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Biomedical subjects

B Costall

Publications and source records attributed to B Costall.

At least 235 records · Page 13Linked to original sources

Dopamine antagonistic effects of a series of analogues of oxiperomide and spiroxatrine measured behaviourally in the rodent.

The activity spectra of oxiperomide, spiroxatrine and analogues were determined in two experimental models of abnormal peri-oral movements (induced by intrastriatal dopamine and subcutaneously administered 2-(NN-dipropyl)amino-5,6-dihydroxy-1,2,3,4-tetrahydronaphthalene (NN-diPr-5,6-diOHATN) in the guinea-pig), and in a stereotypy test (induced by subcutaneous apomorphine in the guinea-pig); the ability of the test compounds to induce catalepsy or catatonia in the rat was also determined. The parent compounds oxiperomide and spiroxatrine possessed optimal activity in all tests, although responses to the series of compounds allowed clear differentiation between an ability to antagonize the peri-oral movements (dopamine- or NN-di Pr-5,6-diOHATN induced) and an ability to antagonize apomorphine stereotypy. However, all compounds that antagonized the abnormal peri-oral movements also caused catalepsy/catatonia. The results are considered in terms of the selection of suitable agent(s) for the treatment of peri-oral dyskinesias.

Animals↗

Differential activation by some 2-aminotetralin derivatives of the receptor mechanisms in the nucleus accumbens of rats which mediate hyperactivity and stereotyped biting.

A series of 2-aminotetralin derivatives were injected into the nucleus accumbens of rat to assess the nature of the dopamine mechanisms in this nucleus which modulate hyperactivity and stereotyped behaviour. It was shown that (1) Derivatives with either 5,6- or 6,7-dihydroxy substitutions were each able to induce hyperactivity and stereotyped behaviour, but substitutions in the 5,6-positions conferred greater potency throughout the series. This differential was emphasised by the continued activity of 2-amino-5,6-dihydroxytetralin in the absence of nialamide whilst the action of 2-amino-6,7-dihydroxytetralin was greatly reduced. (2) The hydroxyl functions in both the 5,6- and 6,7-series were essential for activity: dimethyoxy derivatives were inactive. (3) Generally, substitution of the nitrogen atom with one or two methyl groups, or with a butyl group, reduced or abolished activity. However, N-ethyl and N-propyl substitution markedly enhanced stereotypic potential in the 5,6-dihydroxy series (but not in the 6,7-series). The N-isopropyl derivative in the 5,6-series reflected the activity of the N-propyl compound but a further substitution of the N atom with the methyl group (N-isopropyl-N-methyl) greatly reduced the stereotypic potential without modification of the hyperactivity response. In contrast, N,N-dipropyl substitution abolished the hyperactivity response whilst increasing sterotypic potential. (4) alpha and beta-adrenoceptor blocking agents and alpha-methyl-p-tyrosine failed to reduce the hyperactivity induced by 2-amino-5,6-dihydroxytetralin or the stereotyped behaviour induced by 2-(N,N-dipropyl)-amino-5,6-dihydroxytetralin. Both behaviours were, however, very sensitive to blockade by haloperidol, indicating that both the hyperactivity and stereotyped responses are dopamine-dependent. It is concluded that the dopamine mechanisms in the nucleus accumbens which mediate/regulate hyperactivity and stereotyped behaviour are different. Further, it is suggested that the 2-aminotetralins may be valuable tools in studies designed to assess the topography of cerebral dopamine systems.

2-Naphthylamine↗

Aporphines, 21. (1,2) Dopaminergic activity of aporphine and benzylisoquinoline derivatives. Synthesis of 8-hydroxyaporphines and 1-(hydroxybenzyl)-2-n-propyl-1,2,3,4-tetrahydroisoquinolines.

