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Biomedical subjects

M Vergnes

Publications and source records attributed to M Vergnes.

At least 73 records · Page 4Linked to original sources

Effects of 3-hydroxy,3-ethyl,3-phenylpropionamide (HEPP) on rat models of generalized and focal epilepsy.

The GABA withdrawal syndrome (GWS) is a new model of focal epilepsy in which paroxysmal activity is induced through the interruption of a chronic, intracortical infusion of GABA. Preliminary studies have shown extraordinary resistance of this epileptogenic activity to classic anticonvulsants including diazepam, the most effective agent for treating status epilepticus. However, GWS can be inhibited by GABA itself. The rat with petit mal-like seizures is a genetic model of generalized non-convulsive epilepsy (GNCE), with behavioral characteristics and electrical (spike-and-wave discharges) signs resembling absences. Moreover, GABAmimetics aggravate this type of seizure. Rats with GWS induced by cessation of a localized GABA infusion (50 micrograms/microliters/h for 24 h), and the rat model of GNCE, were treated with HEPP, a new anticonvulsant agent. In the case of GWS, the drug produced a significant decrease of focal spike activity in animals which started discharging at low frequencies while in rats with higher frequency discharge, HEPP was without effect. HEPP administered on the second day of the GWS in naive rats had no effect. In rats with GNCE, doses of 50 and 100 mg/kg i.p. blocked the spike-and-wave discharges. The higher dose produced sedation in this absence seizures model. Although the mechanism of action of HEPP is still unknown, its unique antiepileptic profile deserves further studies.

Animals↗

Section of the corpus callosum in kainic acid induced seizures in rats: behavioral, electroencephalographic and neuropathological study.

Clinical and experimental data suggest that the role of corpus callosum in epilepsy includes synchronization, spread, excitation and inhibition. Section of the corpus callosum (SCC) is known to be a useful therapy in selected types of generalized epilepsy, i.e., tonic, atonic and generalized convulsive seizures, but not partial seizures which may be exacerbated by this procedure. The goal of this study was to determine the effect of SCC in the kainic acid (KA) model of limbic seizures in rats. Using several doses of KA (2.5, 5 and 10 mg/kg) injected systemically, we found a potentiation of the behavioral, electrographic and histological effects of KA in the SCC group of animals compared to the sham-operated control rats. A low dose of kainic acid (2.5 and 5 mg/kg) induced status epilepticus in the SCC animals, but not in the sham-operated control rats. These data demonstrate that in the KA model of temporal lobe seizures, SCC not only fails to protect, but actually intensifies seizures. This finding is compatible with the hypothesis that there is an inhibitory influence, via the corpus callosum, of the non epileptic neocortex on its contralateral homologue in the kainic acid model.

Animals↗

Corpus callosotomy in the lithium-pilocarpine model of seizures and status epilepticus.

Section of the corpus callosum (SCC) is a useful surgical therapy in selected types of epilepsy, i.e., tonic, atonic, and intractable generalized convulsive seizures. Experimentally, the effects of SCC have been documented in animal models of focal seizures as well as generalized seizures. The object of this study was to determine the effect of SCC on behavioral and EEG symptomatology in the lithium-pilocarpine model of seizures and status epilepticus in the rat. SCC was well tolerated. Fifty-seven percent of SCC animals never developed status epilepticus, while all control animals developed status epilepticus. None of the SCC animals died after 24 h but 59% of control animals died within 24 h of status. Histology verified the extent of the SCC and demonstrated widespread brain damage in all animals who exhibited status epilepticus after 72 h. SCC was associated with a lesion of hippocampal commissure in 64% of animals in the SCC group. This protective effect was not related to lesion of the skull or the longitudinal sinus. The lesion of the hippocampal commissure may have contributed to the protective effect of SCC, since animals with an isolated lesion of the hippocampal commissure without SCC survived the status and showed an increased latency to seizure and status epilepticus. These data suggest that the lithium-pilocarpine model of status epilepticus may be useful in the study of the mechanism of efficacy of SCC in the treatment of epilepsy.

Animals↗

Intrathalamic injections of gamma-hydroxybutyric acid increase genetic absence seizures in rats.

