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Epilepsy: a review of selected clinical syndromes and advances in basic science.

Epilepsy is a common neurologic disorder that manifests in diverse ways. There are numerous seizure types and numerous mechanisms by which the brain generates seizures. The two hallmarks of seizure generation are hyperexcitability of neurons and hypersynchrony of neural circuits. A large variety of mechanisms alters the balance between excitation and inhibition to predispose a local or widespread region of the brain to hyperexcitability and hypersynchrony. This review discusses five clinical syndromes that have seizures as a prominent manifestation. These five syndromes differ markedly in their etiologies and clinical features, and were selected for discussion because the seizures are generated at a different 'level' of neural dysfunction in each case: (1) mutation of a specific family of ion (potassium) channels in benign familial neonatal convulsions; (2) deficiency of the protein that transports glucose into the CNS in Glut-1 deficiency; (3) aberrantly formed local neural circuits in focal cortical dysplasia; (4) synaptic reorganization of limbic circuitry in temporal lobe epilepsy; and (5) abnormal thalamocortical circuit function in childhood absence epilepsy. Despite this diversity of clinical phenotype and mechanism, these syndromes are informative as to how pathophysiological processes converge to produce brain hyperexcitability and seizures.

Animals↗

Calcium-dependent regulation of genetically determined spike and waves by the reticular thalamic nucleus of rats.

The pathophysiologic role of the reticular thalamic nucleus (RT) in rat generalized nonconvulsive epilepsy was investigated in the selected strain GAERS (genetic absence epilepsy rats from Strasbourg). After the RT was lesioned by the excitotoxic agent ibotenic acid stereotaxically injected in previously callosotomized rats, a disruption of ipsilateral spike and wave discharges (SWD) was observed in freely moving animals. In a second group of animals Cd2+ (0.5-1.5 microliter, 1 mM), which is known to block Ca2+ and Ca(2+)-dependent K+ conductances (gK+ (Ca2+)), was injected into the thalamus. Cd2+ reversibly suppressed ipsilateral SWD when injected in RT, whereas it slightly reduced SWD expression when injected in the ventrobasal (VB) complex. The difference was highly significant. We conclude that Ca(2+)-dependent oscillatory properties of the RT are critical for expression of genetically determined SWD in GAERS.

Animals↗

The prevalence and incidence of convulsive disorders in children.

Each year, about 150,000 children and adolescents in the United States will come to medical attention for evaluation of a newly occurring seizure disorder of some type. Between 2% and 4% of all children in Europe and the United States experience at least one convulsion associated with a febrile illness before the age of 5 years. The cumulative incidence of febrile convulsions among children ranges from about 1% in China to more than 8% in Japan and 14% in Guam. The peak incidence of a first febrile convulsion occurs in the second year of life. Between 0.5% and 1% of children and adolescents experience a seizure associated with other acute metabolic or neurologic insults; most of these occur in the neonatal period. The incidence of epilepsy (recurrent unprovoked seizures) in children and adolescents seems relatively consistent across all populations studied, ranging from 50 to 100/100,000. The highest incidence of epilepsy is in the first year of life. West syndrome accounts for about 2% of all childhood epilepsy. Lennox-Gastaut syndrome for 1-2%, childhood absence epilepsy (pyknolepsy) for 10-15%, juvenile myoclonic epilepsy for 5%, and idiopathic localization-related epilepsy for 10%. Between 0.5 and 1% of children experience a nonrecurrent, single, unprovoked convulsive episode. Following are the estimated numbers of children and adolescents with newly diagnosed convulsive disorders in the United States for the year 1990: febrile seizures, 100,000; neonatal seizures, 4,000; other provoked seizures, 6,000; single unprovoked seizures, 10,000; and epilepsy, 30,000.

Adolescent↗

[Idiopathic partial epilepsy with occipital paroxysms].

