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T Nabeshima

Publications and source records attributed to T Nabeshima.

At least 325 records · Page 18Linked to original sources

Effects of picrotoxin treatment on GABAA receptor supramolecular complexes in rat brain.

The effects of acute and chronic administration of a subconvulsive dose of picrotoxin on t-[35S]butylbicyclophosphorothionate ([3S]TBPS), [3H]muscimol, and [3H]flunitrazepam binding characteristics in various regions and on the convulsant potency of picrotoxin in Sprague-Dawley rats were examined. Acute administration of a subconvulsive dose of picrotoxin (3 mg/kg, i.p.) significantly increased [35S]TBPS and [3H]muscimol binding in cerebellum (CB) with no change in frontal cortex (FC). In rats treated chronically with picrotoxin (3 mg/kg, i.p., daily for 10 days), the Bmax of [35S]TBPS binding site was significantly decreased in the FC, striatum (ST), and CB with no change in KD values. Neither [3H]muscimol binding in the FC and CB nor [3H]flunitrazepam binding in the FC was affected in these rats. In addition, the potency of pentobarbital to inhibit [35S]TBPS binding in vitro was not altered following acute or chronic treatment of picrotoxin. Chronic administration of picrotoxin did not affect convulsive ED50 or LD50 of picrotoxin; however, it delayed the onset of convulsions and increased the time to death. These results suggest that treatment with picrotoxin at a subconvulsive dose for 10 days causes down-regulation of [35S]TBPS binding sites and that this down-regulation might be related, at least in part, to the decreased extent of convulsant potency of picrotoxin. In addition, the results indicate possible interaction between convulsant binding sites and GABAA receptor sites in the CB following picrotoxin treatment.

Animals↗

Reversal of alcohol-induced amnesia by the benzodiazepine inverse agonist Ro 15-4513.

We investigated the effects of benzodiazepine inverse agonists on ethanol-induced amnesia using a passive avoidance task. Pretraining treatment of mice with ethanol significantly impaired the passive avoidance response: there was a significant reduction in the % retention and step-down latency. The benzodiazepine inverse agonists, Ro 15-4513 and beta-CCM, significantly increased the % retention and prolonged the step-down latencies in mice treated with ethanol, but FG 7142 did not. The anti-amnesic effects of Ro 15-4513 were completely antagonized by co-administration of Ro 15-1788, a benzodiazepine antagonist. These results suggest that the anti-amnesic effect of Ro 15-4513 on alcohol-induced amnesia is mediated by benzodiazepine receptors.

Amnesia↗

Effects of the novel compound NIK-247 on impairment of passive avoidance response in mice.

The effects of NIK-247 [9-amino-2,3,5,6,7,8-hexahydro-1H-cyclopenta(b)-quinoline monohydrate hydrochloride] were studied on a model involving various types of drug- and electroconvulsive shock (ECS)-induced amnesia. The step-down type passive avoidance task in mice was used for comparison of the effects with those of tacrine, a 4-aminopyridine derivative which has an antiamnesic action. NIK-247 administered pre- and post-training or pre-retention test (24 h after training) prevented the disruption of memory induced by cycloheximide administered immediately after training. In addition, NIK-247 protected from the amnesia induced by treatment with ECS, phencyclidine and picrotoxin immediately after training. Tacrine failed to protect from ECS- and PCP-induced amnesia at the doses effective on cycloheximide-induced amnesia. The results indicate that NIK-247 improves cognitive functions at different phases of the learning and memory processes such as acquisition, consolidation, and retrieval in drug- and ECS-induced amnesia. NIK-247 may produce its antiamnesic effects via the cholinergic and GABAergic neuronal systems.

Aminoquinolines↗

Protection with phencyclidine against inactivation of 5-HT2 receptors by sulfhydryl-modifying reagents.

