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Biomedical subjects

D J Nutt

Publications and source records attributed to D J Nutt.

At least 19 recordsLinked to original sources

Effects of benzodiazepine receptor inverse agonists on locomotor activity and exploration in mice.

This study investigates the effects of benzodiazepine receptor inverse agonists on the locomotor and exploratory behaviour of mice when tested in a familiar environment. The weak partial inverse agonist Ro 15-3505 (0.3, 1, 3 mg/kg i.p.) significantly increased locomotion and hole-dipping in habituated mice. However, the more efficacious partial inverse agonists Ro 15-4513 (0.3, 1, 3 mg/kg i.p.) and Ro 19-4603 (0.03, 0.1, 0.3 mg/kg i.p.) had no effect on these parameters. The benzodiazepine receptor antagonist flumazenil (3, 10, 20 mg/kg i.p.) also increased locomotion and hole-dipping in habituated mice, although like Ro 15-3505, these effects were of short duration occurring largely in the first 15 min following injection. Opposite effects were obtained with the partial benzodiazepine agonist Ro 17-1812 (1, 3, 10 mg/kg i.p.) which produced a longer-lasting significant decrease in hole-dipping behaviour in habituated mice without altering locomotion. Finally, in contrast to its effects in habituated animals, Ro 15-3505 (0.3, 1, 3 mg/kg i.p.) did not modify either locomotion or exploration in mice which were tested in a novel environment, showing that the effects of the inverse agonist were state-dependent. This demonstration that, under certain conditions, the weak benzodiazepine receptor inverse agonist Ro 15-3505 and the antagonist flumazenil, produce behavioural activation is in accordance with the work of others suggesting that these classes of compound may increase arousal and may therefore be of some value in treatment of memory disorders.

Animals

Effect of the cyclopyrrolones suriclone and RP 59037 on body temperature in mice.

The effects of the cyclopyrrolones suriclone and RP 59037 on body temperature were investigated in male TO mice. The full agonist suriclone (3, 10, 30 mg/kg i.p.) produced significant hypothermia which was inhibited by concurrent administration of benzodiazepine receptor antagonists of both benzodiazepine (flumazenil; 10 mg/kg i.p.) and beta-carboline (ZK 93426; 3 mg/kg i.p.) structure. The response to suriclone (10 mg/kg i.p.) was also attenuated by benzodiazepine (Ro 17-1812; 10 mg/kg i.p.) and beta-carboline (ZK 91296; 30 mg/kg i.p.) partial agonists - which have no effect on body temperature per se. In contrast with these compounds, the cyclopyrrolone partial agonist RP 59037 (10, 30 mg/kg i.p.) produced significant hypothermia itself (although it was much less efficacious in this respect than the full agonist) and at a dose of 30 mg/kg failed to block the decrease in body temperature induced by suriclone (10 mg/kg i.p.). Thus suriclone acts as a full agonist at benzodiazepine receptors in the body temperature paradigm. RP 59037 possesses some partial agonist properties in this model, however, it appears to have greater intrinsic activity than other partial agonists tested previously.

Analysis of Variance

Strain differences in sensitivity to the hypothermic effects of benzodiazepine receptor ligands in mice.

The hypothermic effects of intraperitoneal (IP) administration of the full benzodiazepine agonist loprazolam (1, 10 mg/kg); the partial agonist Ro 17-1812 (1, 10 mg/kg); the benzodiazepine receptor antagonist flumazenil (10, 20 mg/kg); the benzodiazepine inverse agonists Ro 15-4513 (1, 3, 10 mg/kg) and Ro 19-4603 (0.03, 0.1, 0.3 mg/kg) and the beta-carboline inverse agonists FG 7142 (10, 30 mg/kg) and DMCM (1, 3, 10 mg/kg) were investigated in three strains of mice. TO mice were less sensitive than CBA/cA and DBA/2 mice, since only loprazolam and the partial and full beta-carboline inverse agonists FG 7142 and DMCM lowered body temperature in these animals. CBA/cA mice were particularly sensitive to the hypothermic effects of loprazolam and Ro 17-1812, and also responded to the beta-carboline but not the benzo diazepine inverse agonists. In contrast, DBA/2 mice responded with moderate hypothermia to loprazolam, Ro 17-1812, and to the partial inverse agonist Ro 15-4513, and exhibited marked hypothermia in response to the more efficacious benzodiazepine inverse agonist Ro 19-4603 and to FG 7142 and DMCM. Flumazenil did not alter body temperature. DBA/2 mice were also more sensitive to the convulsant activity of inverse agonists than TO mice. CBA/cA mice exhibited enhanced sensitivity to the convulsant, but not the hypothermic, effects of Ro 19-4603, showing dissociation of these responses. The mechanisms underlying the genetic differences in sensitivity of mice to the hypothermic and convulsant action of the different ligands are unknown and warrant further investigation.