BACKGROUND: The syndrome of idiopathic partial epilepsy with occipital paroxysms in the electroencephalogram (EEG) shows a considerable clinical and prognostic heterogeneity. The semiology of seizures varies considerably among patients and its hallmark, occipital paroxysms blocked by eye opening, may appear in other idiopathic or symptomatic epilepsies of childhood and even in nonepileptic disorders, notably basilar artery migraine. To address these unresolved issues in children with this rare form of epilepsy, the present paper utilized a longitudinal approach and investigated the significance of electrophysiologic and clinical characteristics necessary for the diagnostic and prognostic evaluation during a long-term follow-up. PATIENTS AND METHODS: Over a 9-year period all patients, aged 1-15 years, who showed occipital paroxysms in EEG recordings were included in this study. In addition, clinical correlates were available for all these patients. Neurological, psychiatric and other clinical examinations were done in all patients. Whenever indicated, the neuroimaging of the brain (computerized tomography and/or magnetic resonance) was performed to establish the symptomatic aetiology. The epileptic syndromes were determined according to criteria of the International classification. A detailed EEG analysis of all patients, performed during a 3-12 year follow-up period, included hyperventilation, photic stimulation and a thorough testing of visual reactivity with exclusion of central vision. The incidence of EEG characteristics in patients with various epileptic syndromes was compared and its significance for the differential diagnosis was tested by nonparametric statistical methods. The clinical semiology of epilepsy and/or other associated disorders and EEG findings were compared among the patients with idiopathic partial epilepsy and occipital paroxysms. RESULTS: Occipital epileptiform paroxysms were recorded in EEGs of 76 children with various clinical diagnoses but only 58 patients had seizures. The incidence of epilepsy (39 patients or 51%) was slightly higher than that of various non-epileptic disorders (37 patients or 49%). Two types of these paroxysms were analyzed: reactive (appearing at exclusion of central vision and disappearing on eye opening) or unreactive (persisting in the above situations). The difference in incidence of seizures (in a total of 58 patients) depending on the types of paroxysms was not statistically significant. EEG characteristics in 25 patients with both reactive paroxysms and seizures were compared in relation to the aetiology of epileptic syndromes. Comparing EEG in various types of epilepsy with reactive paroxysms, the statistical analysis (using Fischer's exact test) established that slowed background activity was significantly more frequent in symptomatic partial epilepsy than in idiopathic syndromes. On the other hand, EEG normalization during the follow-up period was a rule in benign epilepsy with centro-temporal paroxysms and in childhood absence epilepsy, and it was significantly more frequent in idiopathic partial epilepsy with occipital paroxysms than in symptomatic partial epilepsy. However, EEG findings per se cound not differentiate idiopathic partial epilepsy with occipital paroxysms from other epileptic syndromes. Neither seizures semiology could distinguish between different forms of occipital lobe epilepsy. Therefore, a correct syndromic and aetiologic classification for each patient with occipital spike-wave paroxysms required the combined and thorough assessment integrating clinical examination, clinical neurophysiological analyses, and neuroimaging studies during the follow-up. Using all above methods during the follow-up of 11 patients with idiopathic partial epilepsy with occipital paroxysms (IPEOP) it was found that this syndrome had often a very favorable prognosis if characterized by rare, nocturnal seizures beginning in preschool age. (ABSTRACT TRUNCATED)

Adolescent↗

[Cases of idiopathic and cryptogenic epilepsias in a regional referral neuropediatric unit].

