Cholecystokinin receptors and animal models of anxiety.
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Biomedical subjects
Publications and source records attributed to J Harro.
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An atypical antipsychotic drug clozapine and a selective sigma antagonist BMY 14802 were significantly less effective in the behavioural experiments (against apomorphine, d-amphetamine and MK-801), as well in the radioligand binding studies against 3H-spiperone (dopamine2-receptors) and 3H-haloperidol (sigma receptors) in the rat brain, as compared to a typical antipsychotic compound haloperidol. Contrary to haloperidol and BMY 14802, clozapine was a relatively selective antagonist of MK-801-induced motor excitation in the mouse. A nearly 3-fold lower dose of clozapine was needed to block the effect of MK-801 (6.4 mumol/kg) as compared to the action of amphetamine (17 mumol/kg). Haloperidol and clozapine, but not BMY 14802, antagonized apomorphine-induced aggressiveness in the rat. After long-term treatment (for 15 days) with BMY 14802 (10 mg/kg daily), haloperidol (0.5 mg/kg daily) and clozapine (10 mg/kg daily) the motor depressant effect of apomorphine (0.15 mg/kg) was reversed. Chronic haloperidol treatment, but not administration of BMY 14802 and clozapine, increased the number of dopamine2-receptors in the rat brain. BMY 14802 caused upregulation of sigma receptors in frontal cortex, whereas haloperidol induced the opposite change in cerebellum. Repeated treatment with clozapine significantly augmented the motor stimulating effect of MK-801 in rats. Simultaneously with a behavioural change the density of 3H-TCP binding sites in the rat forebrain was elevated after long-term treatment with clozapine, probably indicating the involvement of PCP binding sites at NMDA channel in the action of clozapine.
Peripheral administration of cholecystokinin tetrapeptide (CCK-4) at non-sedative doses (25-50 micrograms/kg) decreased the exploratory activity of rats in an elevated plus-maze. This effect was antagonized by treatment with CCK receptor antagonists proglumide (1 and 10 mg/kg), lorglumide (0.1 and 1 mg/kg), L 365,260 (10 micrograms/kg) and devazepide (1 mg/kg). The results suggest that the exploratory behaviour of rats can be altered by pharmacological manipulations at CCK-B receptors.
Two groups of rats were selected from a small animal population on the basis of their exploratory activity in an elevated plus-maze model of anxiety. One group had a considerably lower and the other one a higher exploratory activity than the average total population. These subgroups were termed "anxious" and "non-anxious", respectively. In both groups central benzodiazepine binding sites in various brain structures were labelled with 3H-flunitrazepam. Peripheral benzodiazepine binding sites labelled in vitro with different tritiated ligands were also studied in several peripheral organs including blood platelets and lymphocytes. "Anxious" animals had a significantly lower number of 3H-flunitrazepam binding sites in the cerebral cortex but not in the hippocampus and cerebellum. In this subgroup 3H-Ro 5-4864 binding to peripheral benzodiazepine recognition sites was also lower than in the other one in adrenals, kidneys, platelets and lymphocytes. In the heart no differences of 3H-Ro 5-4864 binding between subgroups studied were found. Although in "anxious" rats 3H-diazepam and 3H-PK 11195 binding was significantly lower only in lymphocytes, a somewhat decreased binding to these ligands was also present in platelets. No significant differences in the affinity were found between the two groups throughout the experiments described. The results indicate that behavioral anxiety in rats is correlated not only with the lower number of central benzodiazepine receptors but also with a lower density of peripheral benzodiazepine binding sites in several peripheral organs including platelets and lymphocytes.
