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D J Balfour

Publications and source records attributed to D J Balfour.

At least 19 recordsLinked to original sources

Evidence that mesoaccumbens dopamine and locomotor responses to nicotine in the rat are influenced by pretreatment dose and strain.

RATIONALE: Sensitisation of the mesoaccumbens dopamine response to nicotine has been implicated in the development of nicotine dependence. This study explored the doses of nicotine that elicit the response in two strains of rats that differ in their baseline levels of activity. METHODS: Male Sprague-Dawley and Lister hooded rats were pretreated with daily subcutaneous injections of (-)-nicotine for 7 days at doses ranging from 0.03 mg/kg to 0.90 mg/kg. Microdialysis studies were performed on day 9 in conscious freely moving rats, placed in an activity box and challenged with 0.4 mg/kg nicotine. RESULTS: The acute administration of nicotine to drug-naive rats stimulated dopamine overflow in the accumbal shell but not the core. Sprague-Dawley rats, pretreated with nicotine (0.03 mg/kg/day and 0.10 mg/kg/day) showed increased basal overflow of dopamine in the accumbal core. Pretreatment with 0.10 mg/kg/day or 0.30 mg/kg/day, but not 0.03 mg/kg/day or 0.90 mg/kg/day, also caused sensitisation of the response to a nicotine challenge on the test day. Sensitisation of the locomotor response to nicotine exhibited a simple dose-response relationship, with the largest sensitisation being observed in animals pretreated with 0.90 mg/kg/day. In Lister hooded rats, pretreatment with nicotine reduced basal dopamine overflow in the accumbal core and did not cause sensitisation to a subsequent challenge with nicotine. CONCLUSIONS: Sensitisation of the mesoaccumbens dopamine response to nicotine is influenced by pre-treatment dose and the strain of rats used. It is not related directly to the expression of sensitised locomotor responses to the drug and, therefore, may be implicated in other psychopharmacological properties of the drug, including dependence.

Animals↗

The effects of nicotine on neural pathways implicated in depression: a factor in nicotine addiction?

The prevalence of tobacco smoking varies considerably between different groups within the community, tobacco smoking being particularly prevalent in patients with depressive disorder. This review will focus on results, derived from animal studies, which suggest that, in addition to its primary reinforcing properties, nicotine also exerts effects in stressful environments, which may account for its enhanced addictive potential in depressed patients. It focuses on the evidence that depression sensitises patients to the adverse effects of stressful stimuli, and that this can be relieved by drugs that stimulate dopamine release in the forebrain. This mechanism, it is proposed, contributes to the increased craving to smoke in abstinent smokers exposed to such stimuli, because they become conditioned to use this property of nicotine to produce rapid alleviation of the adverse effects of the stress. The review also explores the possibility that chronic exposure to nicotine elicits changes in 5-HT formation and release in the hippocampus which are depressogenic. It is postulated that smokers are protected from the consequences of these changes, while they continue to smoke, by the antidepressant properties of nicotine. However, they contribute to the symptoms of depression experienced by many smokers when they first quit the habit.

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The putative role of extra-synaptic mesolimbic dopamine in the neurobiology of nicotine dependence.

A majority of habitual tobacco smokers find it very difficult to quit the habit because they become addicted to the nicotine present in tobacco smoke. Nicotine, like other psychostimulant drugs of abuse, increases dopamine release in the principal terminal field of the mesolimbic system, the nucleus accumbens, and there is evidence that this mediates the 'rewarding' properties of the drug, which reinforce its self-administration. This review focuses on the working hypothesis that addiction to nicotine, and other psychostimulant drugs, depends upon their ability to evoke a sustained increase in dopamine release directly into the extracellular space which lies between the cells in the nucleus accumbens where it stimulates extra-synaptic dopamine receptors. It is suggested that increased stimulation of these receptors is associated with increased incentive learning or the attribution of increased incentive salience to the cues associated with acquisition and delivery of the drug. The hypothesis proposes that these cues can become conditioned reinforcers of drug-taking behaviour. The receptors, which mediate the effects of nicotine on mesoaccumbens dopamine neurones, are desensitised by sustained exposure to nicotine at concentrations commonly found in the plasma of habitual smokers. It is proposed that, at times when the plasma nicotine concentration is sufficiently high to cause desensitisation of the receptors, tobacco smoking is maintained by the conditioned reinforcers present in the tobacco smoke. The hypothesis predicts, therefore, that conditioned reinforcement may play a more important role in the addiction to tobacco than for most other addictive behaviours. As a result, studies with nicotine have the potential to contribute to our understanding of the neurobiology of addiction which cannot easily be explored using drugs, such as cocaine and amphetamine, which invariably increase dopamine overflow in the forebrain.