INTRODUCTION AND OBJECTIVES: Advances in genetics, techniques for diagnosis and treatment, and increasing concern for the quality of life and neuropsychological aspects of epileptic children and the possible repercussions of treatment lead to changes in the approach to epilepsy and require continual adaptation. In this study we analysed a series of cases of idiopathic and cryptogenic epilepsy attended by the Neuropaediatric Department of the Hospital Miguel Servet in Zaragoza (Spain). PATIENTS AND METHODS: We studied the cases diagnosed as having idiopathic or cryptogenic epilepsy between May 1990 and December 1999. RESULTS: We assessed 4,507 children. In 1,794 (39.8%) consultation was for a paroxystic disorder. Epilepsy was diagnosed in 466 children (10.3%) and 103 cases were considered possibly or probably epilepsy but the diagnosis remains in doubt (2.3%). In 111 cases (23.8%) the epilepsy was considered idiopathic, in 122 (26.2%) cryptogenic and in 233 cases (50%) symptomatic. The following epileptic syndromes were identified: epilepsy-absence attacks in 28 cases (6%), benign myoclonic infantile epilepsy in 4 cases, other idiopathic generalized epilepsies in 61 cases (13%), benign Rolandic epilepsy in 18 cases (3.9%), 2 cases of cryptogenic Ohtahara syndrome, 6 cases of cryptogenic West syndrome, 1 severe case of infantile myoclonic epilepsy, 1 case of continuous wave epilepsy during slow eye movement sleep and 1 case of Landau-Kleffner syndrome. CONCLUSION: Current requirements and the rate of advances in epilepsy make it essential for neuropaediatric teams to include experts in epilepsy.

Adolescent↗

Overlap cases of eyelid myoclonia with absences and juvenile myoclonic epilepsy.

Eyelid myoclonia with absences (EMA) and juvenile myoclonic epilepsy (JME) are two separate epileptic syndromes included in the new classification of epilepsies and epileptic syndromes by ILAE in 2001. Both are idiopathic generalized epilepsies with their clinical onset in the first two decades. EMA is characterized by eyelid myoclonia associated with absences and photosensitivity. Self-induced seizures are frequently seen in EMA. It can be associated with mildly mental retardation and resistance to treatment. JME includes three types of generalized seizures: typical absences, myoclonic jerks and generalized tonic-clonic seizures. The myoclonic jerks occur almost exclusively on awakening, involve preferently the upper extremities, may rarely affect the lower extremities or the entire body. More severe attacks may be accompanied by a fall. The myoclonic jerks occur rarely in EMA. They are usually mild and are freqently restricted to the upper extremities. Generalized tonic-clonic seizures, photosensitivity and generalized polyspike-wave discharges provoked by eye closure are features of both epileptic syndromes. In this study, we describe four female patients with eyelid myoclonia associated with absences, myoclonic jerks causing falling down and rare generalized tonic-clonic seizures. All patients had good school performance and total seizure control under sodium valproate treatment. Their EEGs show generalized polyspike-wave discharges with a frequency of 3.5-6Hz always appearing a few seconds after eye closure and photoparoxysmal response. These patients show the characterictics of both epileptic syndromes. It is clinically important to make a syndromic diagnosis for an optimum advise on treatment, lifestyle restrictions and prognosis. In this study, we have gathered evidence that EMA and JME are dynamic syndromes that tend to evolve into one another.

Adolescent↗

GABAB receptor antagonists: potential new anti-absence drugs.

The availability of new antagonists of the GABAB receptor which readily cross the blood-brain barrier has made it possible to investigate the role of GABAB-receptor-mediated transmission in the control of spike-and-wave discharges (SWD) in a strain of rats (GAERS) with genetic absence epilepsy. Systemic administration of R-Baclofen, a GABAB agonist, increased the duration of SWD, or elicited SWD-like oscillations in the cortical EEG of non-epileptic control rats. Conversely, administration of CGP 35348, a GABAB antagonist, either i.p. or p.o., dose-dependently suppressed the spontaneous SWD, as well as the SWD aggravated by concomitant injection of various GABAmimetic drugs, GHB, or anti-convulsants known to exacerbate absence seizures. These results demonstrate the involvement of GABAB-mediated neurotransmission in the development of SWD in generalized non-convulsive epilepsy. GABAB antagonists may thus be considered to be potentially specific anti-absence drugs.

Action Potentials↗

[Clinical features of epilepsy in adolescents].