The influence of the CCK-A antagonist devazepide and the CCK-B/gastrin antagonist L-365,260 on the locomotor activity of mice was studied. Devazepide and L-365,260 had opposite effects on spontaneous locomotor activity, and on caerulein- and apomorphine-induced hypomotility in the mouse. Devazepide in high doses (0.1-1 mg/kg IP) reduced spontaneous motor activity, whereas L-365,260 at a high dose (1 mg/kg IP) increased the activity of mice. Devazepide (0.1-10 micrograms/kg) moderately antagonized the sedative effect of apomorphine (0.1 mg/kg SC) and caerulein (25 micrograms/kg SC), whereas L-365,260 (1-10 micrograms/kg) significantly potentiated the actions of dopamine and CCK agonists. Concomitant administration of caerulein (15 micrograms/kg SC) and apomorphine (0.1 mg/kg SC) caused an almost complete loss of locomotor activity in the mouse. Devazepide and L-365,260 (0.1-10 micrograms/kg) were completely ineffective against caerulein-induced potentiation of apomorphine hypomotility. Devazepide in high doses (0.1-1 mg/kg), reducing the spontaneous motor activity of mice, counteracted the motor excitation induced by d-amphetamine (5 mg/kg IP). The CCK agonist caerulein (100 micrograms/kg SC) had a similar antiamphetamine effect. Devazepide (1-100 micrograms/kg) and L-365,260 (1 micrograms/kg) reversed completely the antiamphetamine effect of caerulein. The results of present study reflect apparently distinct role of CCK-A and CCK-B receptors in the regulation of motor activity. The opposite effect of devazepide and L-365,260 on caerulein- and apomorphine-induced hypolocomotion is probably related to the antagonistic role of CCK-A and CCK-B receptor subtypes in the regulation of mesencephalic dopaminergic neurons. The antiamphetamine effect of caerulein is possibly linked to the stimulation of CCK-A receptors in the mouse brain, whereas the blockade of both subtypes of the CCK-8 receptor is involved in the antiamphetamine effect of devazepide.
Central cholecystokinin (CCK)-ergic neurotransmission has been implicated in the genesis of negative emotions. Most animal studies on the neurochemical background of CCK-induced anxiety have, up to date, exploited exploratory activity paradigms. The interaction of CCK with GABAergic inhibitory neurotransmission, mediated probably through CCK-B receptors, could be the neurochemical substrate for anxious type of exploratory behaviour. However, the CCK-A and CCK-B receptor-mediated interactions of this neuropeptide with mesencephalic dopaminergic regulation of motivation for locomotor activity have the potential to interfere with the behavioural outcome from routine exploratory activity tests. Systemic treatment with CCK receptor antagonists is likely to influence both GABA- and dopamine-linked CCK-ergic neurotransmission, and therefore their effects in exploratory activity tests should be interpreted with caution.
Rats with high and low exploratory activity in an elevated plus-maze model of anxiety were separated into subgroups termed 'non-anxious' and 'anxious' respectively according to the number of sectors the animals crossed and the total amount of time they spent in the open part of the plus-maze. The binding parameters of benzodiazepine and cholecystokinin octapeptide (CCK-8) receptors in frontal cortex and hippocampus of selected animals were studied and compared to an animal group representing the total mean scores and to home-cage controls. It was established that anxious rats had a significantly lower number of benzodiazepine receptors in frontal cortex as compared to non-anxious animals and in hippocampus as compared to home-cage controls. There was also a decreased number of CCK-8 receptors in hippocampus of anxious rats as compared to the non-anxious and control groups. Non-anxious animals had a significantly lower number of CCK-8 receptors in frontal cortex than anxious and control rats. Acute treatment of rats with anxiogenic benzodiazepine inverse agonist FG 7142 (10 and 20 mg/kg) did not influence benzodiazepine binding in brain regions under investigation but caused upregulation of CCK-8 receptor binding in frontal cortex. On the other hand, CCK-8 analogues caerulein and pentagastrin, administered in doses which inhibit exploratory activity in plus-maze (100 or 500 ng/kg respectively), decreased the number of benzodiazepine binding sites in rat frontal cortex if injected intraperitoneally but did not affect CCK-8 binding. The present findings indicate that benzodiazepine and CCK-8 receptor binding characteristics in brain undergo rapid and behaviourally specific changes during stressful events.
This study examined the effect of chronic diazepam administration on central benzodiazepine and CCK-8 receptor binding in rat brain. After a two-week treatment with diazepam (5 mg/kg per day) tolerance developed towards the sedative but not towards the anxiolytic action of this drug as determined using elevated plus-maze and open field tests. The % entries the rats made onto open arms and % time the rats spent in open arms were markedly decreased 24 h after the last dose of diazepam, probably indicating withdrawal anxiety. There were no changes in [3H]flunitrazepam binding either 30 min or 24 h after the last diazepam dose. However, 30 min after the last diazepam administration the apparent number of sulphated [3H]CCK-8 binding sites was significantly increased in the primary olfactory cortex. Acute diazepam treatment (5 mg/kg) had no influence on [3H]flunitrazepam or sulphated [3H]CCK-8 binding in any brain region studied. Cessation of chronic diazepam treatment was followed after 24 h by an increase in the number of CCK-8 receptors in frontal cortex and hippocampus as compared to the vehicle group. These results demonstrate that certain alterations in CCK-8 receptor characteristics may be important in the anti-anxiety effect, tolerance, and withdrawal reaction reaction after benzodiazepine administration.
