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G D Frye

Publications and source records attributed to G D Frye.

72 records · Page 4Linked to original sources

Effects of acute and chronic 1,3-butanediol treatment on central nervous system function: a comparison with ethanol.

In the present investigation, the neuropharmacology of 1,3 butanediol (1,3-BD) was compared with that of ethanol. Acute i.p. administration of equimolar doses of 1,3-BD or ethanol to rats impaired the aerial righting reflex, attenuated the suppressive effect of punishment on drinking behavior, lowered blood pressure, caused a concomitant reduction in the content of guanosine 3',5'-monophosphate in the cerebellum and reduced ethanol withdrawal reactions. Although these data suggested that ethanol and 2,3-BD were of similar potency, the brain content of 1,3-BD was only 33% of that of ethanol after treatment with equimolar doses, suggesting a greater central nervous system (CNS) potency for 1,3-BD. In rats treated chronically with ethanol to produce physical dependence, 1,3-BD was more potent than ethanol in inhibiting the hyperexcitability observed upon ethanol withdrawal. Furthermore, chronic administration and withdrawal of 1,3-BD caused CNS hyperexcitability in rats that was characteristic of physical dependence. Despite these similarities, there were clear differences in the actions of ethanol and 1,3-BD. In mice, locomotor stimulation caused by ethanol was not observed after 1,3-BD. Furthermore, while 1,3-BD did not alter the concentration of luteinizing hormone in plasma, equivalent doses of ethanol markedly reduced the concentration of this hormone. These data indicate that like ethanol, 1,3-BD depresses CNS activity and induces physical dependence, but has less effect on plasma luteinizing hormone concentration than ethanol.

Animals↗

An evaluation of the selectivity of fenmetozole (DH-524) reversal of ethanol-induced changes in central nervous system function.

The selectivity and specificity of fenmetozole (DH-524) [2(3,4-dichlorophenoxy-methyl)2-imidazole HCl] as an antagonist of the actions of ethanol were examined. Fenmetozole (15--30 g/kg) reduced ethanol-induced impairment of the aerial righting reflex without changing blood or brain ethanol content, indicating that the antagonistic actions of fenmetozole were not de to change in the pharmacokinetics of ethanol. Since fenmetozole also reduced aerial righting reflex impairment due to phenobarbital, chlordiazepoxide, and halothane, this action of fenmetozole was not specific to ethanol. In mice, both the ethanol-induced increase in locomotor activity at 2.0 g/kg and the decrease caused by 4.0 g/kg were antagonized by fenmetozole. In addition, fenmetozole attenuated the ethanol-induced reduction in cerebellar cyclic guanosine monophosphate (cGMP) content, but the drug also significantly elevated cGMP levels in this tissue when given alone. Fenmetozole did not alter ethanol-induced increases in punished drinking in a conflict test, except at a high dose which alone decreased both punished and unpunished responding. Fenmetozole also failed to precipitate ethanol withdrawal-like reactions when given to physically-dependent, intoxicated rats. Thus, the antagonistic action of fenmetozole against ethanol would not seem to be related to a specific receptor interaction but rather may be the result of a physiological antagonism.

Acoustic Stimulation↗

Attenuation of the effects of punishment by ethanol: comparisons with chlordiazepoxide.

Ethanol (ETOH), like chlordiazepoxide (CDZ), significantly attenuated the suppressive effect of punishment on licking behavior in water-deprived rats and mice. In rats, the greatest effects of ETOH (1.5 g/kg) were observed between 30 and 60 min following IP administration. tert-Butanol also attenuated the effects of punishment, suggesting that acetaldehyde was not contributing to this effect of ETOH. Since a dose of ETOH that increased punished drinking did not increase unpunished drinking, alteration in thirst motivation would not appear to be responsible for its antipunishment action. However, doses of ETOH or CDZ that significantly increased punished responding increased jump thresholds to aversive shock, suggesting that decreased sensitivity to aversive stimulation may contribute to the anti-punishment action of both agents. In addition to these similarities between ethanol and CDZ, several differences were noted in their effects. For example, CDZ decreased serum corticosterone concentration, whereas ETOH did not. Further, ETOH impaired aerial righting reflex and reduced rectal temperature, whereas CDZ had no effect on these parameters at doses that had anti-punishment activity. Finally, specific binding of [3H]flunitrazepam to crude brain cortical membranes was decreased by CDZ, but not ETOH. Although ETOH and CDZ similarly alter punished behavior, results suggest that ETOH does not act through a direct interaction with a benzodiazepine binding site.

Animals↗

Change in brain guanosine 3',5'-monophosphate (cGMP) content by thyrotropin-releasing hormone.