OBJECTIVE: The epilepsy is a common neurologic disorder in adolescence. Its prevalence is 1.5-2% in these ages. In this work the different epileptic types and syndromes that begin in adolescence are reviewed. DEVELOPMENT: Primary generalized epilepsies are the most frequent group. Its three syndromes, juvenile absences epilepsy, juvenile myoclonic epilepsy and epilepsy with generalized with tonic-clonic seizures on awakening, have different clinical and electroencephalographic characteristic but also share a considerable overlapping among them. The partial epilepsies are frequently functional or idiopathic, but not so often as in childhood. The secondary generalized epilepsies are rare, and among them, the progressive myoclonic epilepsies are the main group. The clinical aspects of the different disorders are described. CONCLUSIONS: 19% of epilepsies have the onset in adolescence. There is a wide spectrum of clinical syndromes, with different symptoms and prognosis and also different of the corresponding syndromes that begin in childhood.

Adolescent↗

Recent advances related to basic mechanisms of epileptogenesis.

A variety of clinical observations suggest that certain forms of epilepsy are due to long-term, progressive changes in neural networks that eventually provoke spontaneous and recurring seizures. This process of network transformation, known as epileptogenesis, is a potentially important therapeutic target and also serves as an extremely interesting model of central nervous system plasticity. This article reviews some of the significant, recent advances in our understanding of mechanisms underlying epileptogenesis in different forms of epilepsy. The most substantial progress has been made in work related to temporal lobe epilepsy (TLE), where the biochemical, electrophysiological and anatomical changes in the hippocampus have been intensively studied. This has led to a number of cogent and testable hypotheses, including the concept that dentate granule cell hyperexcitability in TLE is due to a selective loss of hilar neurons that renders inhibitory cells 'dormant.' Studies of other forms of focal epilepsy suggest that a seizure focus may develop as a result of axonal reorganization or immune-mediated effects on membrane channels. Epileptogenesis in generalized epilepsies remains poorly understood, although recent work using models of absence epilepsy point to the critical role of GABAB or T-type calcium channels in the thalamus. Also, new transgenic mouse lines with epilepsy phenotypes have introduced candidate genes, such as those encoding the serotonin 5-HT2C receptor or the alpha subunit of calcium/calmodulin kinase II, that may be responsible for epileptogenesis. Finally, a large amount of investigation has focused on seizure-induced gene expression and it is now clear that seizures can cause a cascade of changes in the expression of gene products that are likely to play a role in network plasticity. Progress in developing 'anti-epileptogenic' therapies will require further advances in understanding the mechanistic roles of these various biochemical and anatomical changes in the transformation of normal to hyperexcitable neural networks.

Animals↗

Eye movement desensitization and reprocessing in the treatment of posttraumatic stress disorder in a patient with comorbid epilepsy.

Whether eye movement desensitization and reprocessing (EMDR) treatment of posttraumatic stress disorder (PTSD) causes reactivation of epilepsy is as yet unclear. A 34-year-old woman was treated in an inpatient multimodal psychotherapeutic setting with EMDR for PTSD resulting from sexual harassment and for a moderate depressive episode. She had been diagnosed with idiopathic generalized absence epilepsy in childhood, but had experienced no seizures under lamotrigine medication since 1999. After the second EMDR session, clinical seizures in the form of absences occurred, and were validated by electroencephalography. The seizures ceased after medication with benzodiazepines and an increase in the lamotrigine level. She underwent four more sessions of EMDR treatment successfully without further seizures. Possible triggers are discussed, especially as to whether EMDR treatment played a role in reactivating epilepsy. Further research and publications on the application of EMDR in epilepsy patients are needed.

Adult↗

[A case with frontal lobe epilepsy presenting with absence seizures as cardinal manifestation: ictal EEG findings].

