Basic mechanisms of partial epilepsies

被引:29
作者
Heinemann, U [1 ]
机构
[1] Univ Med Berlin, Johannes Muller Inst Physiol, D-10117 Berlin, Germany
关键词
radical oxygen species; cell death; mitochondrial damage; pharmaco-resistance; multidrug transporters; developmental abnormalities; febrile seizures;
D O I
10.1097/00019052-200404000-00012
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
Purpose of review Partial epilepsies are characterized by cell loss with consequences for neuronal organization, excitability, mnestic and cognitive functions and present with pharmaco-resistance and difficulties in clinical management. While mesial temporal lobe epilepsies present frequently with cell loss and neuronal reorganization, neocortical epilepsies frequently involve developmental alterations. Recent findings There is increasing evidence that nerve cells in epileptic tissue become more vulnerable to excitotoxic cell death due to impairment of mitochondrial functions and that free radical formation is critically involved in these processes. Whether and to what extent such alterations contribute to pharmaco-resistance is unclear. However, at least three mechanisms may contribute to pharmaco-resistance: changes in target molecules for antiepileptic drugs, upregulation of drug transporters, and potentially reorganization processes in inhibitory networks. Upregulation of drug transporters also seems to be involved in pharmaco-resistance of developmental alterations underlying focal epilepsies. Recent data from the literature suggest that transgenic models for disturbances of cortical development may be useful models for the study of these variable forms of partial epilepsies. Summary The data suggest that improvement of therapy could result from free radical scavenging and from manipulation of drug transport into the affected tissue. New models of developmental epilepsies may help us to understand mechanisms underlying increased vulnerability to seizures as well as improving strategies for treatment.
引用
收藏
页码:155 / 159
页数:5
相关论文
共 56 条
[1]   Neuronal nitric oxide synthase proteolysis limits the involvement of nitric oxide in kainate-induced neurotoxicity in hippocampal neurons [J].
Araújo, IM ;
Ambrósio, AF ;
Leal, EC ;
Santos, PF ;
Carvalho, AP ;
Carvalho, CM .
JOURNAL OF NEUROCHEMISTRY, 2003, 85 (03) :791-800
[2]  
Avoli M, 2003, EPILEPTIC DISORD, V5, pS45
[3]  
Avoli M, 2002, ADV EXP MED BIOL, V497, P123
[4]   αCaMKII and NMDA-receptor subunit expression in epileptogenic cortex from human periventricular nodular heterotopia [J].
Battaglia, G ;
Pagliardini, S ;
Ferrario, A ;
Gardoni, F ;
Tassi, L ;
Setola, V ;
Garbelli, R ;
LoRusso, G ;
Spreafico, R ;
Di Luca, M ;
Avanzini, G .
EPILEPSIA, 2002, 43 :209-216
[5]   Enhanced expression of a specific hyperpolarization-activated cyclic nucleotide-gated cation channel (HCN) in surviving dentate gyrus granule cells of human and experimental epileptic hippocampus [J].
Bender, RA ;
Soleymani, SV ;
Brewster, AL ;
Nguyen, ST ;
Beck, H ;
Mathern, GW ;
Baram, TZ .
JOURNAL OF NEUROSCIENCE, 2003, 23 (17) :6826-6836
[6]  
Bentivoglio M, 2003, EPILEPTIC DISORD, V5, pS27
[7]   Oxygen sensitivity of NMIDA receptors: Relationship to NR2 subunit composition and hypoxia tolerance of neonatal neurons [J].
Bickler, PE ;
Fahlram, CS ;
Taylor, DM .
NEUROSCIENCE, 2003, 118 (01) :25-35
[8]   A family of drug transporters: The multidrug resistance-associated proteins [J].
Borst, P ;
Evers, R ;
Kool, M ;
Wijnholds, J .
JNCI-JOURNAL OF THE NATIONAL CANCER INSTITUTE, 2000, 92 (16) :1295-1302
[9]   Effect of the postictal state on visual-spatial memory in immature rats [J].
Boukhezra, O ;
Riviello, P ;
Fu, DD ;
Lui, XZ ;
Zhao, Q ;
Akman, C ;
Holmes, GL .
EPILEPSY RESEARCH, 2003, 55 (03) :165-175
[10]   Developmental febrile seizures modulate hippocampal gene expression of hyperpolarization-activated channels in an isoform- and cell-specific manner [J].
Brewster, A ;
Bender, RA ;
Chen, YC ;
Dube, C ;
Eghbal-Ahmadi, M ;
Baram, TZ .
JOURNAL OF NEUROSCIENCE, 2002, 22 (11) :4591-4599