Analysis of Variance

Alpha 2-adrenoceptor antagonists block the stimulant effects of cocaine in mice.

In the present study we have investigated the effects of the alpha 2-adrenoceptor antagonist idazoxan and its 2-ethoxy derivative RX811059 on the locomotor activity induced by cocaine in mice. The stimulant effects of cocaine (15 mg/kg i.p.) were significantly antagonised by idazoxan (3 mg/kg i.p.) and RX811059 (1 mg/kg i.p.) and also initially suppressed by idazoxan (1 mg/kg i.p.) and RX811059 (0.3 mg/kg i.p.). The alpha 2-adrenoceptor antagonists had no effect on locomotion when given alone. These results suggest that noradrenergic mechanisms may play a role in the stimulant effects of cocaine and that alpha 2-adrenoceptor antagonists like idazoxan may be of some benefit in the clinical management of cocaine abuse.

Adrenergic alpha-Antagonists

Thyrotropin-releasing hormone selectively reverses lorazepam-induced sedation but not slowing of saccadic eye movements.

To investigate preliminary reports that benzodiazepine-induced sedation may be reversed by thyrotropin-releasing hormone (TRH), we examined the effect of TRH or saline placebo on two variables which are sensitive to benzodiazepine agonists: changes in sedation and saccadic eye movements. Lorazepam 10 micrograms/kg i.v. increased self-ratings of sedation and reduced self-ratings of alertness and these changes were almost completely reversed by TRH. In contrast the slowing of saccadic eye movements by lorazepam was not reversed by TRH. The effects of TRH do not appear to be due to a direct antagonism at the benzodiazepine receptor, since flumazenil reverses changes in both variables. Moreover ligand binding studies reveal that TRH has very low affinity at this receptor. These clinical data provide the first demonstration that it is possible to distinguish between the effects of benzodiazepines on saccadic eye movements and psychological self-ratings.

Adult

Are 5-HT receptors or beta-adrenoceptors involved in idazoxan-induced food and water intake?

Idazoxan (10 mg/kg, i.p.) produces an unexpected increase in food intake in freely-feeding rats which has been linked to its high affinity for non-adrenoceptor idazoxan binding sites. In this study, a dose-related antagonism of idazoxan-induced food intake by the beta-adrenoceptor antagonist (-)-propranolol (5-20 mg/kg, i.p.), which also blocks 5-HT1 (5-hydroxytryptamine1) receptors has been demonstrated. (+)-Propranolol (10, 20 mg/kg, i.p.) did not attenuate idazoxan-induced feeding. (-)-Propranolol (10 mg/kg, i.p.) but not the (+)-enantiomer (10 mg/kg, i.p.) also significantly inhibited the food intake, induced by the 5-HT1A agonist 8-OH-DPAT (0.25 mg/kg, i.p.). Idazoxan-induced feeding was not altered by the selective beta-adrenoceptor antagonists betaxolol (beta 1; 5 mg/kg, i.p.) and ICI 118,551 (beta 2; 5 mg/kg, i.p.) but was potentiated by the 5-HT receptor antagonist metergoline (5 mg/kg, i.p.). The anomalous findings with metergoline may reflect its action at different sub-types of 5-HT receptor. The water intake induced by idazoxan and the peripherally-active alpha 2-adrenoceptor antagonist L-659,066 was also blocked in a stereoselective manner by propranolol (10 mg/kg) but not significantly by either metergoline (5 mg/kg, i.p.), the beta 1-adrenoceptor antagonist betaxolol (5 mg/kg, i.p.) nor by the beta 2-adrenoceptor antagonist ICI 118,551 (5 mg/kg, i.p.). These results suggest that the food intake induced by idazoxan (and perhaps mediated by non-adrenoceptor idazoxan binding sites) may involve the 5-HT system, although further studies, using antagonists acting selectively at the different sub-types of 5-HT receptor, are required to confirm this.(ABSTRACT TRUNCATED AT 250 WORDS)

8-Hydroxy-2-(di-n-propylamino)tetralin

Endogenous opioids may be involved in idazoxan-induced food intake.