We report here a 9-year-old boy presenting with absence and complex partial seizures. Absence seizures occurred several times a day, with sudden arrest of speech and gesture, alteration of consciousness, myoclonus of unilateral or bilateral angles of the mouth, occasional simple automatism and brisk recovery of consciousness. Complex partial seizures occurred once to three times a month with loss of consciousness, salivation, deviation of the head and eyes toward the left, elevation of upper limbs and tonic convulsion of the left upper and lower limbs. Interictal EEG showed right frontal pole-dominant high-voltage slow waves or spike-and-waves. Ictal simultaneous video-EEG recordings of absence seizures revealed a frontal dominant 3-3.5 Hz spike-wave burst lasting several seconds. A partial seizure never preceded the absence seizure. Transverse topographical analysis revealed that the first spike component of the spike-wave burst of absence seizure always showed phase reversal on the right anterior temporal electrode. The following ones, however, showed phase reversal on the left anterior temporal electrode. Ictal EEG of the complex partial seizure could not be detected because it rarely occurred. There was no abnormal finding on brain MRI. Interictal single photon emission tomography (SPECT) indicated hypoperfusion of the dorsal and medial cortex of the right middle frontal lobe. Interictal positron emission tomography (PET) also indicated hypometabolic areas in the dorsal and medial cortex of the right frontal lobe, together with those in the right temporal and parietal cortex. EEG evolution and neuroimaging studies suggested that the epileptic focus of the absence seizure might have originated at the dorsal cortex of the right middle frontal lobe and immediately spread to the medial cortex. Both the seizures were well controlled by the combination of phenytoin and high dose sodium valproate.

Brain↗

Epilepsy with myoclonic absences.

Among the epileptic syndromes that are defined mainly on the basis of a characteristic seizure type, epilepsy with myoclonic absences (EMA) stands out as a somewhat controversial entity. This is because the sound and evident clinical characteristics on which it was identified some 30 years ago have evolved, mostly as a consequence of changes in the practical management of epilepsies and to the description of myoclonic components in a variety of other generalised epilepsies with absences. Myoclonic absences (MA) are described as typical absences with sudden onset and offset that are associated with generalised spike and wave (SW) discharges on the ECG, with distinctive traits. Clinically, absences are associated with axial hypertonia (the subject usually bends forward and slightly raises their shoulders and arms), and jerks synchronous with the SW discharges. Neurophysiologically, axial hypertonia and rhythmic jerks may be recorded on polygraphic surface electromyogram leads in association with the typical SW discharges; as such, despite an ECG, the diagnosis may be missed in the absence of video documentation of the seizure and/or adequate polygraphy. MA need to be distinguished from absences with other types of prominent myoclonic accompaniment (perioral, eyelid, limbs).The prognosis of EMA remains variable. Modern therapeutic combinations, such as valproic acid and ethosuximide, or valproic acid and lamotrigine, are usually effective; however, in a proportion of patients, seizures are resistant to drug treatment. These patients may experience cognitive deterioration and, in some cases, evolution towards a more severe form of epilepsy, including the Lennox-Gastaut syndrome. The more benign cases usually present with MA as the only seizure type, while patients who experience other seizures, especially generalised tonic-clonic seizures, in association with MA may have a less favourable outcome.

Anticonvulsants↗

The inhibitory control of the substantia nigra over generalized non-convulsive seizures in the rat.

A system exerting inhibitory control over generalized epilepsies and involving neurons from the substantia nigra has been described by several authors in experimental models of convulsive seizures. In the present study, the existence of such a control system governing absence epilepsy was investigated using models of non-convulsive seizures in the rat. Activation of the GABAergic neurotransmission within the substantia nigra by local injection of GABA agonists (muscimol, THIP) or an inhibitor of GABA degradation (gamma-vinyl GABA) suppresses generalized non convulsive seizures, whether they are genetically determined or induced by systemic injections of gamma-butyrolactone (100 and 200 mg/kg), pentylenetetrazole (20 mg/kg) or THIP (7.5 mg/kg). The ascending dopaminergic nigral output or the GABAergic fibres to the ventromedial thalamus are not critically involved in this control system. By contrast, the GABAergic nigro-collicular pathway appears crucial: bilateral lesion of the superior colliculus abolishes the anti-epileptic effects of intranigral injection of muscimol and blockade of the GABAergic transmission within the superior colliculus results in a suppression of generalized non-convulsive seizures. Finally, activation of collicular cell bodies by low doses of kainic acid significantly suppresses absence seizures. These results suggest the existence of a control system inhibiting generalized non-convulsive seizures which is activated by the release of the tonic inhibition exerted by the nigral GABAergic fibres on collicular neurons. The similarities between this system and the control system described for convulsive seizures are discussed.