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The influence of nicotine pretreatment on mesoaccumbens dopamine overflow and locomotor responses to D-amphetamine.

Pretreatment with psychostimulant drugs causes sensitisation of their effects on locomotor activity and dopamine (DA) overflow in the nucleus accumbens (NAcc) and there is evidence for similarities in the mechanisms involved. This study used in vivo microdialysis in conscious freely moving rats to investigate the extent to which pretreatment with nicotine causes sensitisation to D-amphetamine. Pretreatment with nicotine (0.4 mg/kg s.c. daily for 5 days) caused sensitisation of the locomotor responses to D-amphetamine (0.1-0.5 mg/kg s.c.) but not cocaine (15 mg/kg i.p.). Nicotine pretreatment did not influence the increase in DA overflow into dialysis probes, located in the core of the NAcc, evoked by systemic injections of D-amphetamine or cocaine (15 mg/kg i.p.) but decreased the overflow evoked by the administration of D-amphetamine (1 x 10(-6) M) through the dialysis probe. The results provide further evidence for a dissociation between the expression of sensitised locomotor responses to psychostimulant drugs and sensitisation of their stimulatory effects on DA overflow in the core of the NAcc. The results suggest that the sensitisation of the effects of nicotine on DA overflow in this subdivision of the NAcc may be pharmacologically specific to nicotinic drugs.

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Sensitization of the mesoaccumbens dopamine response to nicotine.

This article reviews the evidence that pretreatment with nicotine causes a regionally selective sensitization of its stimulatory effects on a pathway, the mesoaccumbens dopamine (DA) system, which has been implicated in the locomotor stimulant response to nicotine and its ability to reinforce self-administration. The sensitization evoked by daily injections of nicotine is associated with a regionally selective downregulation of the control of mesoaccumbens DA neurons by inhibitory autoreceptors and depends upon co-stimulation of NMDA glutamatergic receptors. It is suggested that the sensitization is related to enhanced burst firing of mesoaccumbens neurons, which results in an enhancement of DA release into the extracellular space between the cells where it acts upon putative extrasynaptic dopamine receptors. The studies with NMDA receptor antagonists revealed a dissociation between the expression of sensitized mesoaccumbens DA and locomotor responses to nicotine. It is proposed, therefore, that the sensitized mesoaccumbens DA responses to nicotine may be implicated in psychopharmacological responses to drug concerned more closely with nicotine dependence.

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The influence of lobeline on nucleus accumbens dopamine and locomotor responses to nicotine in nicotine-pretreated rats.

In vivo brain microdialysis was used to investigate the influence of lobeline on dopamine (DA) and dihydroxyphenylacetic acid (DOPAC) overflow in the core of the nucleus accumbens of freely-moving rats pretreated with nicotine (0.4 mg x kg(-1), s.c., once per day for 5 days). Locomotion was also recorded. Lobeline, at doses of 0.7, 4.0 and 10.0 mg x kg(-1), i.p., failed to elicit any significant changes in extracellular dopamine or dihydroxyphenylacetic acid levels during the 60 min following its administration and did not stimulate locomotor. The dopamine responses to nicotine (0.4 mg x kg(-1), s.c.), were abolished (P<0.01) if the nicotine challenge was administered 10 min but not 60 min, after lobeline doses of 4.0 and 10.0 mg kg(-1), i.p., but were unaffected following lobeline at the lowest dose tested (0.7 mg x kg(-1), i.p.) at either time. The increase in locomotor activity was significantly attenuated (P<0.01), to a similar extent, when the nicotine was injected 10 min, but not 60 min, after all three doses of lobeline (0.7, 4.0 and 10.0 mg kg(-1), i.p.) when compared with the saline-treated rats. The results suggest that lobeline is a short-acting antagonist of the nicotinic AChRs which mediate the effects of nicotine on mesolimbic dopamine activity and locomotor stimulation.

