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Cocaine

Selective regional effects on central monoamines

  • Proceedings of the Symposium Cellular and Molecular Mechanisms of Drugs of Abuse Cocaine and Methamphetamine held in Nice, France, August 19–20, 1993
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Abstract

Cocaine HCl (0, 10, or 50 mg/kg) was injected into adult male ICR mice ip. Thirty minutes later, the brains were removed, and nine regions were isolated: olfactory bulbs, olfactory tubercles, prefrontal cortex, septum, striatum, amygdala, hypothalamus, hippocampus, and thalamus. Using high-performance liquid chromatography, concentrations of norepinephrine, dopamine, serotonin, and their major metabolites and the metabolite/neurotransmitter ratios were determined as an indicator of utilization. Serotonergic systems responded most dramatically. 5HIAA/5-HT decreases were seen in all the brain regions, except the septum, hippocampus, and olfactory bulbs. In most instances, the alterations were dose-dependent. The most profound changes were seen in the amygdala, prefrontal cortex, hypothalamus, and thalamus. For noradrenergic systems, significant responses were seen only in the amygdala, prefrontal cortex, and hypothalamus, but then only at the lower dose. The dopaminergic responses were more complex and not always dose-dependent. The DOPAC/DA ratio was decreased only in the amygdala and striatum at the lower dose, and the olfactory tubercles at the higher dose. It was increased in the septum. The HVA/DA ratios were decreased in the amygdala, prefrontal cortex, and hypothalamus, but only at the lower dose (like MHPG/NE). The 3MT/DA ratio was decreased in the thalamus at the lower dose and in the olfactory tubercles at the higher dose, whereas it was increased in the prefrontal cortex at the lower dose. The HVA and DOPAC routes of degradation were both utilized only by the amygdala. Thus, cocaine produced its most comprehensive effects in this nucleus, as well as the greatest absolute percentage changes for all three of the monoamine systems studied.

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References

  • Brown E. E., Robertson G. S., and Fibiger H. C. (1992) Evidence for conditional neuronal activation following exposure to a cocaine-paired environment: role of forebrain limbic structures.J. Neurosci. 12, 4112–4121.

    PubMed  CAS  Google Scholar 

  • deWit H. and Wise R. A. (1977) Blockade of cocaine reinforcement in rats with the dopamine receptor blocker pimozide but not the noradrenergic blocker phentolamine or phenoxybenzamine.Can. J. Psychol. 31, 195–203.

    CAS  Google Scholar 

  • Gale K. (1984) Catecholamine-independent behavioral and neurochemical effects of cocaine in rats, inMechanisms of Tolerance and Dependence (Sharp C. W., ed.), NIDA Res. Mon.54, 84–133.

  • George F. R. (1989) Cocaine produces low-dose locomotor depressant effects in mice.Psychopharmacology 99, 147–150.

    Article  PubMed  CAS  Google Scholar 

  • Goeders N. E. and Kuhar M. J. (1987) Chronic cocaine administration induces opposite changes in dopamine receptors in the striatum and nucleus accumbens.Alcohol Drug Res. 7, 207–216.

    PubMed  CAS  Google Scholar 

  • Gold M. S., Washton A. M., and Dackis C. S. (1985) Cocaine abuse: neurochemistry, phenomenology and treatment, inCocaine Use in America: Epidemiologic and Clinical Perspectives. NIDA Research Monograph Series61, 1130–1150.

  • Hadfield M. G., Mott D. E. W., and Ismay J. A. (1980) Cocaine: effect of in vivo administration on synaptosomal uptake of norepinephrine.Biochem. Pharmacol. 29, 1861–1863.

    Article  PubMed  CAS  Google Scholar 

  • Hadfield M. G. (1982) Cocaine: peak increase in isolation induced fighting post-injection.J. Neuropharmacol. 21, 711–713.

    Article  CAS  Google Scholar 

  • Hadfield M. G., Mott D. E. W., and Nugent E. A. (1982) Cocaine increases isolation induced fighting in mice.Pharmacol. Biochem. Behav. 16(2), 359–360.

    Article  PubMed  CAS  Google Scholar 

  • Hadfield M. G. and Nugent E. A. (1983) Cocaine: comparative effect on dopamine uptake in extrapyramidal and limbic systems.Biochem. Pharmacol. 32, 744–746.

    Article  PubMed  CAS  Google Scholar 

  • Hadfield M. G., Crane P., King M. E., Nugent E. A., Milio C., Powell M. D., and Narasimhachari N. (1985) Determination of 13 catecholamines, indolemines, metabolites and precurors in less than 20 minutes during a single HPLC run.J. Liquid Chromatogr. 8, 2689–2697.

    Article  CAS  Google Scholar 

  • Hadfield M. G., Milio C., and Narasimhachari N. (1986) HPLC determination of several monoamines in brain tissue of DBA/2 mice during a single run of 20–25 minutes without prior clean-up of samples.J. Chromatogr. 369, 449–453.

    Article  PubMed  CAS  Google Scholar 

  • Hadfield M. G. and Milio C. (1987a) Cocaine and regional monoamine utilization in mouse brain.Soc. for Neurosci. #464.6 (abstract).

  • Hadfield M. G. and Milio C. (1987b) Simultaneous HPLC analysis of catecholamines and indoleamines in mouse brain tissue following acetate extraction and treatment with ascorbate oxidase.J. Liquid Chromatgr. 10, 2039–2046.

    Google Scholar 

  • Hadfield M. G. and Milio C. (1987c) HPLC determination of monoamines in rat brain after enzymatic treatment with ascorbate oxidase and sulfatase.J. Liquid Chromatgr. 10, 2047–2452.

    Article  Google Scholar 

  • Hadfield M. G. and Milio C. (1992) Cocaine and regional brain monoamines in mice.Pharmacol. Biochem. Behav. 43, 395–403.

    Article  PubMed  CAS  Google Scholar 

  • Hadfield M. G. and Milio C. (1993) Cocaine and regional brain monoamines. International Society for Neurochemistry: Satellite Symposium: Cellular and Molecular Mechanisms of Drugs of Abuse: Cocaine and Methamphetamine #27 (abstract).

  • Pradhan S. S., Roy N., and Pradhan S. N. (1978) Correlation of behavioral and neurochemical effects of acute administration of cocaine in rats.Life Sci. 22, 1737–1744.

    Article  PubMed  CAS  Google Scholar 

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Hadfield, M.G. Cocaine. Mol Neurobiol 11, 47–53 (1995). https://doi.org/10.1007/BF02740683

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  • DOI: https://doi.org/10.1007/BF02740683

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