Skip to main content
Log in

Neurochemical effects of minaprine, a novel psychotropic drug, on the central cholinergic system of the rat

  • Original Investigations
  • Published:
Psychopharmacology Aims and scope Submit manuscript

Abstract

Minaprine, a novel psychotropic drug with antidepressant, anticataleptic and antiaggressive properties, produced an increase in rat brain regional acetylcholine content at a subconvulsant dose of 30 mg/kg IP. The greatest increase (60%) was produced in the striatum, whereas an increase of about 35% was obtained in the hippocampus and the rest of the cortex. A small but significant increase of 14% was also found in the midbrain-hindbrain region. Minaprine decreased choline content only in the striatum. No tolerance to acute challenge was observed after 10-day chronic treatment. In vitro, the drug had no effect on striatal choline acetyltransferase activity up to a concentration of 160 μM and only weakly displaced (3H) dexetimide from its specific muscarinic receptor binding sites in striatum (IC50, 2×10-4 M). After in vivo administration the drug did not affect sodium-dependent high affinity choline uptake by a hippocampal homogenate. On the other hand, the drug inhibited both striatal and hippocampal acetylcholinesterase activity at high (40–160 μM) concentrations in vitro. In vivo the drug produced a brief (5 min), small (18%) decrease in the enzymic activity which corresponded in time to the peak drug level attained in the brain, but was not concomitant with a change in striatal acetylcholine content. By contrast, the increase in striatal acetylcholine appeared after 30 min when there was no longer inhibition of acetylcholinesterase activity and when the level of minaprine in brain was reduced by 78%. Blockade of dopamine receptors by pimozide pretreatment partially prevented the increase in striatal acetylcholine produced by minaprine, whereas interference with cholinergic or serontonergic neurotransmission was without effect. The data suggest that minaprine acts partially as a dopaminergic agonist in increasing striatal acetylcholine content. The possibility that an active metabolite of minaprine is responsible for a more direct effect of the drug at the cholinergic neurons is discussed.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Similar content being viewed by others

References

  • Algeri S, Ponzio F, Achilli G, Perego C (1982) Biochemical effects of nomifensine on catecholaminergic systems: In vivo studies. Adv Biochem Psychopharmacol 31:219–228

    Google Scholar 

  • Atweh S, Simon JR, Kuhar MJ (1975) Utilization of sodium-dependent high affinity choline uptake in vitro as a measure of the activity of cholinergic neurons in vivo. Life Sci 17:1535–1544

    Google Scholar 

  • Bizière K, Kan J-P, Goniot C, Garattini S, Wermuth CG (1983) Neurochemical profile of minaprine: A novel psychotropic drug. (Abstr) J Neurochem 41 (Suppl), S 78

    Google Scholar 

  • Bizière K, Kan JP, Souilhac J, Muyard JP, Roncucci R (1982) Pharmacological evaluation of minaprine dihydrochloride, a new psychotropic drug. Arzneimittel-Forsch 32:824–831

    Google Scholar 

  • Consolo S, Ladinsky H, Peri G, Garattini S (1972) Effect of central stimulants and depressants on mouse brain acetylcholine and choline levels. Eur J Pharmacol 18:251–255

    Google Scholar 

  • Consolo S, Ladinsky H, Pugnetti P, Fusi R, Crunelli V (1981) Increase in rat striatal acetylcholine content by bromocriptine: Evidence for an indirect dopaminergic action. Life Sci 29:457–465

    Google Scholar 

  • Consolo S, Ladinsky H, Tirelli AS, Crunelli V, Samanin R, Garattini S (1979) Increase in rat striatal acetylcholine content by d-fenfluramine, a serotonin releaser. Life Sci 25:1975–1981

    Google Scholar 

  • Davi H, Dupont P, Jeanniot JP, Roncucci R, Cautreels W (1981) The biotranformation of [14C]minaprine in man and five animal species. Xenobiltica 11:735–747

    Google Scholar 

  • Davis KL, Mohs RC, Tinklehberg JR, Hollister LE, Pfefferbaum A, Kopell BS (1980) Cholinomimetics and memory. The effect of choline chloride. Arch Neurol 37:49–52

    Google Scholar 

  • Davis KL, Mohs RC, Tinklehberg JR, Pfefferbaum A, Hollister LE, Kopell BS (1978) Physostigmine: Improvement of long-term memory processes in normal humans. Science 201:272–274

    Google Scholar 

  • Ferretti P, Algeri S, Benfenati F, Cimino M, Ferretti C, Garattini S, Lipartiti M (1983) Biochemical effects of minaprine on striatal dopaminergic neurons in rats. J Pharm Pharmacol (in press)