We investigated whether phencyclidine (PCP)-induced head-twitch was antagonized in rats by ritanserin, a selective serotonin2 (5-HT2) receptor antagonist, to confirm the involvement of 5-HT neurons in PCP action and to discover whether PCP could protect the binding sites of [3H]PCP and [3H]ketanserin from the inhibitory effect of protein-modifying reagents which affect sulfhydryl groups. PCP (7.5, 10 and 12.5 mg/kg, i.p.)-induced head-twitch was completely antagonized by ritanserin (1 mg/kg, s.c.). Scatchard plots of specific [3H]PCP and [3H]ketanserin binding showed that sulfhydryl-modifying reagent, N-ethylmaleimide (NEM, 100 microM) caused a significant decrease in Bmax without changing Kd. PCP (10 microM) and ritanserin (1 microM) protected [3H]PCP and [3H]ketanserin binding sites from the decrease in the number induced by NEM (100 microM). 5-HT protected [3H]5-HT binding sites from inactivation by NEM, but PCP and ritanserin did not show any effect. On the basis of the present findings, it is concluded that PCP can interact with 5-HT2 receptors directly or allosterically, and 5-HT2 receptors may locate at PCP binding sites in membranes.

Animals↗

Opioid kappa receptors correlate with the development of conditioned suppression of motility in mice.

Mice exhibited a marked suppression of motility (conditioned suppression) when placed in the same environment in which they had previously received an electric footshock. The conditioned suppression of motility was potentiated by U-69,593, a selective kappa (non-mu) agonist. This effect of U-69,593 was antagonized by MR-2266, a kappa antagonist. Additionally, in contrast to U-69,593, MR-2266 alone attenuated the conditioned suppression of motility. These results suggest that the activation of kappa receptors may be responsible for the development of conditioned suppression of motility.

Analgesics↗

Effects of haloperidol, sulpiride and SCH 23390 on passive avoidance learning in mice.

The main purpose of the present study was to examine the effect of dopamine blockers on memory processes by means of a one-trial passive avoidance (PA) task with ddY mice. Haloperidol (0.025-0.4 mg/kg i.p.) did not affect the PA response when it was given before the training or retention test. Sulpiride (10-80 mg/kg i.p.) had different effects, depending on the doses employed: A lower dose (20 mg/kg) of sulpiride, which is thought to block presynaptic receptors, impaired the PA response but higher doses (40 and 80 mg/kg i.p.) did not affect it when sulpiride was given before the training or retention test. SCH 23390 (0.025-0.1 mg/kg i.p.) impaired the PA response only when it was given before the training. These results suggest that blocking of postsynaptic D-2 receptors does not impair memory processes but blocking of presynaptic D-2 receptors impairs both acquisition and retrieval stages of memory processes following an increase in dopamine release. The involvement of D-1 receptors in memory processes involved in the PA response may be essentially different from that of D-2 receptors, since the blocking of D1 receptors impaired only memory acquisition.

Animals↗

A role played by sigma receptors in the conditioned suppression of motility in mice.

Mice exhibited marked suppression of motility (conditioned suppression) when placed in the same environment in which they had previously received an electric footshock. The conditioned suppression was attenuated by cyclazocine and N-allylnormetazocine (SKF-10047), sigma agonists. The effect of these drugs was reduced by chronic pretreatment with cyclazocine. This behavioral change was related to the change in binding activity of [3H]-phencyclidine to sigma receptors (defined using non-radioactive SKF-10047). In the chronic vehicle-pretreated conditioned suppression group, the Kd and Bmax values of [3H]-phencyclidine binding at the high affinity site were increased when compared to those in the chronic vehicle-pretreated control group. The increased values were restored to the control levels by acute treatment with cyclazocine and SKF-10047. On the other hand, in the chronic cyclazocine-pretreated conditioned suppression group, acute cyclazocine and SKF-10047 treatment failed to change the increased values of Kd and Bmax at the high affinity site. The present behavioral and receptor-binding experiments suggest that the activation of nervous system mediated by sigma receptors may be responsible for the attenuation of conditioned suppression of motility.

Animals↗

GABAergic modulation of memory with regard to passive avoidance and conditioned suppression task in mice.