The effects of intrathalamic injections of gamma-hydroxybutyric acid (GHB) and of NCS 382 85, a specific antagonist of GHB receptors, were evaluated in rats with spontaneous generalized absence epilepsy. Bilateral injections of GHB (25 and 50 micrograms/side) into the mediolateral thalamus increased spontaneous spike and wave discharges (SWD) in a dose-dependent fashion. This effect was suppressed by administration of NCS 382 85 (50 micrograms/side). Bilateral injection of NCS 382 85 alone (50 and 100 micrograms/side) into the same sites had no effect on SWD duration. Injection of GHB or NCS 382 85 into the midline thalamus and the area of reticular nuclei did not modify the SWD. These data suggest that GHB receptors in the mediolateral thalamus may be involved in the control of spontaneous SWD in this rat model of petit mal epilepsy.

Animals↗

Evidence for a critical role of GABAergic transmission within the thalamus in the genesis and control of absence seizures in the rat.

The involvement of GABAergic transmission within the thalamus in the generation and control of spike and wave discharges (SWD) in generalized non-convulsive or absence epilepsy was studied in rats with spontaneous SWD and in non-epileptic rats. In epileptic rats, bilateral injections of gamma-vinyl GABA (GVG, 10 micrograms/side) or muscimol (10 ng/side) into the medial part of the ventral lateral thalamus, i.e. the specific relay nuclei, significantly increased spontaneous cortical SWD whereas similar injections into the most lateral part of the thalamus, i.e. the area of the reticular nuclei, significantly suppressed these seizures. Injections of GVG (20 micrograms) or muscimol (20 ng) into the midline thalamus had no direct effect on the spontaneous SWD. In non-epileptic rats, injections of GVG (25 micrograms/side) or muscimol (100 ng/side) into the thalamic relay nuclei produced short SWD on the cortical EEG. These results suggest that GABAergic neurons in the reticular nuclei and their projections to the specific relay nuclei of the thalamus are involved in the elicitation and control of generalized non-convulsive seizures.

Aminocaproates↗

Local cerebral glucose utilization in rats with petit mal-like seizures.

The quantitative 2-[14C]deoxyglucose autoradiographic method was applied to the measurement of local cerebral metabolic rates for glucose in a model of genetic petit mal-like seizures in a strain of Wistar rats. During the experimental period, epileptic rats exhibited synchronous spike-and-wave discharges recorded from the cerebral cortex, whereas the electroencephalographic pattern of control animals was normal. An overall consistent increase in local cerebral metabolic rates for glucose was observed in epileptic rats as compared to nonepileptic control rats. This increase was statistically significant in 52 of the 59 cerebral structures studied and concerned all cerebral functional systems. These results are in accordance with positron emission tomography measurements in humans with typical childhood absence epilepsy. There is a lack of anatomical correlation between areas demonstrating hypermetabolism and areas where spike-and-wave discharges are recorded. Thus, the diffuse increase in cerebral energy metabolism in epileptic rats as compared to controls is not directly related to the occurrence of spike and wave discharges.

Animals↗

Opposite effects of agonist and inverse agonist ligands of benzodiazepine receptor on self-defensive and submissive postures in the rat.

The effects of benzodiazepine receptor ligands on different types of defensive behaviours were examined in intruder male rats confronted with offensive residents. Chronic administration, via a subcutaneous silastic pellet, of a full agonist (diazepam) for 15 days increased self-defensive postures as well as social and non-social behaviour whereas submissive postures and flight were reduced. Acute administration of a partial agonist (ZK 91296) resulted in a similar increase in self-defensive postures and a decrease of submission and non-social elements. Acute administration of a partial inverse agonist (FG 7142) reduced defensive postures and social behaviour whereas submissive postures were increased. These results show that activation of benzodiazepine receptors by full or partial agonists increased self-defensive responses to attacks by a conspecific, while decreasing submissive postures. On the contrary, "inverse activation" of these receptors by an inverse agonist increased submissive postures while decreasing self-defensive responses. These data suggest that benzodiazepine receptors are involved in the control of the animal's strategy to respond to an attack of another rat.

Aggression↗

Lesions of noradrenergic neurons in rats with spontaneous generalized non-convulsive epilepsy.

The role of noradrenergic neurons in the control of a spontaneous generalized non-convulsive epilepsy (GNCE) was investigated. In rats with genetic spontaneous absence seizures, we produced lesions using 2 neurotoxins: 6-hydroxydopamine (6-OHDA) and N-(2-chloroethyl)-N-ethyl-2-bromobenzylamine (DSP4). Lesions of noradrenergic neurons were made either in pups by neonatal 6-OHDA intraperitoneal (i.p.) injection (2 x 100 mg/kg) or in adult rats by i.p. administration of DSP4 (60 mg/kg) or bilateral microinjection of 6-OHDA in the locus coeruleus (LC) (4 micrograms/microliters, 2 microliters/side). Effectiveness of the lesions was controlled by measuring dopamine (DA) and noradrenaline (NA) contents in the brains. Neonatal 6-OHDA administration did not lead to any difference in seizures in adult animals, compared with control rats. DSP4 injections and LC lesions with local injections of 6-OHDA produced a transient increase of the seizures. Within one to two weeks, the seizure duration went back to prelesion levels. No seizure occurred when the same lesions were performed in non epileptic rats. These results suggest that NA is not involved in the genesis of this generalized non-convulsive epilepsy; they confirm that NA participates in the control of seizures in this model, but the rapid development of compensatory mechanisms shows that this control is not critical.

