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Chronobiology International
The Journal of Biological and Medical Rhythm Research
Volume 17, 2000 - Issue 2
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ASSOCIATION OF THE ANTIDIABETIC EFFECTS OF BROMOCRIPTINE WITH A SHIFT IN THE DAILY RHYTHM OF MONOAMINE METABOLISM WITHIN THE SUPRACHIASMATIC NUCLEI OF THE SYRIAN HAMSTER

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Pages 155-172 | Received 05 Apr 1999, Accepted 13 Aug 1999, Published online: 07 Jul 2009

REFERENCES

  • Bartness T J, Wade G N. Photoperiodic control of seasonal body weight cycles in hamsters. Neurosci Biobehav Rev. 1985; 9: 599–612
  • Boyson S J, McGonigle p, Molinoff P B. Quantitative autoradiographic localization of the D1 and D2 subtypes of dopamine receptors in rat brain. J Neurosci. 1986; 6: 3177–88
  • Cagampang F RA, Inouye S-I T. Diurnal and circadian changes of serotonin in the suprachiasmatic nuclei: regulation by light and an endogenous pacemaker. Brain Res. 1994; 639: 175–79
  • Castex C, Tahri A, Hoo-Paris R, et al. Glucose oxidation by adipose tissue of the edible dormouse (Glis glis) during hibernation and arousal: effect of insulin. Comp Biochem Physiol 1987; 88A: 33–36
  • Chadwick D J, Ackrill K. Circadian clocks and their adjustment. Ciba Foundation Symposium 1995, West Sussex, UK: Wiley
  • Cincotta A H, MacEachern T A, Meier A H. Bromocriptine redirects metabolism and prevents seasonal onset of obese hyperinsulinemic state in Syrian hamsters. Am J Physiol. 1993; 264: E285–93
  • Cincotta A H, Meier A H. Circadian rhythms of lipogenic and hypoglycemic responses to insulin in the golden hamster (Mesocricetus auratus). J Endocrinol. 1984; 106: 173–76
  • Cincotta A H, Meier A H. Reduction of body fat stores by inhibition of prolactin secretion. Experientia. 1987; 43: 416–17
  • Cincotta A H, Meier A H. Reductions of body fat stores and total plasma cholesterol and triglyceride concentrations in several species by bromocriptine treatment. Life Sci. 1989; 45: 2247–54
  • Cincotta A H, Meier A H, Cincotta M. Ergoset™, as monotherapy, improves glycemic control in obese NIDDM subjects. Diabetes 1997; 46(suppl. 1)33A
  • Cincotta A H, Meier A H, Southern L L. Bromocriptine alters hormone rhythms and lipid metabolism in swine. Ann Nutr Metab. 1989; 33: 305–14
  • Cincotta A H, Schiller B C, Landry R J, et al. Circadian neuroendocrine role in age-related changes in body fat stores and insulin sensitivity of the male Sprague-Dawley rat. Chronobiol Int. 1993; 10: 244–58
  • Cincotta A H, Schiller B C, Meier A H. Bromocriptine inhibits the seasonally occurring obesity, hyperinsulinemia, insulin resistance, and impaired glucose tolerance in the Syrian hamster. Mesocricetus auratus. Metabolism 1991; 40: 639–44
  • Cincotta A H, Wilson J M, deSouza C J, et al. Properly timed injections of cortisol and prolactin produce long-term reductions in obesity, hyperinsulinemia and insulin resistance in the Syrian hamster (Mesocricetus auratus). J Endocrinol. 1989; 120: 385–91
  • Corrodi H, Fuxe L, Hoekfelt T, et al. Effects of ergot drugs on central catecholamine neurons: evidence for a stimulation of central dopamine neurons. J Pharm Pharmacol. 1973; 25: 409–12
  • de Souza C J, Meier A H. Circadian and seasonal variations of plasma insulin and cortisol concentrations in the Syrian hamster Mesocricetus auratus. Chronobiol Int. 1987; 4: 141–51
  • DiChiara G, Vargiu L, Porceddu M L, et al. Bromocriptine: a rather specific stimulant of dopamine receptors regulating dopamine metabolism. Adv Biochem Psychopharmacol. 1977; 16: 443–46
  • Edgar D M, Miller J D, Prosser R A, et al. Serotonin and the mammalian circadian system: II. Phase-shifting rat behavioral rhythms with serotonergic agonists. J Biol Rhythms 1993; 8: 17–31
  • Emata A C, Meier A H, Spieler R E. Temporal variations in gonadal and body fat responses to daily injections of 5-hydroxytryptophan (5-HTP) and dihydroxyphenylalanine (DOPA) in the Gulf killifish Fundulus grandis. J Exp Zool. 1985; 233: 29–34
  • Florant G L, Bauman W A. Seasonal variations in carbohydrate metabolism in mammalian hibernators: insulin and body weight changes. Recent advances in obesity research, T B Van Itallie, J Hirsch. editor, Liberty, London 1894; 4: 57–64