Intraperitoneal administration of thymopentin, a thymopentin II-derived pentapeptide, had no stable and evident effect in the two anxiety models (elevated plus-maze and licking-conflict test) studied. However, in the elevated plus-maze test thymopentin antagonized the behavioral effects of DMCM, a beta-carboline derivative with anxiogenic properties. Further, it was demonstrated that the licking-conflict test procedure itself produced a significant elevation of plasma corticosterone levels, increased the number of [3H]flunitrazepam and decreased the number of [3H]muscimol binding sites in rat hippocampus. The forced-swimming stress similarly to the licking-conflict test also caused an increase in hippocampal [3H]flunitrazepam binding sites. Although ineffective behaviorally in the tests for anxiety, thymopentin pretreatment effectively reversed the changes in corticosterone levels caused by the licking-conflict test. Moreover, it normalized the changed number of benzodiazepine and GABA receptors after stressful stimuli. It is well known that not all anxiolytic drugs (i.e. buspirone) are equally active in behavioral tests for anxiety. According to our data we propose that thymopentin has stress-protective activity. As in vivo and in vitro thymopentin did not change [3H]-flunitrazepam and [3H]muscimol binding, the direct effect of this peptide on the GABA-benzodiazepine-Cl- ionophore receptor complex is unlikely. The action of this peptide on GABA release and/or metabolism can be suggested.
Forced swimming stress caused a significant increase in the density of central type benzodiazepine binding sites in rat cerebral cortex and hippocampus. The number of peripheral type benzodiazepine binding sites was also enhanced on blood platelets. The affinity of neither central nor peripheral type benzodiazepine binding sites was changed considerably after swimming stress. Pretreatment of rats with beta-(phenyl)GABA (100 mg/kg), a GABAB agonist, almost completely eliminated the described changes of the both types of benzodiazepine binding sites caused by swimming stress. In an elevated plus-maze model of anxiety beta-(phenyl)GABA itself was inactive but like diazepam effectively counteracted the behavioural effects of DMCM, a beta-carboline derivative with anxiogenic properties. The possible involvement of benzodiazepine receptors in the mechanism of action of beta-(phenyl)GABA is discussed.
Central- and peripheral-type benzodiazepine (BD) receptors were labelled either by 3H-flunitrazepam or 3H-Ro 5-4864 in vitro after stress and in vivo administration of GABAA and GABAB agonists. A significant increase in the density of cerebral cortex and kidney BD binding sites was observed in rats after forced swimming stress. Similar changes in both type of BD receptors were also followed when naive (stressed) and handling-habituated (unstressed) rats were used. Stress in both models was unable to change the affinity of BD receptors in cerebral cortex, but significantly lowered it in kidneys. Acute treatment of rats with muscimol (1.5 mg/kg) or (-)baclofen (5 mg/kg) resulted in marked increase in the affinity of BD binding not only in cerebral cortex but also in kidneys. After (-)baclofen treatment the number of BD binding sites was lowered in the structures studied. In a separate study mice selected according to their behavioral response to (-)baclofen (1 mg/kg) were studied. Two weeks after the selection it appeared that baclofen responders were behaviorally more "anxious" than baclofen nonresponders. The number of BD binding sites was reduced in cerebral cortex, cerebellum, heart and kidneys in baclofen responders as compared to baclofen nonresponders. In several cases the changes in peripheral BD binding sites were even more pronounced than those in central ones. The data presented here evidence that peripheral- and central-type BD receptors are regulated similarly by GABA and some models of stress. The physiological mechanisms involved in similar regulation of central- and peripheral-type BD receptors are yet unknown.