Animals↗

Failure to find causal mutations in the GABA(A)-receptor gamma2 subunit (GABRG2) gene in Japanese febrile seizure patients.

Recently, mutations in the GABA(A)-receptor gamma2 subunit (GABRG2) gene were identified in two families with generalized epilepsy with febrile seizures plus (GEFS+) and two families with childhood absence epilepsy (CAE) and febrile seizures (FS). We tested the hypothesis that genetic variations in the GABRG2 gene confer susceptibility to FS in the Japanese population. We performed a systematic search for mutations in 94 unrelated Japanese patients with FS and detected six variants (-158C>T, 315C>T, 588T>C, IVS5-55C>T, IVS7+20G>A, and IVS7-141T>A). No non-synonymous mutation was detected. We genotyped three exonic polymorphisms and performed a case control study and a transmission disequilibrium test using 55 independent complete trios with FS and 106 control subjects. None of these polymorphic alleles were significantly associated with FS. Our results indicate that genomic variations of GABRG2 are not likely to be substantially involved in the etiology of FS in the Japanese population.

Alleles↗

Referral patterns of family physicians may allow population-based incidence studies of childhood epilepsy.

PURPOSE: To evaluate the burden of illness of childhood epilepsy on patient, care giver, and society, representative incidence cohorts must be followed longitudinally. Case ascertainment through pediatricians and neurologists would be a valid method if family physicians refered all new cases of childhood epilepsy. The study objective was to determine whether family physicians' referral patterns in Southwestern Ontario make it possible to conduct a population-based incidence study of childhood epilepsy by sampling only from specialists' practices. METHODS: Of the 1,718 family physicians practicing in Southwestern Ontario, a systematic sample participated in a mailed survey. Case simulations describing seven types of childhood seizures were presented to physicians with instructions to respond as to whether they would investigate/manage without referral; refer to a specialist only if problems occurred; or refer to a specialist always. RESULTS: Of 214 family physicians, 185 (86.4%) returned completed surveys; 86% would not refer a child with a febrile seizure. Referral to a specialist would be made always by 93% of family physicians for patients with status epilepticus, 95% for worsening partial epilepsy, 82% for a first, brief, generalized clonic seizure, 80% for absence epilepsy, and 99% for neonatal seizures. Only 50% of family physicians would always refer a neurodevelopmentally abnormal child with generalized clonic epilepsy, but a further 37% would refer if problems occurred. CONCLUSIONS: It is feasible to recruit a representative population-based cohort of recently diagnosed patients for epidemiologic studies of childhood epilepsy by surveying pediatricians and neurologists. These survey results could be used to adjust estimates of incidence obtained through specialists' practices for the bias in case ascertainment that may result from this practical method.

Ambulatory Care↗

Calcium channel beta 4 (CACNB4): human ortholog of the mouse epilepsy gene lethargic.