3,4-Dihydroxyphenylacetic Acid↗

Regional variation in the effects of nicotine on catecholamine overflow in rat brain.

The effects of acute, repeated intermittent and continuous administration of nicotine on the overflow of noradrenaline in the ventral hippocampus and dopamine in the nucleus accumbens and striatum have been studied. Daily injections of nicotine (0.4 mg/kg(-1) for 5 days) enhanced noradrenaline and dopamine overflow in the ventral hippocampus and nucleus accumbens respectively (P < 0.01 and P < 0.05) but not dopamine in the striatum in response to a nicotine challenge. The responses in the ventral hippocampus and nucleus accumbens were attenuated (P < 0.01) by the constant infusion of nicotine at a dose of 1 mg kg(-1) per day; the dopamine response in the striatum required a higher dose (4 mg kg(-1) per day) before desensitisation was observed. The data suggest that the dopamine projections to the striatum are less sensitive to both stimulation and desensitisation by nicotine than the catecholamine projections to the ventral hippocampus and nucleus accumbens.

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Society for Research on Nicotine and Tobacco.

The proceedings of the second annual scientific conference of the Society for Research on Nicotine and Tobacco are summarized. The goal of the annual conference was to disseminate information about ongoing nicotine research from biological, behavioral and social perspectives. Data were presented describing our current understanding of the structure and function of neuronal nicotinic acetylcholine receptors, by which nicotine exerts most, if not all, of its effects in the brain. The conformational complexity of receptor subunits expressed in different brain areas contributes significantly to the complexity of responses observed to nicotinic agonists. Nicotine is being developed as a medication that might be used to maintain smoking cessation and to treat various medical diseases. The potential toxicity of nicotine, apart from cigarette smoking, is an important variable in assessing the benefits and risks of such therapeutic applications. The risks of nicotine-containing medications appear to be far less than those associated with tobacco use. Recent data indicate that cigarette smoking is increasing among young in the United States. Adolescent smokers are interested in quitting and make frequent quit attempts, but are usually not successful. Effective methods are needed to manage adolescent smokers before they become heavily addicted. Nicotine replacement as a pharmacological treatment for smoking cessation has made a significant contribution in improving quit rates. New medications have been developed that target specific populations of smokers.

Adolescent↗

Effects of acute D-CPPene on mesoaccumbens dopamine responses to nicotine in the rat.

Acute administration of the NMDA receptor antagonist, D-CPPene (SDZ EAA 494; 3-(2-carboxypiperazin-4-yl)-1-propenyl-1-phosphonic acid; 2 mg/kg), abolished (P < 0.01) the sensitised mesoaccumbens dopamine response to nicotine (0.4 mg/kg) measured using in vivo microdialysis, but not the increased locomotor activity, observed in rats pretreated with nicotine prior to the test day. D-CPPene enhanced (P < 0.01) the mesoaccumbens dopamine response, but not the locomotor response, to acute nicotine given to drug-naive rats. The data suggest that sensitised mesoaccumbens dopamine responses to nicotine involve co-stimulation of NMDA receptors but that this effect is not closely related to sensitisation of the locomotor response to the drug.

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Pharmacology of nicotine and its therapeutic use in smoking cessation and neurodegenerative disorders.

During the last decade, nicotine has been used increasingly as an aid to smoking cessation and has been found to be a safe and efficacious treatment for the symptoms of nicotine withdrawal. This period has also seen significant advances in our understanding of the mechanisms underlying the psychopharmacological responses to nicotine, including, particularly, those that have been implicated in nicotine addiction. This paper reviews this decade of progress in the specific context of the therapeutic application of nicotine to the treatment of smoking cessation. Other putative future applications, particularly in the treatment of neurodegenerative disorders, are also reviewed.

Alzheimer Disease↗

Neurochemical and behavioural interactions between ibogaine and nicotine in the rat.

