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Modification by oxazepam of the diurnal variations in brain125I-melatonin binding sites in sham-operated and pinealectomized rats

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Summary

Sham-operated and pinealectomized male rats were maintained at 14h light: 10 h dark cycles (lights-on 5.00 h) and injected daily, for 14 days, with oxazepam or vehicle.125I-melatonin binding was recorded in synaptosomes prepared at 10.00, 18.00, and 24.00 h from the hypothalamus, hippocampus and medulla-pons of the rats. In the sham-operated, vehicle treated rats, specific125I-melatonin binding in all brain areas studied was higher at 18.00 h, whereas in the oxazepam-treated animals, binding was higher at 24.00 h than at the other times tested. In the pinealectomized, vehicle-treated rats, the binding recorded at 18.00 h in all three brain areas, was lower than at the other times of day tested. Oxazepam treatment decreased125I-melatonin binding at 24.00 h in the hippocampus and medulla-pons of the pinealectomized rats and did not significantly affect the binding in the hypothalamus. These results indicate the ability of oxazepam, pinealectomy and their combination, to manipulate the diurnal variations in125I-melatonin binding sites in the rat brain.

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References

  • Anis Y, Zisapel N (1991) Castration affects brain iodomelatonin binding in hamsters maintained in long but not short days. Mol Cell Endocrinol 76: 23–34

    Google Scholar 

  • Anis Y, Nir I, Zisapel N (1989) Diurnal variations in melatonin binding sites in the hamster brain: impact of melatonin. Mol Cell Endocrinol 67: 121–129

    Google Scholar 

  • Anton-Tay F, Chou C, Anton S, Wurtman RJ (1968) Brain serotonin concentration: elevation following intraperitoneal administration of melatonin. Science 162: 277–278

    Google Scholar 

  • Anton-Tay F, Diaz JL, Fernandez-Guardiola A (1971) On the effect of melatonin upon human brains: its possible therapeutic implications. Life Sci 10: 841–850

    Google Scholar 

  • Anton-Tay F, Forray C, Ortega-Corona BG (1988) Subneuronal fate of intracerebroventricular injected3H-melatonin. J Pineal Res 5: 125–133

    Google Scholar 

  • Cardinali DP, Nagle CA, Freire F, Rosner M (1975) Effects of melatonin on neurotransmitter uptake and release by synaptosome-rich homogenates of the rat hypothalamus. Neuroendocrinology 18: 72–85

    Google Scholar 

  • Cardinali DP, Ritta MN, Fuentes AM, Gimeno AF, Gimeno AL (1980) Prostaglandin E release by rat medial basal hypothalamus in vitro. Inhibition by melatonin at submicromolar concentrations. Eur J Pharmacol 67: 151–153

    Google Scholar 

  • Cramer H, Rudolph J, Consbrosh U, Kendel K (1974) On the effect of melatonin on sleep and behavior in man. Adv Biochem Psychopharmacol 11: 187–191

    Google Scholar 

  • Cheung PW, McCormack CE (1982) Failure of pinealectomy or melatonin to alter circardian activity rhythm of the rat. Am J Physiol 242: R261-R264

    Google Scholar 

  • Crabbe MJC (1985) Distribution-free computer methods for analyzing ligand binding and enzyme mechanisms. Comput Biol Med 15: 111–121

    Google Scholar 

  • Hoffman RA, Reiter RJ (1965) Rapid pinealectomy in hamsters and other small rodents. Anat Rec 153: 19–25

    Google Scholar 

  • Lang U, Rivest RW, Schlaepfer LV, Bradtke JC, Aubert ML, Sizonenko PC (1984) Diurnal rhythm of melatonin action on sexual maturation of male rats. Neuroendocrinology 38: 261–268

    Google Scholar 

  • Laudon M, Zisapel N (1986) Characterization of central melatonin receptors using125I-melatonin. FEBS Lett 197: 9–12

    Google Scholar 

  • Laudon M, Nir I, Zisapel N (1988) Melatonin receptors in discrete brain areas of the male rat: impact of aging on density and on circadian rhythmicity. Neuroendocrinology 48: 577–583

    Google Scholar 

  • Lynch JD (1988) Neuroendocrine regulation of seasonal reproduction by the pineal gland and melatonin. Pineal Res Rev 6: 219–259

    Google Scholar 

  • Markwell MAK, Haas SM, Bieber LC, Talbert NE (1978) A modification of the Lowry procedure to simplify protein determination in membrane and lipoprotein samples. Anal Biochem 87: 206–210

    Google Scholar 

  • McIntyre IM, Burrows GD, Norman TR (1988) Suppression of plasma melatonin by a single dose of the benzodiazepine alprazolam in humans. Biol Psychiatry 24: 105–108

    Google Scholar 

  • Morgan PJ, Lawson W, Davidson G, Howell HE (1989) Guanine nucleotides regulate the affinity of melatonin receptors on the ovine pars tuberalis. Neuroendocrinology 50: 359–362

    Google Scholar 

  • Mrosovsky N (1988) Phase response curves for social entrainment. J Comp Physiol A 162: 35–46

    Google Scholar 

  • Oaknin-Bendahan S, Anis Y, Nir L, Zisapel N (1992) Pinealectomy affects the diurnal variations in iodomelatonin binding sites in the rat brain. J Basic Clin Physiol Pharmacol (in press)

  • Reiter RJ (1980) The pineal and its hormones in the control of reproduction in mammals. Endocr Rev 1: 109–131