The role of GABAergic neuronal system in learning and memory was investigated using the step-down typed passive avoidance and rapidly learned conditioned suppression tasks in mice. GABA antagonists, picrotoxin and bicuculline, or a GABA synthesis inhibitor, 3-mercaptopropionic acid (3-MP), were administered just after the training test. All of these drugs caused amnesia: they shortened the step-down latency (SDL) and attenuated the conditioned suppression of motility in the retention test conducted 24 h after the administration. Furthermore, we investigated the effect of GABA receptor agonists, muscimol and baclofen, or a GABA transaminase inhibitor, aminooxyacetic acid (AOAA), on these amnesia models. GABA agonists showed an antiamnesic action as follows: in the passive avoidance task, 1) picrotoxin-induced amnesia was antagonized by muscimol, baclofen and AOAA. 2) Bicuculline-induced amnesia was antagonized by muscimol and AOAA but not by baclofen. 3) 3-MP-induced amnesia was antagonized only by muscimol. 4) In the rapidly learned conditioned suppression task, picrotoxin-, bicuculline- and 3-MP-induced amnesia were antagonized by muscimol, baclofen and AOAA. These results suggest that the GABAergic neuronal system plays an important role in the memory retention of passive avoidance and rapidly learned conditioned suppression tasks.

4-Aminobutyrate Transaminase↗

Role of cholinergic and GABAergic neuronal systems in cycloheximide-induced amnesia in mice.

The role of cholinergic and GABAergic neuronal systems on the cycloheximide (CXM)-induced amnesia was investigated using the step-down-type passive avoidance task in mice. CXM (7.5-120 mg/kg, SC) given just after the training caused amnesia (indicated by short latency to step down from the platform on the grid floor) in the retention test conducted 24 hr later in a dose-dependent fashion. In the CXM (60 mg/kg)-treated mice, a choline esterase inhibitor, physostigmine (PHY; 0.125 and 0.25 mg/kg, IP), or GABA agonists, muscimol (1 and 2 mg/kg, IP) and baclofen (6 and 12 mg/kg, IP), given just after training markedly prolonged step down latency (SDL), indicating reversal of amnesia. The antiamnesic action of PHY (0.125 mg/kg) was almost completely antagonized by a central acetylcholine antagonist, scopolamine (3 mg/kg, SC), but not by a peripheral acetylcholine antagonist, butylscopolamine (3 mg/kg, SC). Furthermore, the antiamnesic action of muscimol (2 mg/kg) was reversed by GABA antagonists, picrotoxin (0.5 mg/kg, SC) and bicuculline (0.5 mg/kg, SC), while the effect of baclofen (12 mg/kg) was reversed by picrotoxin (0.5 mg/kg), but not by bicuculline (0.5 mg/kg). These results suggest that the dysfunction of cholinergic and GABAergic neuronal systems play an important role in the CXM-induced memory impairment on the passive avoidance task.

Amnesia↗

Opposite effects induced by low and high doses of apomorphine on single-trial passive avoidance learning in mice.

The effects of apomorphine (0.0125-1 mg/kg, SC), a dopamine (DA) agonist, on passive avoidance learning were assessed in mice which received brief and long foot-shocks in a training test. At low doses, apomorphine stimulates DA autoreceptors. With a shock of brief duration, apomorphine at a low dose (0.05 mg/kg), enhanced the avoidance learning when it was administered 20 min before the training test or the retention test. At high doses, apomorphine stimulates postsynaptic DA receptors. With a shock of long duration, apomorphine at a high dose (1 mg/kg), impaired the avoidance learning when it was administered 20 min before the training test or the retention test. However, apomorphine (0.05 and 1 mg/kg) given immediately after the training test did not have any effect on the avoidance behavior with shocks of either brief or long durations. Apomorphine-induced enhancement of passive avoidance learning was antagonized by sulpiride, but not by haloperidol. These results show that apomorphine induced the opposite effects on the passive avoidance learning depending on the dose or on the reinforcement intensity and suggest that the central DA system may play an important role in modulating memory processes.

Animals↗

Conditioned suppression of motility: possibility for evaluation of learning and memory in mice.