Thyrotropin-releasing hormone (TRH) causes a significant increase in rat cerebellar guanosine 3',5'-monophosphate (cGMP) content after parenteral administration. A smaller but still significant increase in cGMP was also observed in brain stem, whereas no significant changes were observed in cGMP in other gross brain regions or in adenosine 3',5'-monophosphate in any brain region. TRH also caused a similar increase in cerebellar cGMP content in hypophysectomized rats indicating that the increase is independent of an intact pituitary. The time course of cGMP elevation in the cerebellum after administration of 10 mg/kg of TRH i.v. showed a peak at 2.5 to 5.0 min followed by a less rapid decrease. The time course of TRH immunoreactivity in the same cerebellar homogenates roughly paralleled these changes. Only those TRH analogs which were previously shown to antagonize pentobarbital sleeping time in mice caused an elevation in cGMP content in the cerebellum. TRH also caused a significant increase in cerebellar cGMP in rats pretreated with phenobarbital and chlordiazepoxide. The TRH-induced increase in cerebellar cGMP was not affected by cerebellar climbing fiber lesions caused by 3-acetylpyridine nor blocked by haloperidol, suggesting that TRH acts by mechanisms different from harmaline or apomorphine in raising cerebellar cGMP.

Animals↗

Failure of signs of physical dependence to develop in hamsters after prolonged consumption of large doses of ethanol.

Male Golden Hamsters drank large amounts of ethanol with food and water freely available, when ethanol was presented in water at concentrations of 10-40% (w/v). Although the hamsters consumed an average of 13.8 g/kg/day of ethanol for 3 months, no withdrawal signs were observed during 4 days without ethanol, nor were withdrawal signs observed during withdrawal after 4 more months of ethanol consumption. Although the Golden Hamster consumes large amounts of ethanol without the need for food or water deprivation, the Golden Hamsters may have limited usefulness as a model of physical dependence.

Acoustic Stimulation↗

Characteristics of ethanol drinking patterns under schedule-induced polydipsia.

Rats were induced to consume concentrations of ethanol between 5% and 10% (w/v) using the schedule-induced polydipsia technique. Although the substitution of ethanol solutions for water disrupted the usual post-pellet pattern of drinking, large amounts of ethanol were consumed and sound-induced convulsions were observed during ethanol withdrawal. In subsequent experiments, other rats chose 5% and sometimes 10% ethanol solutions over water where both water and ethanol were freely available during the first session of exposure to ethanol. Convulsions and wild running behavior could be observed in some of these rats after only 8 days of drinking, even though ethanol was freely available at all times. Use of the schedule-induced polydipsia technique served to bring the rats into early contact with the ethanol, but rats that received the same number of food pellets in a dish rather than by the schedule drank almost as much ethanol as did the rats receiving ethanol by the schedule. Rats with free access to food pellets drank very little ethanol.

Alcohol Drinking↗

Bombesin increases dopamine function in rat brain areas.

Bombesin is a tetradecapeptide heterogenously distributed in the mammalian brain. Bombesin (45 micrograms) given intracisternally (IC) to unanesthetized rats increased the accumulation of dihydroxyphenylalanine (DOPA) in striatum, olfactory tubercles and hypothalamus after DOPA-decarboxylase inhibition, thus indicating an increased dopamine synthesis. A dose-dependent increase in dihydroxyphenylacetic acid (DOPAC) and homovanillic acid (HVA), the principal dopamine metabolites, was seen in several brain areas 1 hr after IC injection of bombesin (0-60 micrograms). In striatum and olfactory tubercles HVA increased more than DOPAC with a maximal increase after 30-45 micrograms. In a time-course experiment a biphasic change of dopamine metabolites was observed in the olfactory tubercles with an actual decrease in metabolite levels 4 hr after 60 micrograms IC bombesin injection. Co-administration of bombesin and naloxone (8 mg/kg IP) or ethanol (2.25 g/kg IP) did not affect the increase in dopamine metabolites seen after bombesin alone. The action of IC administered bombesin on dopamine function was most pronounced in hypothalamus indicating a neuroendocrine regulatory of the peptide.

Animals↗

Effects of 6-hydroxydopamine or 5,7-dihydroxy-tryptamine on the development of physical dependence on ethanol.

Infant rats, treated intracisternally with 6-hydroxydopamine or 5,7-dihydroxytryptamine, alone or in combination with desmethylimipramine or pargyline, at 5 to 7 days of age, had significant specific depletions of brain norepinephrine, dopamine, both of these amines, or serotonin at 2.5 months of age. Despite apparent long-term depletions of brain biogenic amines, susceptibility to audiogenically-induced seizures following chronic ethanol withdrawal in these animals was similar to that of controls. Amine-depleted rats also displayed spontaneous withdrawal-induced tremors, spastic motor activity and irritability. The interpretation of these preliminary findings with regard to the proposed role of the biogenic amines in the development of physical dependence on ethanol is discussed.

5,7-Dihydroxytryptamine↗

Effect of ethanol on cyclic nucleotides in vivo: consequences of controlling motor and respiratory changes.