    Google Scholar 

  • Reiter RJ (1991) Pineal melatonin: cell biology of its synthesis and of its physiological interactions. Endocr Rev 12: 151–180

    Google Scholar 

  • Sokal RR, Rholf FJ (1969) Biometry. Freeman, San Francisco

    Google Scholar 

  • Turek FW, Losee-Olsen S (1986) A benzodiazepine used in the treatment of insomnia phase shifts the mammalian circadian clock. Nature 321: 167–168

    Google Scholar 

  • Vacas MI, Sarmiento MIK, Cardinali DP (1981) Melatonin increases cGMP levels in rat medial basal hypothalamus in vitro. Brain Res 225: 207–211

    Google Scholar 

  • Vakkuri O, Lamsa E, Rahkamaa E, Routsalainen H, Leppaluoto J (1984 a) Iodinated melatonin: preparation and characterization of the molecular structure by mass and1H NMR spectroscopy. Anal Biochem 142: 284–289

    Google Scholar 

  • Vakkuri O, Leppaluoto J, Vuolteenaho O (1984 b) Development and validation of a melatonin radioimmunoassay using radioiodinated melatonin tracer. Acta Endocrinol (Copenhagen) 106: 152–157

    Google Scholar 

  • Vanececk J, Pavlik A, Illnerova H (1987) Hypothalamic melatonin receptor sites revealed by autoradiography. Brain Res 435: 359–363

    Google Scholar 

  • Van Reeth O, Turek FW (1989) Stimulated activity mediates phase shifts in the hamster circadian clock induced by dark pulses or benzodiazepines. Nature 339: 49–51

    Google Scholar 

  • Vitte PA, Harthe C, Pevet P, Claustrat B (1990) Brain autoradiographic study in the golden hamster after intracarotid injection of14C-melatonin. Neurosci Lett 110: 1–5

    Google Scholar 

  • Vollrath L, Semm P, Gammel G (1975) Sleep induction by intranasal application of melatonin. In: Birau N, Schloot W (eds) Melatonin current studies and perspectives. Pergamon Press, London

    Google Scholar 

  • Wakabayashi H, Shimada K, Satoh T (1991 a) Effects of diazepam on melatonin synthesis in the rat pineal in vivo. Chem Pharm Bull Tokyo 39: 2674–2677

    Google Scholar 

  • Wakabayashi H, Shimada K, Satoh T (1991 b) Effects of adrenergic blockers or bicuculline on diazepam induced changes in rat pineal melatonin synthesis in vivo and in vitro. Chem Pharm Bull Toyko 39: 2677–2691

    Google Scholar 

  • Weaver DR, Namboodiri MAA, Reppert SM (1988) Iodinated melatonin mimics melatonin action and reveals discrete binding sites in fetal brain. FEBS Lett 228: 123–127

    Google Scholar 

  • Williams LM (1989) Melatonin binding sites in the rat brain and pituitary mapped by in vitro autoradiography. J Mol Endocrinol 3: 71–75

    Google Scholar 

  • Wurtman RJ, Axelrod J, Phillips LS (1964) The uptake of3H-melatonin in endocrine and nervous tissues and the effects of constant light exposure. J Pharmacol Exp Ther 143: 314–318

    Google Scholar 

  • Young SN, Gauthier S, Kiely ME, Lal S, Brown GM (1984) Effect of oral melatonin administration of melatonin, 5-hydroxyindolacetic acid, indolacetic acid, and cyclic nucleotides in human cerebrospinal fluid. Neuroendocrinology 39: 87–92

    Google Scholar 

  • Zisapel N (1988) Melatonin binding sites in discrete brain areas: coincidence with physiological responsiveness. In: Riklis E (ed) Photobiology. Plenum Press, New York London, pp 607–612

    Google Scholar 

  • Zisapel N, Laudon M (1982) Dopamine release induced by electrical field stimulation of rat hypothalamus in vitro: inhibition by melatonin. Biochem Biophys Res Commun 104: 1610–1616

    Google Scholar 

  • Zisapel N, Anis Y (1988) Impact of circulating testosterone on iodomelatonin binding sites in the male rat brain. Mol Cell Endocrinol 60: 119–127

    Google Scholar 

  • Zisapel N, Egozi Y, Laudon M (1982) Inhibition of dopamine release by melatonin: regional distribution in the rat brain. Brain Res 246: 161–163

    Google Scholar 

  • Zisapel N, Egozi Y, Laudon M (1985) Circadian variations in the inhibition of dopamine release from adult and newborn rat hypothalamus by melatonin. Neuroendocrinology 40: 102–108

    Google Scholar 

  • Zisapel N, Shaharabani M, Laudon M (1987) Regulation of melatonin's activity in the female rat brain by estradiol: effects of neurotransmitter release and on iodomelatonin binding sites. Neuroendocrinology 46: 207–216

    Google Scholar 

  • Zisapel N, Nir I, Laudon M (1988) Circadian variations in melatonin binding sites in discrete areas of the male rat brain. FEBS Lett 232: 172–176

    Google Scholar 

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Anis, Y., Nir, I., Schmidt, U. et al. Modification by oxazepam of the diurnal variations in brain125I-melatonin binding sites in sham-operated and pinealectomized rats. J. Neural Transmission 89, 155–166 (1992). https://doi.org/10.1007/BF01250668

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  • DOI: https://doi.org/10.1007/BF01250668

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