  • Fong MH, Abbiati A, Benfenati E, Caccia S (1983) Quantitative analysis of minaprine and some of its metabolites with application to kinetic studies in rats. J Chromatogr 259:141–149

    Google Scholar 

  • Fonnum F (1975) A rapid, radiochemical method for the determination of choline acetyltransferase. J Neurochem 24:407–409

    Google Scholar 

  • Giarman NJ, Pepeu G (1962) Drug-induced changes in brain acetylcholine. Br J Pharmacol Chemother 19:226–234

    Google Scholar 

  • Guyenet P, Euvrard C, Javoy F, Herbet A, Glowinski J (1977) Regional differences in the sensitivity of cholinergic neurons to dopaminergic drugs and quipazine in the rat striatum. Brain Res 136:487–500

    Google Scholar 

  • König JFR, Klippel RA (1963) The rat brain. A stereotaxic atlas of the forebrain and lower parts of the brain stem. Williams and Wilkins, Baltimore

    Google Scholar 

  • Laborit H, Brunaud M, Savy JM, Baron C, Vallée E, Lamothe C, Thuret F, Muyard J-P, Calvino B (1972) Etude biochemique et pharmacologique du 3-(2-morpholinoéthylamino) 4-methyl 6-phényl pyridazine, dichlorhydrate (AGR 1240). Agressologie 13:291–318

    Google Scholar 

  • Ladinsky H, Consolo S (1979) The effect of altered function of dopaminergic neurons on the cholinergic system in the striatum. Progr Brain Res 49:411–419

    Google Scholar 

  • Ladinsky H, Consolo S, Bianchi S, Jori A (1976) Increase in striatal acetylcholine by picrotoxin in the rat: Evidence for a gabergicdopaminergic-cholinergic link. Brain Res 108:351–361

    Google Scholar 

  • Ladinsky H, Consolo S, Bianchi S, Samanin R, Ghezzi D (1975) Cholinergic-dopaminergic interaction in the striatum: The effect of 6-hydroxydopamine or pimozide treatment on the increased striatal acetylcholine levels induced by apomorphine, piribedil and d-amphetamine. Brain Res 84:221–226

    Google Scholar 

  • Ladinsky H, Consolo S, Garattini S (1974) Increase in striatal acetylcholine levels in vivo by piribedil, a new dopamine receptor stimulant. Life Sci 14:1251–1260

    Google Scholar 

  • Ladinsky H, Consolo S, Sanvito A (1972) Simple apparatus for pulverization and rapid quantitative transfer of frozen tissue. Anal Biochem 49:294–297

    Google Scholar 

  • Laduron PM, Verwimp M, Leysen JE (1979) Stereospecific in vitro binding of [3H]dexetimide to brain muscarinic receptors. J Neurochem 32:421–427

    Google Scholar 

  • McCaman MW, Tomey LR, McCaman RE (1968) Radiomimetric assay of acetylcholinesterase activity in submicrogram amounts of tissue. Life Sci 7:233–244

    Google Scholar 

  • Ponzio F, Achilli G, Perego C, Algeri S (1981) Differential effects of certain dopaminergic drugs on the striatal concentration of dopamine metabolites, with special reference to 3-methoxytyramine. Neurosci Lett 27:61–67

    Google Scholar 

  • Ponzio F, Jonsson G (1979) A rapid and simple method for the determination of picogram levels of serotonin in brain tissue using liquid chromatography with electrochemical detection. J. Neurochem 32:129–132

    Google Scholar 

  • Saelens JK, Allen MP, Simke JP (1970) Determination of acetylcholine and choline by an enzymatic assay. Arch Int Pharmacodyn Ther 186:279–286

    Google Scholar 

  • Samanin R, Quattrone A, Peri G, Ladinsky H, Consolo S (1978) Evidence of an interaction between serotonergic and cholinergic neurons in the corpus striatum and hippocampus of the rat brain. Brain Res 151:73–82

    Google Scholar 

  • Wermuth CG, Exinger A (1972) Le dichlorhydrate de la morpholinoéthylamino-3-méthyl-4-phényl-6-pyridazine (AGR 1240). Agressologie 13:285–289

    Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Rights and permissions

Reprints and permissions

About this article

Cite this article

Garattini, S., Forloni, G.L., Tirelli, S. et al. Neurochemical effects of minaprine, a novel psychotropic drug, on the central cholinergic system of the rat. Psychopharmacology 82, 210–214 (1984). https://doi.org/10.1007/BF00427775

Download citation

  • Received:

  • Accepted:

  • Issue Date:

  • DOI: https://doi.org/10.1007/BF00427775

Key words

Navigation