In this study it has been shown that the unexpected increase in food consumption, produced by the alpha 2-adrenoceptor antagonist idazoxan (10 mg/kg, i.p.) in rats, was significantly attenuated by small doses of the opioid antagonist (-)-naloxone (0.1, 1 mg/kg, i.p.) and totally inhibited by a small dose of naltrexone (1 mg/kg, i.p.). On the other hand, idazoxan-induced feeding was not affected by (+)-naloxone (0.1, 1 mg/kg, i.p.), which is inactive at opioid receptors. In addition, idazoxan-induced food consumption was not blocked by the delta-opioid antagonist, naltrindole (0.1, 1 mg/kg, i.p.) nor by the mu/delta-antagonist, RX8008M (16-methyl cyprenorphine; 0.1, 1 mg/kg, i.p.), which clearly discriminates between mu/delta- and kappa-opioid receptor function in vivo. These findings suggest that idazoxan may lead to the release of endogenous opioid peptides, which subsequently stimulate feeding by activation of kappa-, as opposed to mu- or delta-opioid receptors. This response is unlikely to be due to alpha 2-adrenoceptor blockade, since other highly selective alpha 2-adrenoceptor antagonists do not increase food intake and, instead may reflect the high affinity of idazoxan for non-adrenoceptor idazoxan binding sites.

Adrenergic alpha-Antagonists

Quantification of in vivo binding of [3H]RX 821002 in rat brain: evaluation as a radioligand for central alpha 2-adrenoceptors.

On the basis of its established in vitro characteristics, [3H]RX 821002 was evaluated in rats as an in vivo radioligand for central alpha 2-adrenoceptors. Estimates for in vivo binding potential, obtained by compartmental analyses of time-radioactivity data, ranged between 1.9 for hypothalamus and 0.2 for cerebellum, with a regional distribution in brain which was similar to that observed in vitro. Selectivity and specificity of the signal were checked by predosing with either the alpha 2-antagonists, idazoxan or yohimbine, the alpha 2-agonist, clonidine, or the alpha 1-antagonist, prazosin. Pretreatment of the rats with the selective neurotoxin, DSP-4, had no significant effect on [3H]RX 821002 binding, suggesting that the majority of labelled sites were situated post-junctionally. The studies indicate that [3H]RX 821002 can be used experimentally as an in vivo marker for central alpha 2-adrenoceptors. The size and rate of expression of the specific signal encourage the development and assessment of [11C]RX 821002 for clinical PET studies.

Adrenergic alpha-Antagonists

Effects of acute and chronic electroconvulsive shock on noradrenaline release in the rat hippocampus and frontal cortex.

1. Changes in the extracellular content of endogenous noradrenaline (NA) in frontal cortex and hippocampus were determined by in vivo microdialysis following acute and chronic electroconvulsive shock (ECS) in rats anaesthetized with chloral hydrate. 2. Basal release of NA in the frontal cortex (4.9 +/- 0.3 pg/sample) did not differ significantly from that in the hippocampus (4.6 +/- 0.2 pg/sample). 3. A single ECS resulted in an increase of NA release in the hippocampus (21.1 +/- 1.3 pg/sample) and in the frontal cortex (11.6 +/- 1.2 pg/sample). In both brain regions extracellular NA had returned to basal values within 30 min. 4. Animals were treated chronically with ECS (once per day for seven days). Twenty-four h later (day 8), basal release of NA into dialysis samples from the frontal cortex was significantly increased (50%) as compared to chronic sham controls. Basal release in the hippocampus was not significantly different from the sham controls. In the chronic ECS animals the increase in NA released in both brain areas following an ECS on day 8 did not differ from either the chronic sham controls or from animals given acute ECS. 5. Animals were challenged 24 h after eight ECS or sham control treatments (once per day) with the alpha 2-adrenoceptor antagonist, idazoxan (10 mg kg-1, s.c.). Idazoxan increased NA release in the hippocampus in both groups. There was no difference in the magnitude of the response in ECS- and in sham-treated rats.In the frontal cortex, idazoxan increased the extracellular NA content in the chronic sham controls, but the response to idazoxan was significantly attenuated in the chronic ECS animals.6. Chronic but not acute ECS was found to elicit a sustained (>24 h) increase in the release of NA in the frontal cortex, but not in the hippocampus. The idazoxan data suggest that the increase may be due to a downregulation of presynaptic alpha2-adrenoceptors in the frontal cortex. The difference in response of these two brain regions to chronic ECS is discussed in terms of differences in the regulation of extracellular NA content by uptake and autoreceptor activation.