The mouse neurological mutant lethargic (lh) is characterized by ataxia, focal myoclonus, and absence epilepsy due to a loss-of-function mutation in the beta4 subunit of the voltage-gated calcium channel. To evaluate the role of this channel subunit in human neurological disease, we determined the chromosomal location and intron/exon structure of the human CACNB4 gene. The 1560-bp open reading frame of the CACNB4 cDNA predicts a 58-kDa protein with an amino acid sequence that is 99% identical to the rat protein. The 13 coding exons of CACNB4 span >55 kb of genomic DNA. Human cerebellar RNA contains one major CACNB4 transcript that is 9 kb in length. Expression of CACNB4 was detected in cerebellum, kidney, testis, retina, lymphoblasts, and circulating lymphocytes. Retinal transcripts were localized by in situ hybridization to ganglion cells and the inner nuclear layer. Analysis of the GeneBridge 4 radiation hybrid mapping panel localized CACNB4 to position 791 cR on human chromosome 2, in a conserved linkage group on human 2q22-q31 and mouse chromosome 2. We localized CACNB4 to the 1.3-Mb YAC clone 952F10 in Whitehead contig WC861, along with the polymorphic markers D2S2236 and D2S2299. The chromosomal linkage of three of the four beta subunit genes to homeobox gene clusters associates the evolutionary origin of the beta gene family with the events that generated the four HOX clusters early in vertebrate evolution.

Alternative Splicing↗

Brainstem stimulation during sleep evokes abnormal rhythmic activity in thalamic neurons in feline penicillin epilepsy.

Some periods in the sleep-waking cycle are more seizure prone than others. In absence epilepsy, transition periods between nonrapid-eye-movement (nonREM) sleep and waking or REM sleep can be more seizure prone that stable states. One feature of transition periods that is hypothesized to promote seizure activity is the presence of coincident activity in ascending brainstem reticular formation (RF) arousal systems with synchronized thalamo-cortical activity. To evaluate this hypothesis we examined the state-dependent effects of low intensity RF stimulation on thalamic single unit activity in control conditions and following systemic penicillin-G administration to adult cats. In control conditions, RF stimulation during waking and REM sleep typically evoked a short-latency action potential in thalamic neurons. The same stimulation during nonREM sleep commonly evoked a high frequency burst of action potentials followed by a period of suppressed discharge. In 16/26 neurons, a second rebound burst of action potentials followed the period of discharge suppression. The average interval between the initial and rebound bursts was 75.1 +/- 6.0 ms, which was similar to the interburst interval recorded in these same cells during spontaneous EEG spindles. Following administration of penicillin-G, RF stimulation during nonREM sleep evoked high frequency burst firing, followed by 1-2 rebound bursts in 21/22 thalamic neurons. The average evoked interburst interval was 152.5 +/- 7.3 ms, a value comparable to the interburst interval displayed by these same cells during spontaneous spike-wave seizure activity (157.8 +/- 8.7 ms). RF-evoked rhythmic discharges were dependent upon the presence of thalamocortical synchronization, as responses evoked during waking and REM sleep in penicillin treated cats were similar to those observed in control conditions.

Animals↗

Epilepsy: relationships between electrophysiology and intracellular mechanisms involving second messengers and gene expression.

It is well known that pure absence epilepsy is a benign form of seizure disorder, while most others, particularly partial and convulsive seizures may have transient or permanent deleterious consequences and are more difficult to bring under therapeutic control by anticonvulsants. The hypothesis is proposed that the preservation of GABA-ergic inhibition in absence attacks and its breakdown in most other seizures may explain these differences. Breakdown of GABA-ergic inhibition allows NMDA receptors to become active. This opens the way for Ca2+ to enter the cell. Such Ca2+ entry is a long-lasting phenomenon. It is likely to be massive during most seizures except during absence attacks, and may therefore damage the neuron transiently or permanently. It may even destroy it. Ca2+ entry is also a crucial factor in the activation of the second messenger cascade which involves cytosolic as well as nuclear (genomic) components. Activation of this cascade converts short-lived electrophysiological processes occurring at the membrane into much longer-lasting intracellular processes. These may include plastic changes at the synaptic and receptor level and may account for kindling and the increasing therapy-resistance of long-standing seizure disorders. Changes resulting from massive Ca2+ entry into the neuron may explain why most seizures, except absence attacks, may have deleterious consequences of various kinds, some short-lived, some of longer duration, and some even permanent.

Animals↗