Search PubMed⌕ Search

Biomedical subjects

G Blanchet

Publications and source records attributed to G Blanchet.

At least 37 records · Page 2Linked to original sources

Soman-induced phosphoinositide hydrolysis in rat hippocampal slices: biochemical characterization.

The effects of the organophosphate acetylcholinesterase (AChE) inhibitor soman were investigated on different receptors coupled to phosphoinositide (PPI) breakdown on hippocampal slices in vitro. We observed that muscarinic receptor subtypes M1 and M3 are involved in the increase of intracellular inositol phosphate, which is consistent with the procholinergic effect of soman induced by inhibition of AChE. Although the M2 receptor subtypes are known to be coupled to the cAMP second messenger, we demonstrated that in vitro, under soman, they are also involved in the PPI turnover. The other receptor subtypes known to be linked to PPI hydrolysis are not involved in this model of stimulation.

Animals↗

Extracellular acetylcholine changes in rat limbic structures during soman-induced seizures.

Extracellular acetylcholine (ACh) levels were determined, by intracranial microdialysis, in medial septum, amygdala and hippocampus (CA1, CA3, dentate gyrus) of rats during seizures induced by systemic administration of soman (pinacolyl methylphosphonofluoridate), a potent inhibitor of acetylcholinesterase (AChE). In all septo-hippocampal areas a two phase variation was observed: a primary increase in ACh during the pre-seizures period, followed by a decline after 10 to 20 min of seizures and then a second release at 50 min of seizures. In amygdala a progressive increase of the ACh level reached a maximal value at 50 min. ACh levels than returned to basal values in all areas. Hippocampal AChE activity remained totally inhibited throughout the experiment. Possible dynamic phenomena underlying these variations (blood-brain barrier opening, autoregulation of release) are suggested. The present results are compared to previous reports about glutamate changes in the same areas during soman seizures. This comparison gives evidence that in septo-hippocampal areas the glutamatergic system is recruited after an early accumulation of extracellular ACh. The respective roles of ACh and glutamate in triggering and maintenance of soman seizures activity are discussed.

Acetylcholine↗

Effects of soman-induced seizures on different extracellular amino acid levels and on glutamate uptake in rat hippocampus.

Extracellular amino acid levels in CA3 and CA1 fields of rat hippocampus, an area highly sensitive to seizures, were determined by intracranial microdialysis during seizures induced by systemic administration of soman (o-1,2,2-trimethylpropyl methylphosphonofluoridate), a potent inhibitor of acetylcholinesterase. The glutamate uptake level was determined on another series of animals in hippocampus homogenates. An early and transient increase in the extracellular glutamate level occurred in CA3 within 30 min of seizures, with correlated brief elevations of taurine, glycine and glutamine levels. The glutamate level increased early in CA1, declined and then became more sustained (after 50 min of seizures). Apparent elevations of taurine, glycine and glutamine levels in CA1 accompanied changes in glutamate concentrations. Changes of glutamate level correlated with an increase in the glutamate uptake which rapidly declined after 40 min of seizures. The role of the transient release of glutamate in CA3 and of the sustained release in CA1 in prolonged soman-induced seizures is considered. The correlation between glutamate and other amino acid release is studied.

Amino Acids↗

Early dendritic changes in hippocampal pyramidal neurones (field CA1) of rats subjected to acute soman intoxication: a light microscopic study.

In rats poisoned with soman (s.c. 100 micrograms/kg), a potent inhibitor of cholinesterase (ChE), the numbers of dendritic spines of Golgi impregnated hippocampal pyramidal cells (CA1 sector) were evaluated within the first hour of the intoxication. Animals that experienced convulsions showed a rapid and striking decrease in the density of dendritic spines which could be reduced by nearly 80% of the controls in the basal dendrites 60 min post-soman exposure. Although the exact mechanisms cannot be determined from the present study, it is suggested that the spine loss may represent: (1) the first sign of the seizure-related neuronal changes which are known to occur later during soman intoxication; and (2) the expression of the 'dendrotoxic' effects produced by certain non-cholinergic excitatory transmitters such as glutamate.