The synthesis and physical properties of 8-hydroxyaporphine (3a) and 8-hydroxy-N-n-propylnoraporphine (3b) are described. The replacement of the rigid aporphine ring system by the more flexible benzyltetrahydroisoquinoline moiety, still containing all the necessary substitutents of the potent dopamine agonist N-n-propylnorapomorphine (1b) (NPA), resulted in the synthesis of 1-(3,4-dihydroxybenzyl)-2-propyl-1,2,3,4-tetrahydroisoquinoline (4). Analogous to 4,1-(4-hydroxybenzyl)-2-propyl-1,2,3,4-tetrahydroisoquinoline (5) was synthesized for a direct comparison with the biological activity of the corresponding 10-hydroxyaporphine (2). All compounds synthesized were evaluated as salts of their racemates. In animals with unilateral 6-OHDA lesion of the nigrostriatal pathway, (-)NPA and 2 caused dose-dependent contralateral circling behavior although activity was greatly reduced for the monohydroxylated aporphine 2. 3b,4, and 5 were inactive at doses of 0.25-4.0 mg/kg sc. Compounds 2 and 3b exhibited very weak activity in the stereotype tests in comparison to the response obtained with apomorphine and (-)-NPA. 4 and 5 failed to induce any sterotyped response. These compounds were also investigated for their ability to stimulate locomotor activity following direct injection into the nucleus accumbens. (-)-NPA induced a modest increase in activity but apomorphine completely failed to elicit a locomotor responses and antagonized the effect induced by dopamine. 2,3b, 4 and 5 neither enhanced locomotor activity on direct injection into the nucleus accumbens nor antagonized the hyperactivity response to intraacumbens dopamine when administered peripherally. On direct injection into the caudate-putamen only apomorphine induced stereotyped biting; (-)-NPA, 2, 3b, 4, and 5 were inactive. The differential activity of the aporphine derivatives in these tests strongly supports the possible existence of different types of dopamine receptors within the extrapyramidal and mesolimbic systems. The present studies confirm that the flexible benzylisoquinolines 4 and 5 do not adopt the active dopamine conformation and that the rigid aporphines, preferably containing hydroxyl functions at the 10 or 11 positions, are of greater importance in eliciting potent dopamine agonist activity.

Animals↗

The relationship between striatal and mesolimbic dopamine dysfunction and the nature of circling responses following 6-hydroxydopamine and electrolytic lesions of the ascending dopamine systems of rat brain.

The importance of extrapyramidal and mesolimbic function for circling behaviour was investigated by placing 6-hydroxydopamine (6-OHDA) and electrolesions in the cell bodies, axons and terminals of each system. Circling behaviour was weak when 6-OHDA was placed at the centre of the substantia nigra (SN), but the characteristic contralateral/ipsilateral turning to apomorphine/amphetamine were recorded. Circling was more marked when 6-OHDA was placed anterior to the SN but was generally absent following injections posterior to the SN. However, 6-OHDA placed in the medial forebrain bundle in the lateral hypothalamus resulted in intense contralateral/ipsilateral turning to apomorphine/amphetamine. Generally, the intensity of circling responses was related to the degree of striatal dopamine (DA) depletion but the more effective lesions also caused reductions in mesolimbic DA content. However, circling was not observed following any 6-OHDA injection into the mesolimbic DA system and it is concluded that mesolimbic DA function is not essential for the initiation of circling. In contrast to the 6-OHDA lesions, rats circled ipsilateral to both apomorphine and amphetamine when the SN was damaged by electrocoagulation to cause marked depletion of striatal dopamine. Lesser depletions of striatal dopamine after electrocoagulation in different regions of the medial forebrain bundle were associated with a lower intensity of ipsilateral circling to both drugs. In general, the differences between 6-OHDA and electrolesions could not be explained by additional damage to ascending noradrenaline or 5-hydroxytryptamine pathways. Lower doses of apomorphine were effective in the 6-OHDA circling rats, and the ipsilateral striatum of such rats was more sensitive to directly applied DA. Higher doses of apomorphine were required to produce circling after chronic electrolesions which rendered the ipsilateral striatum insensitive to DA. The contralateral circling to apomorphine after 6-OHDA lesions was abolished by chronic but not by acute electrolesion of the SN. It is suggested that electrolesions of the SN cause different effects to 6-OHDA because they destroy neuronal pathways in addition to the dopaminergic nigrostriatal tract. These appear to be required for the expression of circling behaviour caused by stimulation of the denervated striatum. Whereas 6-OHDA lesions result in super-sensitivity of the denervated strital DA receptors, electrolesions may cause a hypo-sensitivity of the same receptor sites.

Afferent Pathways↗

Characterisation of the mechanisms for hyperactivity induction from the nucleus accumbens by phenylethylamine derivatives.

