology, 1984: 1-28.
Mosher JC, Lewis PS, Leahy RM,. Multiple dipole modeling and localization from spatio-temporal MEG data. IEEE Trans Biomed Eng 1992; 39: 541-557.
Lantz G, Spinelli L, Seeck M, et al. Propagation of interictal epileptiform activity can lead to erroneous source localizations: a 128-channel EEG mapping study. J Clin Neurophysiol 2003; 20: 311-319.
Ray A, Tao JX, Hawes-Ebersole SM, et al. Localizing value of scalp EEG spikes: a simultaneous scalp and intracranial study. Clin Neurophysiol 2007; 118: 69-79.
Hauptman JS, Mathern GW,. Surgical treatment of epilepsy associated with cortical dysplasia: 2012 update. Epilepsia 2012; 53 (Suppl. 4): 98-104.
Tomini C, Beghi E, Berg AT, et al. Predictors of epilepsy surgery outcome: a meta-Analysis. Epilepsy Res 2004; 62: 75-87.
Lantz G, Grave de Peralta R, Spinelli L, et al. Epileptic source localization with high density EEG: how many electrodes are needed? Clin Neurophysiol 2003; 114: 63-69.
Merlet I, Garcia-Larrea L, Grégoire MC, et al. Source propagation of interictal spikes in temporal lobe epilepsy. Correlations between spike dipole modelling and [18F]fluorodeoxyglucose PET data. Brain 1996; 119: 377-392.