Animals↗

Involvement of the different rat hippocampal glutamatergic receptors in development of seizures induced by soman: an autoradiographic study.

Glutamate (GLU)-receptor subtypes, (quisqualate (QA)-, kainate (KA)-, N- methyl-D-aspartate (NMDA)-receptors) and the phencyclidine sites localized in the ion-channel associated to the NMDA-receptors, were studied by autoradiography in the hippocampus of rats subjected to a convulsive dose of the acetylcholinesterase inhibitor soman (0-, 1,2,2-trimethylpropyl methylphosphonofluoridate). In intoxicated rats, a significant increase in L-[3H]-GLU binding occurred within the first 40 min of seizures in the hippocampal CA3 and CA1 areas. Whereas binding to KA- and NMDA-receptors remained unchanged, L-[3H]-GLU binding to CA3 QA-receptors increased by 31 and 50% respectively after 10 and 40 min of seizures. In CA1, the change in QA-receptors was delayed (+30% after 40 min) and accompanied by an increase in the phencyclidine site binding capacity, reflecting the probable concomitant opening of NMDA ion-channels. These findings confirmed the previously suspected involvement of GLU in the earliest stages of soman-induced seizures, and suggested that, in hippocampus, the primary activation of QA-receptors in the CA3 region could lead to the secondary recruitment of combined non-NMDA (QA) and NMDA mechanisms in CA1.

Animals↗

[Involvement of glutamatergic system of amygdala in generalized seizures induced by soman: comparison with the hippocampus].

During seizures induced by soman, an organophosphorus compound, irreversible inhibitor of acetylcholinesterase, the intra-amygdaloid microdialysis of extracellular glutamate, an excitatory amino-acid, showed a sustained increase, more rapid than in hippocampus. This result suggests an early involvement of the amygdala in the development of soman-induced seizures. Moreover, the ex vivo, study by quantitative autoradiography of the binding of tritiated TCP (thienyl-phencyclidine) does not reveal an opening of ionic channels linked to N-methyl-D-aspartate (NMDA) sensitive receptors of glutamate, during seizures, unlike in the hippocampus. This difference could indicate, according to other experimental models, that in amygdala the release of glutamate could occur massively without repeated stimuli as in the hippocampus.

Amygdala↗

Cardiovascular consequences of organophosphorus poisoning and of antidotes in conscious unrestrained rats.

The cardiovascular effects of two organophosphorus, paraoxon and soman, as well as of antidotes advocated in the treatment of these intoxications have been investigated using a computerized analysis of arterial blood pressure in conscious unrestrained rats. Intravenous administration of paraoxon as well as of soman produced a marked, sustained and dose-related increase in blood pressure associated with a bradycardia. Pyridostigmine, a quaternary carbamate, neither altered blood pressure nor heart rate. Benzodiaxepines, such as diazepam or loprazolam, and atropine induced a dose-dependent tachycardia while pralidoxime decreased heart rate. A complete therapeutic scheme including the intravenous administration of pyridostigmine 10 min. before a postpoisoning therapy made of pralidoxime, diazepam and atropine induced a transient tachycardia, which was followed, after a return to control values, by a second and more stable tachycardia concurrently to a slight hypertension. Postpoisoning therapy alone suppressed the pressor effect of soman within a few minutes after its administration. Afterwards, this therapy reduced the importance of the cardiovascular effects produced by soman. Pyridostigmine pretreatment decreased the protection afforded by postpoisoning therapy in soman-intoxicated rats. These results show that postpoisoning therapy with pralidoxime, diazepam and atropine has a noteworthy efficacy against cardiovascular manifestations of soman intoxications in the rat.