In an elevated plus-maze model of anxiety mice treated with the benzodiazepine inverse agonist DMCM (0.5-1.5 mg/kg i.p.) spent significantly less time on the open arms and showed the decreased number of open arm entries. The opposite i.e. increased time spent on the open arms and the higher number of open arm entries was registered after diazepam (1.5 mg/kg). The results are consistent with the results obtained in the other animal tests and support the idea that this procedure is suitable for detecting anxiolytic/anxiogenic effects of benzodiazepine receptor ligands. After testing of 84 mice in an elevated plus-maze substantial differences were detected between the individuals. According to the behavioral response two subgroups of animals with DMCM or diazepam like exploratory activity (as compared to the whole group data) termed as "anxious" or "non-anxious", respectively, were chosen for further binding studies. "Anxious" animals had significantly lower numbers of 3H-flunitrazepam and 3H-muscimol binding sites as compared to "non-anxious" animals in cerebral cortex but not in cerebellum. No differences in the affinity were found between the two groups studied. The results indicate that behavioral anxiety in mice is in correlation with the decreased number of GABA and benzodiazepine receptors in cerebral cortex.
Mice treated with (+/-)baclofen (2 mg/kg i.p.) displayed profound differences to the motor depressant action of this drug. Mice were divided into three groups termed as responders (20%), moderate responders (65%) and nonresponders (15%). No differences were detected in the spontaneous motor activity between the selected groups. When the animal population in the home cages was kept unchanged the different responses to baclofen were reproducible three weeks after selection. A borderline dose of diazepam (1.5 mg/kg) decreased highly significantly motor activity in baclofen responders but failed to do this in nonresponders group. Ex vivo studies with 3H-flunitrazepam (labelling in vivo and binding carried out in vitro) demonstrated that 3H-flunitrazepam binding in mouse forebrain was significantly smaller in baclofen responders than in nonresponders. Further, the apparent number of 3H-flunitrazepam binding sites in vitro was significantly decreased in the forebrain of baclofen responders. It is concluded that some actions of baclofen depend on the functional state of benzodiazepine recognition sites.
Pinoline (6-methoxy-1,2,3,4-tetrahydro-beta-carboline) is a naturally occurring compound in the mammalian body which inhibits serotonin (5-hydroxytryptamine) uptake and monoamine oxidase-A activity. The present study was designed to assess potential antidepressant- or anxiolytic-like behavioural effects of pinoline in rat forced swimming, open field and elevated plus-maze tests. In the forced swimming test pinoline dose-dependently reduced the immobility time, starting from a dose of 8 mg kg-1. In the open field test pinoline reduced the total open field activity. This effect was significant at 20 mg kg-1, whereas the dose of 15 mg kg-1 only significantly reduced the number of rearings. In the plus-maze test pinoline decreased the total number of arm entries, the number of line crossings and time spent in the open part of the apparatus, but increased the number of approaches to the open part of the maze. The effects of pinoline were dose-dependent in all three behavioural tests used. Since antidepressant drugs reduce the immobility time in the forced swimming test but typically inhibit activity in open field and elevated plus-maze tests, the behavioural effects of pinoline resemble those of drugs with an antidepressant profile.
Effects of caerulein, a cholecystokinin octapeptide (CCK-8) receptor agonist, on exploratory activity of mice were investigated. Exploratory and locomotor activity of animals were measured using elevated plus-maze and open field tests. The systemic administration of caerulein at non-sedative doses (100 ng/kg-1 micrograms/kg i.p.) resulted in a significant decrease in the exploratory activity of mice. This effect was completely blocked by proglumide, a CCK-8 receptor. Acute treatment with low doses (0.1-0.75 mg/kg i.p.) of diazepam did not attenuate the anxiogenic-like effect of caerulein, but at more high doses of diazepam the coadministration depressed locomotor activity in mice. After subchronic diazepam treatment (2.5 mg/kg once a day, 10 days, i.p.) tolerance was developed toward the sedative effect of diazepam, and 72 h after withdrawal of the drug the animals showed increased anxiety in the plus-maze test. 30 min after the last injection procedure the anxiogenic-like effect of caerulein (500 ng/kg i.p.) on exploration was absent in both diazepam or vehicle groups. However, 72 h after the last pretreatment injection caerulein (500 ng/kg i.p.) reduced significantly the exploratory activity in control group, whereas it was inactive after diazepam withdrawal. The results obtained in this study support the hypothesis that endogenous CCK-8 an CCK-8 receptors are involved in the neurochemistry of anxiety and the anxiolytic action of benzodiazepine tranquillizers.