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Biomedical subjects

D M Treiman

Publications and source records attributed to D M Treiman.

At least 37 records · Page 2Linked to original sources

Functional mapping of the early stages of status epilepticus: a 14C-2-deoxyglucose study in the lithium-pilocarpine model in rat.

Continuous convulsive activity in status epilepticus generally does not occur suddenly in response to the inciting epileptogenic agent, but is rather the culmination of a stereotyped sequence of stages. Initially seizures are discrete, then undergo waxing-and-waning of convulsive/electroencephalographic severity. Following a transitional EEG-recorded fast-and-slow spiking phase, continuous fast spiking with invariant convulsive behavior ensues. We sought to map the seizure anatomic substrates corresponding to these stages, utilizing the 14C-2-deoxyglucose technique, in order to make inferences about underlying mechanisms. The lithium-pilocarpine status epilepticus model in rat was employed. Cerebral autoradiographs associated with discrete seizures revealed non-uniform cerebral metabolic activation, with rostral cortical and olfactory areas especially involved. Portions of basal ganglia were also activated, consistent with projections from seizure-activated areas. Successive stages of status entry displayed additional limbic and cortical activation, along with subcortical projection sites, so that by fast-and-slow spiking most forebrain areas were recruited. Based on these results, a model is proposed whereby cyclical seizure-attenuating mechanisms cause, in the initial stages of status entry, fluxing of seizure anatomic extents between small and large cerebral domains, with corresponding cycling of convulsive severity. In the later stages of status entry, these mechanisms become ineffective, resulting in steady-state maximal forebrain recruitment, associated with continuous and invariant convulsive behavior and electrographic fast spiking.

Animals↗

Functional mapping of the late stages of status epilepticus in the lithium-pilocarpine model in rat: a 14C-2-deoxyglucose study.

Pilocarpine administration to lithium chloride-pretreated rats results initially in discrete convulsive seizures, each behaviorally and electroencephalographically terminated, which then progress to convulsive activity with waxing-and-waning behavioral and electrographic severity; finally, a continuous convulsive state ensues, associated electrographically with continuous fast spiking. This stage does not last indefinitely but is followed by a dramatic electrographic change to periodic epileptiform discharges. The purpose of the present study was to determine with the 14C-2-deoxyglucose functional mapping technique what changes occur in the seizure anatomic substrate during and after this transition, in order to enable inferences about underlying mechanisms. Behavior associated with early and late continuous fast spiking consisted of head twitching; corresponding deoxyglucose autoradiographs displayed seizure-induced intense glucose utilization in most forebrain areas; extranigral brainstem was normal. At 2-3 h of status, fast spiking became interrupted by flat periods; periodic complexes soon dominated the electroencephalogram. Behaviorally, convulsive severity increased. Despite this dramatic electrographic evolution, little change in generalized forebrain metabolic hyperactivation occurred, except that the zona incerta/pretectal/superior colliculus complex displayed markedly increased activity. Deoxyglucose studies in late stages of periodic epileptiform discharges established a sequence of further changes. In late periodic discharges with clonic jerks, at 4 h after status entry, generalized forebrain hyperactivation still prevailed, but to a lesser degree than in early periodic discharges with clonic jerks. At a still later stage, late periodic discharges, subtle convulsive, autoradiographs revealed constriction of the seizure-activated anatomic substrate: hyperactivation was lost in most of neocortex and thalamus, and in caudal olfactory structures, cortical amygdala, and entorhinal areas, but retained in deep occipital cortex and many limbic areas. In the last stage, late periodic discharges, electrical, not associated with convulsive behavior, autoradiographs revealed residual activation in only Ammon's horn; in contrast, much of the forebrain displayed below-normal glucose utilization. These results demonstrate that in the later stages of status epilepticus, the transition from fast spiking to periodic complexes is not associated with a reduction in the seizure anatomic substrate. The electrographic entity of periodic epileptiform discharges is not anatomically or behaviorally homogeneous, but proceeds through successive stages characterized initially by a reduction of glucose utilization within generalized seizure-activated forebrain, then a contraction of the seizure anatomic substrate. Possible mechanisms underlying the transition to periodic complexes are discussed.

Animals↗

Cardiac hypertrophy secondary to status epilepticus in the rat.

Status epilepticus was induced in rats by sequential injections of lithium and pilocarpine. Seizure activity was aborted by a combination of MK-801 and diazepam, with status duration ranging from 3 to 180 min. When the hearts were examined 8-12 days later, rats that had experienced an episode of status epilepticus had significantly heavier hearts than did controls. The nature of the cardiac tissue changes was not examined, and deserves further study.

Animals↗

Electroclinical features of status epilepticus.