1. In vivo brain microdialysis has been employed to investigate the effects of ibogaine on nicotine-induced changes in dopamine overflow in the nucleus accumbens (NAc) of freely moving rats. The effects of the compound on locomotor responses to nicotine and behaviour in the elevated plus-maze were also examined. 2. No changes were observed in the dopamine overflow or the locomotor activity of the animals following the administration of ibogaine (40 mg kg-1, i.p.). However, ibogaine, administered 22 h earlier, significantly (P < 0.01) attenuated the increase in dopamine overflow but not the hyperlocomotion, evoked by nicotine. 3. In the elevated plus-maze test, significant reductions in the open:total runway entries in both saline-treated controls (P < 0.05) and nicotine-treated (P < 0.01) rats were obtained when the animals were tested 22 h after pretreatment with ibogaine (40 mg kg-1, i.p.). The total activity was significantly (P < 0.01) greater in the nicotine-treated rats but this response was not affected by ibogaine pretreatment. 4. Administration of ibogaine was associated with reductions in the tissue levels of 5-hydroxyindoleacetic acid (5-HIAA) in the NAc (P < 0.01) and striatum (P < 0.05) and an increase in the level of this metabolite in the medial prefrontal cortex (mPFC) (P < 0.01) while the levels of dopamine and 5-hydroxytryptamine (5-HT) in the mPFC were reduced (P < 0.05). The DOPAC/dopamine (P < 0.05) and 5-HIAA/5-HT (P < 0.01) ratios were significantly increased in the mPFC for at least 7 days after a single treatment with ibogaine. 5. Ibogaine attenuates the nicotine-induced increases in dopamine overflow in the NAc and may, therefore, inhibit the rewarding effects of this drug. However, the long lasting anxiogenesis induced by ibogaine warrant further investigation before its use could be recommended for smokers.

3,4-Dihydroxyphenylacetic Acid↗

Desensitization of the nicotine-induced mesolimbic dopamine responses during constant infusion with nicotine.

1. The effects of constant nicotine infusions (0.25, 1.0 and 4.0 mg kg-1 day-1) on extracellular dopamine levels in the nucleus accumbens (NAc) and on locomotor activity have been compared with the changes evoked by repeated daily injections (0.4 mg kg-1 day-1 for 5 days) of the drug. 2. The extracellular dopamine concentration in the NAc was significantly increased (P < 0.05) following a challenge dose of nicotine (0.4 mg kg-1, s.c.) in animals which had been pretreated with daily injections of the drug. This effect was accompanied by an enhanced locomotor response to nicotine. 3. The stimulant effects of nicotine on mesolimbic dopamine secretion and on locomotor activity were significantly inhibited (P < 0.01) by the prior administration of mecamylamine (2.0 mg kg-1, s.c.) but not by hexamethonium (2.0 mg kg-1, s.c.). 4. The constant infusion of nicotine at a rate of 1 and 4 but not 0.25 mg kg-1 day-1 abolished the sensitized dopamine response in the NAc to an injection of nicotine in animals pretreated with the drug. The locomotor responses to nicotine in the nicotine-pretreated rats were significantly attenuated by the infusion of nicotine at all 3 doses, although the nicotine induced locomotor activity, in the rats infused with 0.25 mg kg-1 day-1 was also significantly (P < 0.05) higher than that observed in the rats treated acutely with nicotine. 5. Significantly (P<0.01) enhanced mesolimbic dopamine responses, to a challenge injection of nicotine(0.4 mg kg-1, s.c.), were observed 2 and 7 days after termination of the infusion of nicotine (4 mg kg-1 day-1 for 14 days); locomotor responses were enhanced (P<0.01) 1, 2 and 7 days after termination of the infusion.6. The results suggest that sensitized mesolimbic dopamine responses to nicotine occur as a result of stimulation of centrally located nicotinic receptors but that these receptors may be desensitized during periods of chronic exposure to nicotine at doses which may be relevant to smoking.

3,4-Dihydroxyphenylacetic Acid↗

Studies on the influence of nicotine infusions on mesolimbic dopamine and locomotor responses to nicotine.