Animals↗

Seizure-related opening of the blood-brain barrier induced by soman: possible correlation with the acute neuropathology observed in poisoned rats.

In rats poisoned with soman, an irreversible organophosphate anticholinesterase, acute changes in blood-brain barrier (BBB) permeability to proteins were investigated, using Evans Blue (EB)-labelled serum albumin and plasmatic gamma-immunoglobulin G (IgG) as indicators. Confirming previously published data, soman produced a conspicuous seizure-related and reversible BBB opening which was greatest after 30 to 60 min of paroxysmal electroencephalographic (EEG) discharges when signs of cerebral hyperactivity (epileptic EEG pattern, hyperoxia) were also at their height. Topographically, the protein leakage was bilateral and restricted to anatomically defined brain structures, some of which being thereafter sites of parenchymal edema and neuronal damage. In these areas (e.g., the thalamus), the edema is probably, at least in part, "vasogenic" in origin, and the possible contribution of the transient BBB opening to the neuronal lesions was questioned. On the other hand, the hippocampus, a region preferentially affected by the soman-induced acute neuropathology, was always free of any protein leakage, suggesting that the edema is unrelated to vascular damage and "cytotoxic" in nature. Finally, no topographic relationship was shown to exist between the increase in cerebrovascular permeability produced by soman and the histochemically-detected inhibition of the parenchymal total cholinesterases (ChE) or endothelial butyrylcholinesterase (BuChE).

Animals↗

Modulation of the number of muscarinic receptors in mouse neuroblastoma cells by soman.

Long-term preincubation at 37 degrees of mouse neuroblastoma cells (clones NS-20 and N1E-115) with soman, a potent and irreversible cholinesterase inhibitor, resulted in a significant decrease in the number of [3H]N-methylscopolamine binding sites and in the inhibition of carbamylcholine-induced cyclic GMP formation. The disappearance of surface muscarinic receptors and the desensitization of the receptor-mediated response seem to occur via accumulation of acetylcholine in the culture medium. The significance of these findings is discussed.

Acetylcholine↗

[Determination of acetylcholine by inhibition of the specific binding of tritiated cis-methyldioxolane: application to the study of the effects of acetylcholine accumulation in a murine neuroblastoma culture].

The radioreceptor assay for acetylcholine (ACh) is based on the ability of the ACh to compete with the specific binding of [3H] cis-methyldioxolane to muscarinic receptors of rat cerebral cortex membranes. The technique described was used to measure ACh levels in NS 20 cells treated with an organophosphorus compound. The down regulation of muscarinic acetylcholine receptors of neuroblastoma cells observed is probably related to ACh accumulation.

Acetylcholine↗

[Effect of pinacolyl methylphosphonofluoridate on the metabolic activity of cultured neuroblastoma cells].

The effects of the highly neurotoxic organophosphate pinacolyl methylphosphonofluoridate (soman) on several cellular processes of a homogeneous neuronal cell system, Neuroblastoma cells (NS 20), has been investigated. The protein biosynthesis was measured by [14C] L-Leucine uptake and incorporation into total protein. The glycolytic energy metabolism was measured by [14C] deoxy-D- Glucose [( 14C] DG) uptake and retention. The old method [14C] D-Glucose uptake was also performed. Exposure of cells in stationary growth phase for 24 h to 10(-6) M-soman, produced a statistically significant (P less than 0.001) decrease of the [14C] L-Leucine uptake and diminution of the incorporation of the amino acid into total protein. No changes were observed at lower concentrations. When energy metabolism was measured by uptake and retention of [14C] DG, the data indicate that both uptake and utilization of D-Glucose were unaffected by 10(-6) M-soman treatment. The results suggest that soman depress the rate of protein synthesis which may be responsible for neuronal degeneration. But no changes were observed on energy metabolism.

Animals↗

[The interaction of acetylcholinesterase with thioridazine chlorohydrate and thiazinamium methylsulfate].