Status epilepticus (SE) is a condition wherein epileptic seizure discharges are sufficiently prolonged or repetitive so as to produce persistent alterations in neurologic function and in the underlying physiologic and neurochemical activities of the brain. Thus, the definition of SE now includes any disorder in which there is sustained and prolonged excitation of neurons. Electroencephalographic (EEG) patterns associated with specific types of SE are important components in their classification. Like epileptic seizures, SE can be divided into partial onset SE and primarily generalized SE. Partial onset SE includes secondarily generalized convulsive SE (GCSE), complex partial SE (CPSE), simple partial SE (SPSE), and the syndromes of epilepsia partialis continua (EPC) and rolandic SE (RSE). Primarily generalized SE includes primarily GCSE, absence SE, atypical absence SE, generalized myoclonic SE, generalized clonic SE, generalized tonic SE, atonic SE, and the syndromes of electrical SE of sleep (ESES) and minor epileptic SE of Brett. SE is a dynamic disorder. Behavioral and electrical manifestations change over time if seizure activity is allowed to persist without successful treatment A progression from overt to subtle convulsive activity occurs in secondarily GCSE and there is also a progression of predictable EEG changes in prolonged GCSE. CPSE begins as discrete complex partial seizures but also progresses behaviorally and electrically through a sequence similar to that observed in GCSE. Progressive behavioral and electrical changes have not been reported in primarily generalized forms of SE. EEG is an important tool for verifying successful treatment of SE if the patient does not immediately recover neurologic function. EEG recordings also contribute substantially to understanding the mechanisms of, and development of better treatments for, human SE through their use in the study of experimental SE in the laboratory.

Animals↗

Interictal spiking increases 2-deoxy[14C]glucose uptake and c-fos-like reactivity.

Although interictal spikes are thought to share pathophysiological mechanisms with partial-onset seizure discharges, positron emission tomographic studies of the interictal state have paradoxically shown focal hypometabolism whereas seizures produce hypermetabolism. To address this question, we performed functional mapping studies in an interictal spiking model in the rat. Recording screw electrodes were inserted through the skull bone so as to depress underlying cortex. Interictal spiking was subsequently induced by systemic administration of bicuculline methiodide. 2-deoxy[14C]glucose studies revealed increased glucose utilization in superficial and middle cortical layers at spiking screw sites. Nonspiking screw sites in the same animals and in controls did not show increased uptake. Convulsive seizures caused additional 2-deoxy[14C]glucose uptake at screw sites and in widespread forebrain areas. c-fos immunoreactivity occurred in superficial cortex at interictal spiking, but not nonspiking, sites. Convulsive seizures induced widespread forebrain c-fos immunoreactivity. These data suggest interictal epileptiform activity occurs in cells adjacent to cortical injury; these activate deeper layers via local connections. Interictal and ictal epileptiform states share common mechanisms, as both induce glucose hypermetabolism and immediate-early gene product activation. Possible reasons for failure to detect hypermetabolism in interictal human subjects are discussed.

Animals↗

Effect of an adenosine antagonist and an adenosine agonist on status entry and severity in a model of limbic status epilepticus.

Adenosine is an endogenous neuromodulator that suppresses excitatory neurotransmission. We postulated that adenosine-mediated mechanisms resist status epilepticus (SE) entry and limit SE severity. In the first experiment rats were given an adenosine agonist (2-chloroadenosine), an adenosine antagonist (aminophylline), or saline vehicle, prior to SE induction with pulsed-train current delivered to amygdala in successive 5-min current-on sessions. Saline-treated animals entered limbic SE, with predominantly exploratory behavior, after 6.0 +/- 0.9 current-on sessions. Aminophylline increased major convulsive activity during stimulation and resulted in entry into convulsive SE after only 2.1 +/- 0.1 sessions. 2-Chloroadenosine, in contrast, suppressed major convulsive activity during stimulation, and blocked (in 3/7) or delayed (4/7) SE entry, with successes requiring 12.8 +/- 0.9 stimulation sessions. In a second experiment, animals already in exploratory SE were administered a single injection of saline vehicle, aminophylline, or 2-chloroadenosine. Aminophylline converted exploratory SE into lethally severe convulsive SE. 2-Chloroadenosine suppressed SE behaviorally and electrographically, and protected recipients from the seizure-associated cerebral damage seen in saline-administered SE controls. These results support the hypothesis that endogenous adenosine mechanisms resist SE entry, modulate the severity of ongoing SE, and limit the anatomic spread of seizure activity.

2-Chloroadenosine↗

Treatment of experimental status epilepticus with the GABA uptake inhibitor, tiagabine.