The present study examined the effects of constant nicotine infusions on dopamine overflow in the nucleus accumbens and on locomotor activity and compared them with the changes evoked by repeated daily injections (one injection per day for 5 days) of the drug. The putative anxiolytic properties of nicotine have also been examined using the elevated plus-maze test of anxiety. Repetitive daily subcutaneous injections of nicotine (0.4 mg/kg) enhanced (P < 0.01) the overflow of dopamine evoked by a challenge dose of the drug (0.4 mg/kg) and increased (P < 0.01) its stimulatory effects on locomotor activity. The constant infusion of nicotine, at doses of 1 and 4 mg/kg per day, abolished (P < 0.05) the effects of a bolus injection of nicotine on extracellular dopamine and attenuated (P < 0.01) the enhanced locomotor response evoked by daily pretreatment with nicotine boli. The mesolimbic dopamine response to a bolus injection of nicotine was not significantly attenuated by nicotine infusions when the dose was reduced to 0.25 mg/kg per day. The locomotor responses in these rats were significantly (P < 0.05) less than those seen in the animals pretreated with nicotine injections alone but were also higher (P < 0.05) than those seen in saline-treated control rats given a bolus injection of nicotine. Neither the constant infusion (4 mg/kg per day) nor the injection of nicotine (0.4 mg/kg) evoked an anxiolytic or anxiogenic effect in the elevated plus-maze test. However, the nicotine infusions did abolish the locomotor stimulant effects of the drug in this apparatus.(ABSTRACT TRUNCATED AT 250 WORDS)

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Neural mechanisms underlying nicotine dependence.

There is little doubt that many habitual smokers find it difficult to quit the habit because they have become addicted to the nicotine present in the smoke. This paper addresses some of the pharmacological mechanisms underlying this addiction and discusses how an understanding of these mechanisms may contribute to the more effective use of nicotine replacement therapy during smoking cessation. It considers critically the evidence that the "rewarding" properties of nicotine, which serve to reinforce drug-seeking behaviour, are related to stimulation of the mesolimbic dopamine system of the brain. The critique focuses specifically on the evidence that many central nicotinic receptors, including those which mediate the effects of the drug on dopamine secretion, are readily desensitized by chronic exposure to agonist and that hypotheses which assume that nicotine inhaled from tobacco smoke invariably results in stimulation of the receptors must be treated with caution. Nicotinic receptors in the brain are, however, heterogeneous in nature with different molecular structures and pharmacologies. It is concluded that the reinforcing properties of nicotine sought by smokers may reflect both stimulation and desensitization of the different nicotinic receptor populations, and that smokers may adjust their smoking habits to achieve the balance of receptor stimulation and desensitization which they find most reinforcing. It seems likely that the efficacy of the different nicotine formulations during the treatment of smoking cessation may also reflect their ability to stimulate or desensitize brain nicotinic receptors.

Animals↗

Behavioural and neurochemical adaptations to nicotine in rats: influence of NMDA antagonists.

1. The repeated co-administration of the non-competitive N-methyl-D-aspartate (NMDA) receptor antagonist dizocilpine (0.1 and 0.3 mg kg-1, i.p.) with nicotine (0.4 mg kg-1, s.c.) attenuated the development of tolerance to the locomotor depressant effect of the nicotine in rats. 2. The repeated co-administration of the competitive NMDA antagonist D-CPPene (SDZ EAA 494; 3-(2-carboxypiperazin-4-yl)-1-propenyl-1-phosphonic acid, 2 and 8 mg kg-1, i.p.) also attenuated tolerance to the locomotor depressant effect of nicotine. 3. Dizocilpine (0.3 mg kg-1, i.p.) pretreatment attenuated sensitization to the locomotor stimulant effect of nicotine (0.4 mg kg-1, s.c.) and prevented sensitization of nicotine-induced dopamine release in the nucleus accumbens. However, pretreatment with dizocilpine alone caused a modest enhancement of the behavioural response to a subsequent acute dose of nicotine. 4. D-CPPene (2.0 mg kg-1, i.p.) pretreatment prevented sensitization to the nicotine-induced dopamine release in the nucleus accumbens. There was no enhanced locomotor response that could be attributed to nicotine pretreatment when D-CPPene was co-administered with nicotine. However, pretreatment with D-CPPene alone enhanced the locomotor response to an acute dose of nicotine. 5. The results suggest the involvement of NMDA receptors in adaptations of the behavioural and neurochemical effects of nicotine that occur as a result of repeated administration of the drug.

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