A wide variety of phenylethylamine derivatives were injected bilaterally into the nucleus accumbens of rat following a nialamide pretreatment and hyperactivity was recorded. 2-Phenylethylamine was shown to induce a low intensity hyperactivity but the introduction of hydroxyl functions on to the phenyl ring at the 3- and/or 4-positions enhanced activity and m- and p-tyramine and dopamine each caused marked hyperactivity in the 3.4-25 mug dosage range. Methylation of one hydroxyl function reduced activity (3-methoxy-4-hydroxy- and 3-hydroxy-4-methoxy-phenylethylamine); 2(3,4-methylenedioxyphenyl) ethylamine was inactive. Agents with substitution of the side chain, such as noradreline, d-amphetamine and alpha-methyldopamine, were all shown to induce marked hyperactivity at doses of 1.6-25 mug. Alterations in the chain length markedly reduced activity (4-(3,4-dihydroxyphenyl) butylamine, 3,4-dihydroxybenzylamine). A variety of N-substituted compounds were shown to be potent inducers of hyperactivity from the nucleus accumbens (adrenaline, epinine, N-ethyldopamine, N-isopropyl-dopamine, isoprenaline) (0.2-25 mug). However, N-methyl-N-isopropyldopamine showed only weak activity and N,N-dimethyldopamine was inactive. All hyperactivity effects were shown to be dose-dependent. The hyperactivities induced by dopamine, noradrenaline and isoprenaline were each inhibited in a dose-dependent manner by subsequent injections of fluphenazine (1.25-25 mug) into the nucleus accumbens, although no reductions were recorded following similar injections of saline, solvent, 2% procaine, 50 mug propranolol or 50 mug piperoxan.

Animals↗

Dissociation of stereotyped biting responses and oro-bucco-lingual dyskinesias.

A comparison was made of the doses of neuroleptic and related agents required to inhibit the stereotyped biting/gnawing/licking response induced in the guinea pig by systemically administered apomorphine and d-amphetamine or by dopamine administered bilaterally into the striatum. Haloperidol. lenperone, fluphenazine (0.5-8 mg/kg i.p.) and fluspirilene (0.125-8 mg/kg i.p.) each inhibited the stereotyped behaviour induced by apomorphine and amphetamine but doses up to 16 mg/kg i.p. failed to modify the dyskinesias induced by intrastriatal dopamine. Pimozide similarly abolished the stereotypies (0.125-8 mg/kg i.p.) but a larger dose (16 mg/kg i.p.) also abolished the dopamine-induced dyskinesias. However, oxiperomide and spiroxatrine were both shown to possess marked anti-dyskinetic (1-2 mg/kg i.p.) as well as anti-stereotypic (0.25-5 mg/kg i.p.) properties. Thioridazine, clothiapine, clozapine, sulpiride and metoclopramide were generally inactive against the stereotypies and dyskinesias although 1.25-5 mg/kg s.c. morphine effectively abolished stereotyped behaviour and the dopamine-induced dyskinesias were inhibited in a small proportion of animals. It is suggested that the dopamine mechanisms involved with stereotypy induction differ from those activated by intrastriatally administered dopamine to induce abnormal oro-facial movements, and that, since only the effects of intrastriatal dopamine showed the same relative degree of resistance to neuroleptic inhibition as clinical dyskinesias, that this may be more applicable to the clinical situation than the stereotypy model.

Animals↗

Hyperactivity induced by tetrahydroisoquinoline derivatives injected into the nucleus accumbens.

Several derivatives of tetrahydroisoquinoline were injected bilaterally into the nucleus accumbens of rat 2 h after a nialamide pretreatment and activity recorded in cages fitted with photocells. 1,2,3,4-Tetrahydroisoquinoline, 6,7-dimethoxy-1,2,3,4-tetrahydroisoquinoline, 1,2,3,4-tetrahydro-6,7-dihydroxy-1-(3,4-dihydroxybenzyl)-isoquinoline (tetrahydropapaveroline) and 6,7-dihydroxy-1,2,3,4-tetrahydroisoquinoline caused virtually no change in locomotor activity and 2-methyl-1,2,3,4-tetrahydroisoquinoline and 2-methyl-6,7-dihydroxy-1,2,3,4-tetrahydroisoquinoline caused only modest hyperactivity responses. However, 3-methyl-6,7-dihydroxy-1,2,3,4-tetrahydroisoquinoline and 3-methyl-6,7-methylenedioxy-1,2,3,4-tetrahydroisoquinoline were both shown to markedly increase activity in a dose-dependent manner. Of these two compounds, the 3-methyl-6,7-methylenedioxyderivatives was most active and equalled the effectiveness of dopamine. The responses to dopamine and to 3-methyl-6,7-methylenedioxy-1,2,3,4-tetrahydroisoquinoline were both threshold at 3.125 mug and maximum at 50 mug. Both effects developed within 1-2 h and persisted for at least 6 h. The hyperactivity induced by dopamine was antagonised in a dose-dependent manner by haloperidol: propranolol and aceperone were without effect. Similar results were obtained for these blocking agents against the responses to 3-methyl-6,7-methylenedioxy-1,2,3,4-tetrahydroisoquinoline and 2-methyl-1,2,3,4-tetrahydroisoquinoline but aceperone and propranolol, in addition to haloperidol, were shown to inhibit the hyperactivity induced by 3-methyl-6,7-dihydroxy-1,2,3,4-tetrahydroisoquinoline.