Many psychotropic drugs alter cerebellar cyclic guanosine-3',5'-monophosphate (cGMP) content. Whereas apomorphine increased levels, central depressants such as ethanol, chlordiazepoxide or barbiturates, reduce the content of cerebellar cGMP without altering levels of cyclic adenosine-3',5'-monophosphate (cAMP). Additional data indicate that tolerance develops to this reduction of cerebellar cGMP by ethanol. In paralyzed animals, the increase in cerebellar cGMP content induced by apomorphine and the decrease caused by ethanol were dramatically attenuated. Since relatively high doses of ethanol were needed to decrease blood CO2 tension in spontaneously moving rats, changes in respiratory function appear to be of only minor importance in the ethanol-induced decrease in cerebellar cGMP. It is concluded that ethanol-induced changes in content of cerebellar cGMP in vivo may be secondary to alterations in motor and, to a lesser extent, in respiratory function.

Animals↗

Acute ethanol dependence or long-term ethanol treatment and abstinence do not reduce hippocampal responses to carbachol.

In the hippocampus of human alcoholics, prolonged ethanol treatment reduces the number of muscarinic ligand binding sites present at autopsy suggesting a decrease in functional muscarinic receptors. Whether these changes are due to alcohol-induced brain damage or ethanol dependence and represent a reduced level of cholinergic function is unknown. The present studies tested the impact of ethanol dependence or long-term ethanol treatment and subsequent withdrawal on the function of pre- and postsynaptic muscarinic receptors in the CA1 region of the rat hippocampus. Field excitatory postsynaptic potentials (EPSPs) were inhibited in a concentration-dependent manner by 0.1-100 microM carbachol. This presynaptic inhibitory action of carbachol involving muscarinic receptors was not significantly reduced either by ethanol treatment (12 days), causing physical dependence, or by long-term ethanol treatment (97-120 days) and abstinence (3-6 months). Postspike after hyperpolarizations (AHPs) were inhibited in a concentration-dependent manner by carbachol (6-2000 nM). This postsynaptic excitatory action of muscarinic receptors also was not significantly reduced either by 12-day ethanol treatment or by long-term ethanol treatment. Taken together, these results suggest that neither pre- nor postsynaptic muscarinic receptor function measured electrophysiologically is reduced by either ethanol dependence or long-term ethanol consumption and abstinence in the rat as suggested by reduced muscarinic ligand binding in the hippocampus of human alcoholics.

Alcoholism↗

Effect of ethanol dependence on GABAA antagonist-induced seizures and agonist-stimulated chloride uptake.

The functional state of GABAA receptors during physical dependence on ethanol was evaluated in two ways. First, the ability of ethanol dependence to change the convulsant potency of GABAA antagonists microinjected into the inferior colliculus was examined. A second approach evaluated the effects of ethanol dependence on the ability of muscimol or pentobarbital to stimulate chloride uptake in rat brain vesicles. In the studies examining changes in convulsant potency, bilateral microinfusions of GABAA antagonists, bicuculline methiodide and picrotoxinin, as well as the excitatory amino acid agonist, kainic acid (used as a positive control) induced similar dose-related increases in the frequency of wild-running seizures. Ethanol dependence did not significantly change susceptibility to wild-running seizure induction by an of the convulsants, although susceptibility to the more severe, clonic seizures was significantly increased for each convulsant. This suggested that the receptor-blocking effects of GABAA antagonists responsible for inducing wild-running seizures were not selectively increased by ethanol dependence, but that spread of seizure activity responsible for clonic seizures following the initiation of wild running was generally increased. Finally, in studies examining changes in GABAA receptor-mediated chloride uptake, both muscimol and pentobarbital were found to induce concentration-dependent increases in chloride uptake in rat brain vesicles. However, responses to these drugs were not reduced by ethanol dependence suggesting that a generalized adaptive decrease in GABAA receptor function was unlikely. Together these results do not provide support for the hypothesis that the GABAA receptor-chloride channel complex is down-regulated during the development of physical dependence on ethanol.

Animals↗

Evidence for site specific ethanol actions in the CNS.

The diverse behavioral and biochemical effects induced by ethanol suggest that ethanol exerts differential effects on the CNS. When the neuroactive amino acids, glycine, glutamate, aspartate, GABA and taurine, were measured in the cortex, striatum, hippocampus, midbrain, and brain stem of acute or chronic ethanol-treated rats, site specific changes were observed for glutamate, glycine, and aspartate. No changes were found for GABA or taurine. Upon in vivo application, it was found that the microinjection of thyrotropin-releasing hormone (TRH, 500 ng) into the medial septum significantly shortened ethanol's impairment of the righting reflex, while microinjection of muscimol (30 ng) markedly potentiated ethanol's impairment of the righting reflex. When these studies are combined with previous work showing that microinjection of muscimol (30 ng) into the inferior colliculus blocks audiogenically induced seizures in ethanol-withdrawn rats, the convergence implies that specific sites in the CNS may modulate certain actions of ethanol. Therefore, we propose that the medial septum and inferior colliculus can be used as in vivo models to study the acute and chronic actions of ethanol, respectively.

Amino Acids↗