Source propagation of interictal spikes in temporal lobe epilepsy - Correlations between spike dipole modelling and [F-18]fluorodeoxyglucose PET data

被引:75
作者
Merlet, I
GarciaLarrea, L
Gregoire, MC
Lavenne, F
Mauguiere, F
机构
[1] UNIV LYON 1, DEPT FUNCT NEUROL & EPIDEMIOL, F-69365 LYON, FRANCE
[2] NEUROL HOSP, PET CTR, CERMEP, LYON, FRANCE
关键词
temporal lobe epilepsy; interictal spikes; dipole modelling; PET;
D O I
10.1093/brain/119.2.377
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
Source localization methods were applied to interictal spikes from scalp EEGs and correlated with metabolic (PET scan) data bz eight patients suffering from drug-resistant temporal lobe epilepsy (TLE). Dipolar sources, [F-18]fluorodeoxyglucose ((18)FDG)-PET data and anatomical images (MRI) were projected into the same three-dimensional coordinates system. Averaged spikes were adequately modelled by two or three dipolar sources with different onset time of activation but overlapping activity (mean residual variance 3.4+/-2.1%). Although, in all patients, spike modelling demonstrated dipolar sources in both mesial and lateral temporal cortex, dipole propagation was consistent with the early involvement Of only one of these two areas (mesio-temporal, Jive patients; lateral and polar neocortex, three patients). Six patients showed a unilateral interictal decrease in glucose uptake, as measured with (18)FDG-PET in the temporal lobe ipsilateral to the EEG spike focus. Temporal hypometabolism was bilateral in one patient and absent in the remaining case. When projected onto PET-scan slices, the dipolar sources of these patients were always included within the hypometabolic area. However; within the hypometabolic zone, the decrease in glucose uptake was not found to be more pronounced in regions containing dipoles. Therefore the spatio-temporal spread of neuronal hyperactivity underlying interictal spiking suggests he presence of preferential epileptogenic networks inside the hypometabolic temporal lobe. Fusion of bioelectric, metabolic and anatomical data proves to be a conveniens way of summarizing multimodal information from non-invasive investigations in TLE patients entering an epilepsy surgery programme, and suggests that both interictal spike dipole modelling and (18)FDG-PET data might be useful, as a complement to ictal electro-clinical data, in the presurgical evaluation of such patients.
引用
收藏
页码:377 / 392
页数:16
相关论文
共 47 条
[1]   POSITRON EMISSION TOMOGRAPHY STUDIES OF CEREBRAL GLUCOSE-METABOLISM IN CHRONIC PARTIAL EPILEPSY [J].
ABOUKHALIL, BW ;
SIEGEL, GJ ;
SACKELLARES, JC ;
GILMAN, S ;
HICHWA, R ;
MARSHALL, R .
ANNALS OF NEUROLOGY, 1987, 22 (04) :480-486
[2]   VALUE OF MAGNETIC-RESONANCE-IMAGING - BASED MEASUREMENTS OF HIPPOCAMPAL FORMATIONS IN PATIENTS WITH PARTIAL EPILEPSY [J].
ADAM, C ;
BAULAC, M ;
SAINTHILAIRE, J ;
LANDAU, J ;
GRANAT, O ;
LAPLANE, D .
ARCHIVES OF NEUROLOGY, 1994, 51 (02) :130-138
[3]   DISTRIBUTION OF PYRAMIDAL CELL-DENSITY AND HYPEREXCITABILITY IN THE EPILEPTIC HUMAN HIPPOCAMPAL-FORMATION [J].
BABB, TL ;
LIEB, JP ;
BROWN, WJ ;
PRETORIUS, J ;
CRANDALL, PH .
EPILEPSIA, 1984, 25 (06) :721-728
[4]   EPILEPTOGENESIS OF HUMAN LIMBIC NEURONS IN PSYCHOMOTOR EPILEPTICS [J].
BABB, TL ;
CRANDALL, PH .
ELECTROENCEPHALOGRAPHY AND CLINICAL NEUROPHYSIOLOGY, 1976, 40 (03) :225-243
[5]   PROPAGATION OF INTERICTAL EPILEPTIC ACTIVITY IN TEMPORAL-LOBE EPILEPSY [J].
BAUMGARTNER, C ;
LINDINGER, G ;
EBNER, A ;
AULL, S ;
SERLES, W ;
OLBRICH, A ;
LURGER, S ;
CZECH, T ;
BURGESS, R ;
LUDERS, H .
NEUROLOGY, 1995, 45 (01) :118-122
[6]   HIPPOCAMPAL SCLEROSIS IN TEMPORAL-LOBE EPILEPSY DEMONSTRATED BY MAGNETIC-RESONANCE-IMAGING [J].
BERKOVIC, SF ;
ANDERMANN, F ;
OLIVIER, A ;
ETHIER, R ;
MELANSON, D ;
ROBITAILLE, Y ;
KUZNIECKY, R ;
PETERS, T ;
FEINDEL, W .
ANNALS OF NEUROLOGY, 1991, 29 (02) :175-182
[7]   CORTICAL GENERATORS OF THE CI COMPONENT OF THE PATTERN-ONSET VISUAL EVOKED-POTENTIAL [J].
BUTLER, SR ;
GEORGIOU, GA ;
GLASS, A ;
HANCOX, RJ ;
HOPPER, JM ;
SMITH, KRH .
ELECTROENCEPHALOGRAPHY AND CLINICAL NEUROPHYSIOLOGY, 1987, 68 (04) :256-267
[8]  
CHAUVEL P, 1987, REV NEUROL, V143, P443
[9]   MEG VERSUS EEG LOCALIZATION TEST USING IMPLANTED SOURCES IN THE HUMAN BRAIN [J].
COHEN, D ;
CUFFIN, BN ;
YUNOKUCHI, K ;
MANIEWSKI, R ;
PURCELL, C ;
COSGROVE, GR ;
IVES, J ;
KENNEDY, JG ;
SCHOMER, DL .
ANNALS OF NEUROLOGY, 1990, 28 (06) :811-817
[10]   NEW METHOD FOR TITRATING DIFFERENCES IN SCALP TOPOGRAPHIC PATTERNS IN BRAIN EVOKED-POTENTIAL MAPPING [J].
DESMEDT, JE ;
CHALKLIN, V .
ELECTROENCEPHALOGRAPHY AND CLINICAL NEUROPHYSIOLOGY, 1989, 74 (05) :359-366