In reaction mixture containing 0,1 M NaCl and acetylcholine used as substrate, the kinetics of the inhibition of bovine erythrocyte acetylcholinesterase (EC 3.1.1.7) by thioridazine hydrochloride and thiazinamium methylsulfate imply the simultaneous binding of two thioridazine or thiazinamium molecules at the free enzyme and of two thioridazine molecules at the acetylated enzyme. These observations corroborate the functional participation in the inhibition mechanism of a peripheral anionic site distinct from the anionic subsite of the active center of the enzyme.

Acetylcholinesterase↗

Effects of TCP on spatial memory: comparison with MK-801.

TCP (N-[1-(2-thienyl)cyclohexyl]piperidine), A PCP (phencyclidine) derivative, has been shown to possess antiepileptic and neuroprotective efficacy against chemically induced seizures. However, it is known that other antagonists of the NMDA receptor impair spatial learning. This study was thus undertaken to explore the eventual effects of TCP on memory. The same study was done with MK-801 [(+)-5-methyl-10,11-dihydro-5H-dibenzo[a,d]-cyclohepten-5,10-imine ), one of the most studied NMDA receptor antagonists, which can be considered as a reference molecule. Three doses of each drug were chosen: 0.05, 0.1, and 0.2 mg/kg for MK-801 and 0.5, 1, and 2 mg/kg for TCP, the second dosage corresponding to the minimal required for antiseizure activity. The drugs were injected IP 30 min each day before a classical procedure of acquisition in a Morris water maze test. At the highest dose of each drug, the animals did not learn the position of the platform. At 0.1 mg/kg MK-801, the rats used a praxis strategy to find the platform but they did not known where the platform was. Contrary to MK-801, TCP at 1 mg/kg did not induce any memory impairment. At the lowest doses used, no memory impairment was found. It thus appears that, at the minimal therapeutic dose effective against chemically induced seizures (0.1 mg/kg for MK-801 and 1 mg/kg for TCP), TCP, contrary to MK-801, does not induce any memory impairment. Furthermore, at all the doses used, TCP presents the particularity that its locomotor side effects are not long lasting, being no longer observed from 30 min after the injection.

Animals↗

Medical management of organophosphate-induced seizures.

Recent studies concerning management of soman-induced seizures are reviewed. While drugs classically used against epilepsy in hospital appear ineffective against soman, muscarinic receptor blockers are shown to be able to prevent or stop seizures within the first 5 min after their onset. Benzodiazepine could also be considered as an emergency treatment useful during the first 10 min of seizure. Comparatively NMDA antagonists appear to be able to terminate soman-induced seizures even if the treatment is delayed after 40 min of epileptic activity. Drugs with both antimuscarinic and anti-NMDA properties may represent the most adequate pharmacological treatment to treat soman intoxication. However, the results obtained until now with these drugs must be completed in relation with their possible efficacy after i.m. administration. Propositions for future studies are reviewed.

Benzodiazepines↗

Clonal expansion of sequence type (ST-)5 and emergence of ST-7 in serogroup A meningococci, Africa.

One hundred four serogroup A meningococci in our collection, isolated in Africa from 1988 to 1999, were characterized by multilocus sequence typing (MLST). Our results and data from the Internet indicate that sequence type 5 (ST-5) strains were responsible for most of African outbreaks and sporadic cases during this period. In 1995, a new clone, characterized by ST-7 sequence, emerged and was responsible for severe outbreaks in Chad (1998) and Sudan (1999). MLST and epidemiologic data indicate that ST-5 and ST-7 represent two virulent clones. These two STs, which belong to subgroup III, differ only in the pgm locus: allele pgm3 is characteristic for ST-5 and allele pgm19 for ST-7. Subgroup III strains were responsible for two pandemics in the 1960s and 1980s. Our data show that the third subgroup III pandemic has now reached Africa.

Africa↗