Mice showed a marked suppression of motility when placed in the same environment where they had been given electric shocks (ES) 24 h before. This conditioned suppression of motility (CS) was attenuated by the administration of cycloheximide (CXM, 25-150 mg/kg) immediately after ES treatment in a dose-dependent manner. CXM (50 mg/kg) administered 1 h after ES failed to attenuate the CS. These effects seem to be caused by retrograde amnesia. Furthermore, the amnesic action of CXM was antagonized by naloxone (10 mg/kg), which did not affect CS. Physostigmine (0.2 mg/kg), propranolol (1 mg/kg) and cyproheptadine (2 mg/kg) did not antagonize CXM-induced amnesia significantly. In the same way, the amnesia-inducing actions of phencyclidine and scopolamine were detected. The CS method seems to be useful to examine learning and memory performances in animals and has the advantage that evaluation is extremely easy.

Animals↗

Effects of prenatal administration of phencyclidine on the learning and memory processes of rat offspring.

The effects of prenatal administration of phencyclidine (PCP) on the learning and memory processes of rat offspring were investigated at doses below the level for producing malformations. The offspring prenatally treated with PCP (10 or 20 mg/kg) on days 7 to 17, as well as on days 7 to 21 of gestation, showed disruption of the acquisition of passive avoidance response and pole-climbing avoidance response at the ages of 4 and 7 weeks, respectively. The brain weight of the offspring prenatally treated with PCP was significantly decreased. These results suggest that prenatal PCP administration impairs learning and memory processes of passive and active avoidance tasks and that more attention should be given to the developmental toxicity of PCP.

Animals↗

[Effect of naftidrofuryl oxalate (LS-121) on experimental amnesia model in rats].

Effects of naftidrofuryl oxalate (LS-121) on experimental amnesia models, which were induced by cycloheximide (CXM), scopolamine (SCOP) and basal-forebrain (BF) lesion, were investigated using the step-through passive avoidance response in rats. In the retention test, a cut-off time of 600 sec was employed for the measurement of step-through latency (STL). The animals, that showed over 300 sec of STL was regarded as having the criterion of memory retention (% of retention). Increase in both parameters of STL and % of retention was regarded to indicate that the drug was able to improve the amnesia. If only one of the two parameters was increased, we considered that the drug had a tendency to improve the amnesia. Pretraining, post-training and pre-retention treatment of LS-121 (25 mg/kg) improved CXM- and SCOP-induced amnesia. Post-training treatment of LS-121 (25 mg/kg) showed a tendency to improve the BF lesion-induced amnesia. These results suggest that the antiamnesic action of LS-121 may be produced through an activation of the acetylcholinergic neuronal system. Since it improved the amnesia when administered in the pre-retention test, there is a possibility that LS-121 has not only a protective effect, but also a therapeutic effect. Furthermore, it is suggested that LS-121 may also have a therapeutic effect on Alzheimer's disease, since it showed a tendency to improve the BF lesion-induced amnesia.

Amnesia↗

Inhibition of enkephalin degradation attenuated stress-induced motor suppression (conditioned suppression of motility).

Mice exhibit a marked suppression of motility when they are placed in the same cage in which they had previously received an electric shock. This suppression of motility is believed to be stress-induced and is a conditioned response. A decrease in the Met-enkephalin levels and a decrease in the dopamine (DA) turnover in the striatum of these "conditioned suppression" groups have been exhibited. The present study investigates whether inhibition of enkephalin degradation induced by an enkephalinase A and/or an aminopeptidase inhibitor attenuates a conditioned suppression of motility. The effects of thiorphan and bestatin, both alone and in combination, were investigated. Thiorphan alone (25, 50 and 100 micrograms i.c.v.) significantly attenuated the conditioned suppression of motility in a dose-dependent manner, but not bestatin (25, 50 and 100 micrograms i.c.v.) alone. The combination of these drugs (25 and 50 micrograms, each, i.c.v.) also significantly reduced the conditioned suppression of motility in a dose-dependent manner. The attenuation of conditioned suppression of motility induced by thiorphan and bestatin was antagonized by naloxone (5 mg/kg s.c.) and pimozide (100 micrograms/kg i.p.). In addition, the combination of thiorphan and bestatin reversed the decreases of Met-enkephalin levels and the decreases of DA turnover in the striatum in conditioned suppression group. These results suggest that attenuation of the conditioned suppression of motility induced by thiorphan and bestatin may be directly proportional to the increases of endogenous opioid peptide contents, and that the effect of these drugs may be related to the striatal DAergic system.