Animals↗

Non-specific supersensitivity of striatal dopamine receptors after 6-hydroxydopamine lesion of the nigrostriatal pathway.

6-Hydroxydopamine (6-OHDA) was injected unilaterally into the area of the ascending dopamine pathways in the lateral hypothalamus. Rats immediately developed spontaneous ipsilateral circling which was enhanced by d-amphetamine (0.63-2.5 mg/kg i.p.) and reversed to a contralateral response by apomorphine (0.015-0.5 mg/kg s.c.). These effects were maximal by the 8th postoperative day. At a time when circling responses were established and biochemical determinations showed striatal dopamine levels to be reduced by at least 80% (limbic dopamine depleted by 60%, telencephalic noradrenaline by 35% but no reductions in 5-hydroxytryptamine), the injection of dopamine (50, 100 mug) and apomorphine (12.5, 25 mug) into the striatum ipsilateral to the 6-OHDA lesion induced contralateral circling/asymmetries. These effects were of lower intensity or absent in non-lesioned rats but a consistent increase in potency of dopamine after 6-OHDA could not be demonstrated. However, similar injections of 5-hydroxytryptamine and noradrenaline, which are completely inactive in normal rats, caused more marked contralateral asymmetries/circling at lower intrastriatal doses than dopamine (5-hydroxytryptamine 25-100 mug, noradrenaline 6.25-100 mug). Dyskinesias of the contralateral forelimb were induced by unilateral intrastriatal dopamine (100 mug) in a small proportion of non-lesioned rats: the effects were enhanced when dopamine (50-100 mug) was injected into the striatum ipsilateral to a 6-OHDA lesion. Both potency and intensity of effect were enhanced. Noradrenaline (25-100 mug) also induced contralateral dyskinesias in the 6-OHDA-lesioned rats although similar injections were inactive in non-lesioned rats. 5-Hydroxytryptamine was inactive in this effect in both groups of rats. It is suggested that after 6-OHDA lesion of the nigrostriatal pathway striatal dopamine receptors may change both their sensitivity and specificity.

Animals↗

The importance of 5-hydroxytryptamine for the induction of harmine tremor and its antagonism by dopaminergic agonists assessed by lesions of the midbrain raphe nuclei.

The brain lesion technique was used to destroy the ascending 5-hydroxytryptamine (5-HT) system at its cell bodies in the dorsal and medial raphe nuclei in order to assess the importance of 5-HT for the induction of harmine tremor and its antagonism by the dopaminergic agonists, L-DOPA, apomorphine and d-amphetamine. Lesions of the medial or dorsal raphe nucleus reduced the intensity of harmine tremor. The remaining tremor was generally resistant to further reduction by the dopaminergic agonists. 5-hydroxytryptophan was shown to enhance tremor: this effect was reduced both by the raphe lesions and by treatment with L-DOPA. The data are discussed in terms of the possible relationship between 5-HT and dopamine.

Alkaloids↗

Antagonism of the hyperactivity induced by dopamine applied intracerebrally to the nucleus accumbens septi by typical neuroleptics and by clozapine, sulpiride and thioridazine.

Dopamine administered intracerebrally to the nucleus accumbens septi was shown to induce a dose-dependent hyperactivity following pretreatment with nialamide. This effect was optimum following the injection of 50 mug dopamine. The hyperactivity induced by this dose of dopamine was inhibited by the i.p. injection of both the typical neuroleptic agents, haloperidol, fluphenazine, pimozide and clothiapine (0.05--0.5 mg/kg i.p.), and the atypical neuroleptics clozapine, sulpiride and thioridazine (0.5--20 mg/kg i.p.) although, generally, the doses required ot the latter were in the order of 20--100 times those of the typical agents to produce an equivalent effect. In contrast, cataleptic doses of metoclopramide (10--30 mg/kg i.p.) failed to reduce the dopamine-induced hyperactivity: aceperone and propranolol were similarly ineffective. However, inhibition of hyperactivity was recorded following the peripheral administration of the antimanic drug, IB503. It is suggested that the ability of a drug to antagonise the hyperactivity induced by the injection of dopamine into the nucleus accumbens septi may be of value in the detection of antipsychotic activity.

Animals↗