Animals↗

Are rats with genetic absence epilepsy behaviorally impaired?

Absence seizures in humans are characterized by unresponsiveness to external stimuli and inactivity. However, in typical generalized non-convulsive epilepsy in children, intellectual capacities are considered to be normal. Wistar rats from an inbred strain with spontaneous absence-like seizures were compared with rats from the outbred control strain in various behavioral tasks in order to detect possible impairments related either to the absence epilepsy or to occurrence of spike and wave discharges (SWD). Spontaneous circadian locomotion, exploratory activity in an open field, social interactions with an unfamiliar conspecific and mouse killing behavior were similar in both strains. Avoidance learning in a shuttle box or food reinforced learning in a Skinner test were unimpaired or even improved in epileptic rats. During performance of a learned task either in the Skinner box or in a conditioned sound-bar pressing task, SWD were suppressed in epileptic rats as long as they were working for reinforcement. SWD reappeared when the motivation to perform the task had declined: unresponsiveness to a conditioned stimulus was then observed during SWD. These data are in agreement with observations commonly described in children with typical genetic absence epilepsy.

Aggression↗

Mapping of spontaneous spike and wave discharges in Wistar rats with genetic generalized non-convulsive epilepsy.

Electrical activity was recorded in different parts of the brain in Wistar rats from a strain with genetic generalized non-convulsive epilepsy (GNCE or absence epilepsy). Movable bipolar electrodes were lowered stereotaxically by 1 mm steps into the brain in immobilized animals. Spontaneous spike and wave discharges (SWD) of the largest amplitude were recorded in the cortex and in lateral nuclei of the thalamus where they appeared occasionally to precede. Smaller amplitude SWD were recorded in the striatum, hypothalamus, tegmentum and substantia nigra. No SWD were recorded in limbic structures. Partial limbic seizures induced by the introduction of the electrode did not interfere with occurrence of cortical SWD. These results confirm the primacy of thalamocortical involvement in SWD of GNCE. The absence of spread to limbic structures and the implication of a precisely limited substrate in GNCE accounts for the clinical and pharmacological specificity of this particular kind of epilepsy.

Animals↗

Potentiation of gamma-vinyl GABA (vigabatrin) effects by glycine.

Vigabatrin, because of its ability to increase brain GABA concentration, acts as an anticonvulsant on convulsive epileptic seizures and increases seizures in generalized non-convulsive epilepsy. Next to GABA, glycine is one of the most important inhibitory neurotransmitter amino acids. We studied the influence of glycine on the effects of treatment with vigabatrin in two rat models of generalized convulsive seizures and a rat model of spontaneous generalized non-convulsive seizures. Glycine (750 mg/kg i.p.) or vigabatrin (200 mg/kg i.p.), when given alone, provided partial protection against convulsive seizures, while combined treatment with the two drugs significantly suppressed the convulsive seizures in both the mercaptopropionic acid (MPA)-induced seizures and audiogenic seizures. In contrast to the response to treatment with each individual drug, the drug combination nearly abolished the appearance of isolated spikes on the EEG in MPA seizures. On the other hand, glycine also enhanced the aggravating effect of vigabatrin on spontaneous spike and wave discharges in a rat model of genetic absence epilepsy, whereas glycine or vigabatrin alone, at the above doses, produced only a slight, non-significant increase in spontaneous spike and wave discharges. The GABA-glycine interaction is the first example of a synergistic action of two inhibitory neurotransmitters on seizure-related pathological discharges.

3-Mercaptopropionic Acid↗

The GABAergic nigro-collicular pathway is not involved in the inhibitory control of audiogenic seizures in the rat.