Amino Acids, Sulfur↗

Phencyclidine-induced head-weaving observed in mice after ritanserin treatment.

Ritanserin (0.125, 0.25, 0.5, 1.0 and 2.0 mg/kg s.c.), a selective serotonin (5-HT2) receptor antagonist, produced a dose-dependent inhibition of the head-twitch response induced in mice by phencyclidine (PCP) and 5-methoxy-N,N-dimethyltryptamine (5-MeODMT). In contrast, ritanserin, dose dependently increased PCP- and 5-MeODMT-induced head-weaving. There was a significant inverse relationship between head-twitch and head-weaving responses. Pretreatment with p-chlorophenylalanine (PCPA, 300 mg/kg i.p.), a serotonin synthesis inhibitor, attenuated the head-weaving induced by the combination of PCP (12.5 mg/kg i.p.) and ritanserin but PCPA did not alter the 5-MeODMT-induced head-weaving. These results indicate that PCP induces head-weaving by interacting with a 5-HT receptor (possibly of the 5-HT1 subtype) indirectly after 5-HT release and induces head-twitch by interacting with 5-HT2 receptors directly.

Animals↗

Phencyclidine-induced head-twitch responses as 5-HT2 receptor-mediated behavior in rats.

This study was designed to assess whether phencyclidine (PCP)-induced head-twitch was antagonized by ritanserin, a selective serotonin (5-HT2) receptor antagonist, in mice and rats to confirm the involvement of 5-hydroxytryptamine (5-HT) neurons in PCP actions in comparison with 5-methoxy-N,N-dimethyltryptamine (5-MeODMT)-induced behavior. PCP (7.5, 10 and 12.5 mg/kg, i.p.)-induced head-twitch was completely antagonized by ritanserin (1 mg/kg, s.c.) in mice and rats, and 5-MeODMT (2 and 4 mg/kg, i.p.)-induced head-twitch was also completely antagonized by ritanserin in mice. PCP and 5-MeODMT induced head-weaving in mice after ritanserin treatment, but this did not occur in rats. In rats, 5-MeODMT failed to induce head-twitch. These results suggest that PCP-induced head-twitch response in rats is developed via 5-HT2 receptors and it is a useful 5-HT2 receptor model, while 5-MeODMT-induced head-weaving in rats is developed via 5-HT1 receptors and is a useful 5-HT1 receptor model.

Animals↗

Development of tolerance and supersensitivity to phencyclidine in rats after repeated administration of phencyclidine.

In rats treated with phencyclidine (PCP) repeatedly (PCP 10 mg/kg per day for 14 days), the back-pedalling, head-weaving and turning induced by PCP were attenuated (tolerance), while PCP-induced sniffing, rearing and ambulation were potentiated (supersensitivity). The behavior induced by the direct and indirect serotonin (5-HT) agonists, 5-methoxy-N,N-dimethyltryptamine and p-chloroamphetamine, was attenuated, while the sniffing, rearing or licking induced by the direct and indirect dopamine (DA) agonists, apomorphine and methamphetamine, were potentiated in the chronic PCP-treated rats. The DA and 5-HT contents in the nucleus accumbens and the ratio of HVA to DA in the striatum increased following the repeated PCP administration. Pentobarbital-induced sleep time did not change in the chronic PCP-treated rats as compared with the control rats. In addition, there was no significant difference between the disappearance rate of PCP in the brain of the rats treated with PCP repeatedly and the rate in the control rats. These results suggest that functional changes in the dopaminergic and serotonergic neuronal systems develop on repeated administration of PCP but that such changes do not develop in the hepatic drug-metabolizing system. In addition, tolerance develops in the serotonergic neuronal system while supersensitivity develops in the dopaminergic neuronal system. Biochemical findings suggest that increased mesolimbic dopaminergic neuronal function plays an important role in the development of the supersensitivity.

Animals↗