The potential clinical efficacy of tiagabine for control of status epilepticus was evaluated in an experimental model. Tiagabine was administered to cobalt-lesioned rats in which status epilepticus was induced by injection of homocysteine thiolactone. Tiagabine was effective in controlling status epilepticus in this model; the median effective dose for control of generalized tonic-clonic seizures in the model was 8.3 mg/kg. Tiagabine administration produced an abnormal, hypo-reactive behavioral state which was accompanied by an EEG pattern of high-amplitude, frontally dominant, rhythmic, 3-5-Hz spike-wave activity. This EEG and behavioral syndrome could be reproduced by administration of tiagabine to normal, non-epileptic rats. The exact nature of this syndrome remains unclear, but whether it is an epileptic or encephalopathic phenomenon, further study is clearly required before this drug should be considered for use in the treatment of human status epilepticus.

Animals↗

A new, non-pharmacologic model of convulsive status epilepticus induced by electrical stimulation: behavioral/electroencephalographic observations and response to phenytoin and phenobarbital.

Much remains to be learned about mechanisms underlying entry into, and temporal progression of, status epilepticus (SE). This report describes a non-pharmacologic model of generalized convulsive SE in rat. Pulsed trains of suprathreshold electric current, were administered bilaterally to either of four rostral forebrain sites: orbital cortex, medial precentral cortex, deep prepiriform cortex, or rostral caudate-putamen (n = 8 per site). This induction method resulted in 30/32 animals attaining limb-clonic convulsive SE within a mean of 30-35 min for each forebrain site, with no differences between sites. Subsequent SE proceeded without further interventions, permitting observation of the natural course of progression. A stereotyped behavioral/electrographic sequence occurred, characterized by devolution. Behaviorally, animals progressed from predominantly limb clonus to head clonus, then to subtle twitching, and finally to electrical SE before cessation of spikes. The corresponding electrographic progression was from fast and slow spiking to periodic epileptiform discharges (PEDs). In 20 animals surviving to 48 h, pathologic damage affected mainly limbic sites; damage was related to total convulsive time rather than to clonic activity. High-dose phenobarbital but not phenytoin suppressed SE when given during orbital cortex-induced limb-clonic SE. These findings are compatible with human observations and indicate that this model will enable investigations of generalized SE mechanisms and evaluation of new therapeutic agents for refractory SE.

Animals↗

Flunarizine for treatment of partial seizures: results of a concentration-controlled trial.

The National Institutes of Health sponsored a randomized, double-blind, multicenter, placebo-controlled trial of flunarizine (FNR) in epileptic patients receiving concomitant phenytoin (PHT) or carbamazepine (CBZ). Because of FNR's long half-life (up to 7 weeks), a parallel rather than crossover design was used. Each patient received an individualized loading dose and maintenance dosage targeted at a 60-ng/ml plasma FNR concentration. Of 93 patients randomized, 92 provided seizure data for the full 25-week treatment period; one placebo-treated patient dropped out for personal reasons. Fifty-four patients received CBZ only, nine received PHT only, and 30 received both CBZ and PHT. Eighty-seven patients had a history of complex partial seizures, and 60 had secondarily generalized seizures. Eight patients discontinued FNR prematurely, all because of adverse neurologic or psychiatric signs or symptoms; depression was the specific cause in three cases. Calculated maintenance dosages, based on single-dose pharmacokinetic profiles, ranged from 7 to 138 mg/day (mean, 40 mg/day). Plasma FNR concentrations generally exceeded the target, with the highest concentrations observed immediately after loading; excluding the first three treatment weeks and all concentrations after a FNR dosage change, the median plasma FNR concentration was 71.7 ng/ml. The percent reduction from baseline seizure rate was statistically greater (p = 0.002) in the FNR-treated group (mean, 24.4%) than in the placebo-treated group (mean, 5.7%).

Adolescent↗

Dezinamide for partial seizures: results of an n-of-1 design trial.

BACKGROUND: Dezinamide (DZM, ADD 94057) is a potential antiepileptic drug that binds to the voltage-sensitive sodium channel and showed preliminary evidence of efficacy and safety in an open-label study. METHODS: Our double-blind, placebo-controlled trial at two sites used an n-of-1 (single-patient) design. All 15 patients had medically intractable partial-onset seizures and were comedicated with phenytoin (PHT) only. Treatment was for six 5-week periods (three active paired with three placebo in random sequence). Assuming nonlinear kinetics, we used an initial pharmacokinetic profile to estimate dosages for reaching target plasma concentrations of DZM. RESULTS: Statistically significant seizure reduction was found by both a randomization test (p = 0.0025) and a signed rank test (p = 0.048). Median seizure frequency decreased 37.9%, and 40% of patients had > 50% seizure reduction, both compared with placebo. Pharmacokinetic predictions were not accurate; mean plasma concentrations fell well below target values. Plasma PHT concentrations increased (mean = 17.1%) during DZM treatment. The most common adverse experiences were fatigue, light-headedness, and abnormal gait; five patients required DZM dosage reductions. CONCLUSIONS: DZM showed minimal clinical toxicity and significant efficacy despite lower plasma concentrations than predicted by pharmacokinetics. This trial establishes the suitability of the n-of-1 design to investigational antiepileptic drug trials.