Adrenergic alpha-Antagonists

The effects of idazoxan and other alpha 2-adrenoceptor antagonists on urine output in the rat.

1. In normally-hydrated Wistar rats the alpha 2-adrenoceptor antagonist, idazoxan (1, 3, 10 mg kg-1 i.p.), increased urine output during the 6 h following injection. 2. The more selective and specific alpha 2-adrenoceptor antagonist, RX811059 (0.3, 1, 3 mg kg-1 i.p.), and the peripherally-acting alpha 2-adrenoceptor antagonist, L-659,066 (1, 3, 10 mg kg-1 i.p.), had no effect on urine output in normally-hydrated animals. 3. In rats given a 25 ml kg-1 water-load orally, idazoxan (10 mg kg-1, i.p.) produced an initial antidiuretic response which was followed by an increase in urine output which was apparent 4 and 6 h after drug administration. 4. RX811059 (1, 3 mg kg-1 i.p.) and L-659,066 (3, 10 mg kg-1 i.p.) significantly decreased urine output in water-loaded rats in the 2 h after injection. 5. The antidiuretic effects of L-659,066 were attenuated in Brattleboro rats which are deficient in vasopressin; only the highest dose (10 mg kg-1 i.p.) decreased urine output, and this was only a small response in comparison with its virtual abolition of urine output in water-loaded Wistar rats. 6. The results with the selective alpha 2-adrenoceptor antagonists in Wistar and Brattleboro rats suggest that alpha 2-adrenoceptors in the periphery may play a physiological role in the control of water balance through a mechanism which involves vasopressin. 7. The paradoxical diuretic effects of idazoxan contrast with the effects of the other alpha 2-adrenoceptor antagonists and therefore may be attributed to a property of this compound unrelated to alpha 2-adrenoceptor blockade.

Adrenergic alpha-Antagonists

Characterization and autoradiographical localization of non-adrenoceptor idazoxan binding sites in the rat brain.