Involvement of the GABAergic nigro-collicular pathway in the control of audiogenic seizures was examined in genetically sensitive rats by studying the effects of bilateral injections into the substantia nigra of muscimol, a gamma-Aminobutyric acid (GABA) agonist, and those of bilateral injections into the superior colliculus of picrotoxin, a GABA antagonist, and of muscimol. Microinjections of muscimol (20-80 ng/side) into the substantia nigra and microinjections into the superior colliculus of picrotoxin (20 and 40 ng/side) both failed to suppress audiogenic seizures. Following injections into the superior colliculus, audiogenic seizures were in fact facilitated by picrotoxin and suppressed by muscimol. These results suggest that the nigro-collicular GABAergic pathway is not involved in the inhibitory control over audiogenic seizures. Conversely, a different GABAergic mechanisms may be involved in the superior colliculus in the control of this form of epilepsy.

Acoustic Stimulation↗

Immediate effects of 14 non MAOI antidepressants in rats with spontaneous petit mal-like seizures.

1. Wistar rats of a strain presenting spontaneous petit mal-like seizures were injected intraperitoneally with graded doses of 14 non-monoamine oxidase inhibitor antidepressants and the immediate effects on behavior and the EEG were recorded. 2. Amineptine and nomifensine, the two drugs interacting with dopaminergic neurotransmission, reduced the duration of spontaneous spike-wave discharges (SWD) and were thus potentially antiepileptic. 3. Trazodone increased SWD duration. 4. The antidepressants, imipramine-like (imipramine, chlorimipramine, desipramine, metapramine and amitriptyline) and non-imipraminic (minaprine, maprotiline, viloxazine, mianserin, fluvoxamine and indalpine), and the 3 noted above, had potentially convulsive effects.

Animals↗

Involvement of the nigral output pathways in the inhibitory control of the substantia nigra over generalized non-convulsive seizures in the rat.

Activation of GABAergic transmission within the substantia nigra has been shown to suppress several forms of generalized seizures in experimental models of epilepsy. More especially, such pharmacological manipulations suppress spontaneous and chemically-induced generalized non-convulsive seizures in the rat. The aim of the present study was to examine the role of the dopaminergic and GABAergic thalamic and collicular nigral outputs in this antiepileptic effect. For this purpose, we examined the effects of output destruction on the antiepileptic effect of intranigral injections of a GABA agonist or pharmacological blockade of the neurotransmission at the nerve terminal level in rats with spontaneous absence seizures. After selective destruction of dopaminergic neurons within the substantia nigra with 6-hydroxydopamine (5 micrograms/side) or hemisection of the ascending nigral output, bilateral intranigral injection of muscimol (2 ng/side) still significantly suppressed generalized non-convulsive seizures. Bilateral lesioning of the ventromedial nucleus of the thalamus did not abolish the antiepileptic effects of intranigral muscimol (2 ng/side) and the GABA antagonist, picrotoxin, when given into this thalamic nucleus (10 ng/side) also failed to induce suppression of spike and wave discharges. The antiepileptic effects of intranigral injection of muscimol (2 ng/side) was reversed by bilateral electrolytic lesions of the superior colliculus. Blockade of the GABAergic transmission at this level with picrotoxin (40 ng/side) significantly suppressed generalized non-convulsive seizures. Finally, excitation of collicular cell bodies with low doses of kainic acid (4 and 8 ng/side) also resulted in a suppression of spike and wave discharges. These results demonstrate that the GABAergic nigrocollicular pathway is critical for the inhibitory control of the substantia nigra over generalized non-convulsive seizures. The data further suggest that antiepileptic effects observed following potentiation of GABAergic transmission in the substantia nigra result from a disinhibition of collicular cell bodies.

Animals↗

Suppression of spontaneous generalized non-convulsive seizures in the rat by microinjection of GABA antagonists into the superior colliculus.

Intranigral injections of GABA agonists suppress spontaneous and chemically induced generalized non-convulsive seizures in the rat. In order to examine whether the GABAergic nigrotectal pathway could be involved in this suppression, bilateral injections of GABA antagonists were performed in the superior colliculus of rats with spontaneous generalized non-convulsive seizures. Bilateral microinjections into this structure of the GABA antagonists picrotoxin (20 and 40 ng/side) and bicuculline methiodide (5 ng/side) suppressed spike-and-wave discharges for 40 min and 20 min post injection, respectively. Unilateral injections of picrotoxin (40 ng) into the superior colliculus as well as bilateral injections of a GABA agonist (muscimol; 80 ng) did not induce significant modifications. These results show that blockade of the GABAergic transmission at the level of the superior colliculus results in a suppression of generalized non-convulsive seizures. These data support the hypothesis that the suppressive effect of intranigral injections of GABA agonists over generalized non-convulsive seizures involves, at least in part, the nigrotectal GABAergic pathway.

Animals↗