Adult↗

Generalized convulsive status epilepticus in the adult.

Status epilepticus (SE) is defined as recurrent epileptic seizures without full recovery of consciousness before the next seizure begins, or more-or-less continuous clinical and/or electrical seizure activity lasting for more than 30 min whether or not consciousness is impaired. Three presentations of SE are now recognized: recurrent generalized tonic and/or clonic seizures without full recovery of consciousness between attacks, nonconvulsive status where the patient appears to be in a prolonged "epileptic twilight state," and continuous/repetitive focal seizure activity without alteration of consciousness. Generalized convulsive status epilepticus (GCSE) encompasses a broad spectrum of clinical presentations from repeated overt generalized tonic-clonic seizures to subtle convulsive movements in a profoundly comatose patient. Thus, GCSE is a dynamic state that is characterized by paroxysmal or continuous tonic and/or clonic motor activity, which may be symmetrical or asymmetrical and overt or subtle but which is associated with a marked impairment of consciousness and with bilateral (although frequently asymmetrical) ictal discharges on the EEG. Just as there is a progression from overt to increasingly subtle clinical manifestations of GCSE, there is also a predictable sequence of progressive EEG changes during untreated GCSE. A sequence of five patterns of ictal discharges has been observed: discrete electrographic seizures, waxing and waning, continuous, continuous with flat periods, and periodic epileptiform discharges on a relatively flat background. A patient actively having seizures or comatose who exhibits any of these patterns on EEG should be considered to be in GCSE and should be treated aggressively to stop all clinical and electrical seizure activity to prevent further neurological morbidity and mortality.

Adult↗

Current treatment strategies in selected situations in epilepsy.

Several special situations in the management of epilepsy require specific treatment strategies. Recurrence rates after a single seizure vary between 26 and 71%. Antiepileptic drug (AED) therapy should be initiated after a first seizure only when a definitive diagnosis of epilepsy can be made. Although several AEDs have been shown to be anti-epileptogenic in animal models, no data yet prove the efficacy of any AED in preventing the development of post-traumatic or postoperative epilepsy. Therefore, there is no rational basis for prophylactic treatment with AEDs. The incidence of epilepsy rises dramatically after the age of 50 years. Similtaneously, many physiological changes increase the potential for adverse effects and drug interactions when AEDs are used in the elderly. Careful attention to changing pharmacokinetic parameters is necessary when that group of patients is being managed. Pregnancy also brings about physiological changes that may either increase or decrease the seizure frequency. The risk of fetal malformations is approximately double in children born to mothers with epilepsy compared with children born to nonepileptic mothers. The risk is dose-dependent and increases with the number of AEDs. All AEDs may cause fetal malformations; valproate and carbamazepine increase the risk of spina bifida. Nonetheless, the best AED for a woman who wants to become pregnant is the AED that best controls her seizures, which should be given at the lowest possible effective dose. Discontinuation of AEDs can be considered after 2-4 years of complete seizure control. Most of the risk of relapse occurs within the first 6 months. Status epilepticus (SE) is a medical emergency. The most common form of SE is generalized convulsive status epilepticus, in which the patient may present with either overt or subtle convulsions. Because of the potential for neuronal damage, all electrical as well as clinical seizure activity must be completely stopped for treatment of SE to be considered successful.

Abnormalities, Drug-Induced↗

Valproic acid treatment of experimental status epilepticus.

The efficacy of valproic acid (VPA) in control of generalized convulsive status epilepticus was tested in a rat model. Rats with cortical cobalt lesions were injected with homocysteine thiolactone to induce secondarily generalized tonic-clonic seizures (GTCS). The median effective dose (ED50) for control of GTCS was 211.9 mg/kg (270 micrograms/ml in serum 30 min post dose) when treatment was given intraperitoneally after the second GTCS. VPA entered both serum and brain very rapidly after injection, with little change in concentration from 5 to 30 min post dose. In earlier experiments with phenytoin, phenobarbital, diazepam and lorazepam in this model, we found that the serum concentrations produced by the ED50s versus GTCS were very similar to those which have been reported to be effective in treating human status epilepticus. If this same relationship holds true for VPA, we would predict that a serum concentration of around 270 micrograms/ml VPA would be required for control of generalized convulsive status epilepticus in human patients. The safety of this high a concentration of VPA has not been tested.

Animals↗