1. In rat whole brain homogenates, saturation analysis revealed that both [3H]-idazoxan and [3H]-RX821002, a selective alpha 2-adrenoceptor ligand, bound with high affinity to an apparent single population of sites. However, the Bmax for [3H]-idazoxan was significantly (P less than 0.01) greater than that for [3H]-RX821002. 2. In competition studies, (-)-adrenaline displaced 3 nM [3H]-idazoxan binding with an affinity consistent with [3H]-idazoxan labelling alpha 2-adrenoceptors. However, this displacement was incomplete since 23.68 +/- 1.11% of specific [3H]-idazoxan binding remained in the presence of an excess concentration (100 microM) of (-)-adrenaline. In contrast, unlabelled idazoxan promoted a complete displacement of [3H]-idazoxan binding with a Hill slope close to unity and an affinity comparable with its KD determined in saturation studies. 3. Displacement of [3H]-idazoxan binding by the alpha 2-adrenoceptor antagonists yohimbine, RX821002 (2-(2-methoxy-1,4-benzodioxan-2-yl)-2-imidazoline) and RX811059 (2-(2-ethoxy-1,4-benzodioxan-2-yl)-2-imidazoline) was more complex, with Hill slopes considerably less than unity, and best described by a two-site model of interaction comprising a high and low affinity component. The proportion of sites with high affinity for each antagonist was similar (60-80%). 4. The rank order of antagonist potency for the high affinity component in each displacement curve (RX821002 greater than RX811059 greater than yohimbine) is similar to that determined against the binding of [3H]-RX821002 to rat brain, suggesting that these components reflect the inhibition of [3H]-idazoxan binding to alpha 2-adrenoceptors.The remaining component in each displacement curve exhibiting low affinity towards these antagonists is attributable to the displacement of [3H]-idazoxin from a non-adrenoceptor idazoxan binding site (NAIBS) since a comparable amount of [3H]-idazoxan binding was not displaced by an excess concentration of (-)-adrenaline.5. The displacement of [3H]-idazoxan binding by RX801023 (6-fluoro-(2-(1,4-benzodioxan-2-yl)-2-imidazoline) was also best described by a model assuming a two site interaction with 20.07 +/- 3.11% of the sites labelled displaying high affinity for RX801023. The Ki of RX801023 for the remainder of the sites labelled was similar to its Ki versus [3H]-RX821002, indicating that this drug displays improved affinity and NAIBS/z2-adrenoceptor selectivity compared with idazoxan.6. In autoradiographical studies, the distribution of 5 nM [3H]-idazoxan binding to sections of rat whole brain was consistent with that reported from previous studies and resembled the distribution ofM2-adrenoceptors. However, when sections of brain were coincubated with concentrations of alpha2-adrenoceptor agonists or antagonists predicted to saturate alpha2-adrenoceptors, there remained distinct areas of binding corresponding to discrete brain nuclei. This remaining binding was however displaced by unlabelled idazoxan (3 microM) or RX801023 (3 microM) indicative of the labelling of NAIBS.7. Quantitative autoradiography of NAIBS revealed several brain nuclei which contained higher densities of these sites than alpha2-adrenoceptors, notably the area postrema, interpeduncular nucleus,arcuate nucleus, ependyma and pineal gland.

Adrenergic alpha-Antagonists

Attenuation of the behavioural effects of ethanol in mice by des-enkephalin-gamma-endorphin (ORG 5878).

This study shows inhibition of the increase in locomotor activity induced by ethanol (2 g/kg i.p.) in mice by a low dose (0.1 mg/kg i.p.) of the non-opioid beta-endorphin fragment ORG 5878 (des-enkephalin-gamma-endorphin). ORG 5878 (0.1 mg/kg i.p.) also significantly antagonised the large increase in electroshock seizure threshold produced by ethanol (1.5 g/kg i.p.). In contrast, the hypothermia induced by ethanol (2 g/kg i.p.) was not altered by ORG 5878 (0.1 mg/kg i.p.). The effects of ORG 5878 showed an abnormal dose-response relationship, in that a high dose (1 mg/kg i.p.) did not significantly suppress any of the behavioural effects of ethanol examined although there was some indication that it attenuated the stimulant action of ethanol. ORG 5878 (0.1, 1 mg/kg i.p.) did not have any intrinsic effects on locomotion, seizure threshold or body temperature in mice. These results are the first demonstration that ORG 5878 may act as an ethanol antagonist in some paradigms.

Animals

Comparison of the effects of benzodiazepine and beta-carboline inverse agonists on body temperature in mice.

The effect of benzodiazepine and beta-carboline inverse agonists on body temperature in mice was investigated using doses shown to be pro-convulsant in other studies. The benzodiazepine partial inverse agonists Ro 15-3505 (0.1-30 mg/kg i.p.), Ro 15-4513 (0.1-10 mg/kg i.p.) and the fuller benzodiazepine inverse agonist Ro 19-4603 (0.03-0.3 mg/kg i.p.) had no effect on rectal temperature. Ro 19-4603 (1 mg/kg i.p.) produced a small hypothermic response. In contrast, the beta-carboline partial and full inverse agonists, FG 7142 (30, 60 mg/kg i.p.) and methyl-6,7-dimethoxy-4-ethyl-beta-carboline-3-carboxylate (3, 10 mg/kg i.p.), produced large decreases in body temperature. These differential effects of benzodiazepine and beta-carboline inverse agonists on body temperature may provide further evidence for the existence of benzodiazepine receptor subtypes.

Animals