  • Glass J D, Hauser U E, Blank J L, et al. Differential timing of amino acid and 5-HIAA rhythms in suprachiasmatic hypothalamus. Am J Physiol. 1993; 265: R504–11
  • Harrington M E, Rusak B, Mistlberger R. Anatomy and physiology of the mammalian circadian system. Principles and practice of sleep medicine, M H Kryger, T Roth, W C Dement. 2nd ed., W. B. Saunders, Philadelphia 1994; 286–300
  • Honma K I, Watanabe K, Hiroshige T. Effects of parachlorophenylalanine and 5,6-dihydroxytryptamine on the free-running rhythms of locomotor activity and plasma corticosterone in the rat exposed to constant light. Brain Res. 1979; 169: 531–44
  • Jackson D M, Mohell N, Georgiev J B, et al. Time course of bromocriptine induced excitation in the rat: behavioural and biochemical studies. Naunyn-Schmiedeberg's Arch Pharmacol. 1995; 351: 146–55
  • Kamath V, Jones C N, Yip J C, et al. Effects of a quick-release form of bromocriptine (Ergoset) on fasting and postprandial plasma glucose, insulin, lipid, and lipoprotein concentrations in obese nondiabetic hyperinsulinemic women. Diabetes Care 1997; 20: 1697–1701
  • Levine J D, Rosenwasser A M, Yanovski J A, et al. Circadian activity rhythms in rats with midbrain raphe lesions. Brain Res. 1986; 384: 240–49
  • Luo S, Liang Y, Cincotta A H. Intracereboventricular administration of bromocriptine ameliorates the insulin-resistant/glucose-intolerant state in hamsters. Neuroendocrinology 1999; 69: 160–66
  • Luo S, Luo J, Meier A H, et al. Dopaminergic neurotoxin administration to the area of the suprachiasmatic nuclei induces insulin resistance. Neuroreport 1997; 8: 3495–99
  • Luo S, Meier A H, Cincotta A H. Bromocriptine reduces obesity, glucose intolerance and extracellular monoamine metabolite levels in the ventromedial hypothalamus of Syrian hamsters. Neuroendocrinology 1998; 68: 1–10
  • Maj J L, Gancarczy K, Rawlow A. The influence of bromocriptine on serotonin neurons. J Neural Transm. 1977; 41: 253–64
  • Mansour A, Meador-Woodruff J H, Bunzow J R, et al. Localization of dopamine D2 receptor mRNA and D1 and D2 receptor binding in the rat brain and pituitary: an in situ hybridization-receptor autoradiographic analysis. J Neurosci. 1990; 10: 2587–2600
  • Markstein R, Herrling P L. The effect of bromocriptine on rat striatal adenylate cyclase and rat brain monoamine metabolism. J Neurochemistry 1978; 31: 1163–72
  • Meier A H. Temporal synergism of prolactin and adrenal steroids. Gen Comp Endocrinol. 1972; 3: 499–508
  • Meier A H. Temporal synergism of circadian neuroendocrine oscillations regulates seasonal conditions in the gulf killifish. Trans Am Fish Soc. 1984; 113: 422–31
  • Meier A H, Cincotta A H. Circadian rhythms regulate the expression of the thrifty genotype/phenotype. Diabetes Rev. 1996; 4: 464–87
  • Meier A H, Russo A C. Circadian organization of the avian annual cycle, R E Johnston. Current ornithology, New York, Plenum 1984; 2: 303–43
  • Melnyk R B, Martin J M. Insulin and central regulation of spontaneous fattening and weight loss. Am J Physiol. 1985; 249: R203–8
  • Miller L J, Meier A H. Circadian neurotransmitter activity resets the endogenous annual cycle in a migratory sparrow. J Interdispl Cycles Res. 1983; 14: 85–94
  • Mintz E M, Gillespie C F, Marvel C L, et al. Serotonergic regulation of circadian rhythms in Syrian hamsters. Neuroscience 1997; 79: 563–69
  • Moore K E, Demarest K T, Johnson C A. Influence of prolactin on dopaminergic neural system in the hypothalamus. Fed Proc. 1980; 39: 2912–16
  • Moreau-Hamsany C, Castex C, Hoo-Paris R, et al. Hormonal control of lipolysis from the white adipose tissue of hibernating Jerboa (Jaculus orientalis). Comp Biochem Physiol. 1988; 91A: 665–69
  • Morin L P, Blanchard J. Serotonergic modulation of the hamster wheelrunning rhythm in response to lighting conditions and food deprivation. Brain Res. 1991; 566: 186–92
  • Moss R L, Urban I, Cross B A. Microelectrophoresis of cholinergic and aminergic drugs on paraventricular neurons. Am J Physiol. 1972; 223: 310–18
  • Mrosovsky N. Cyclical obesity in hibernators: the search for the adjustable regulator. Recent advances in obesity research, T B Van Itallie, J Hirsch. Liberty, London 1984; 4: 45–56
  • Nagai K, Nakagawa H. Central regulation of energy metabolism with special reference to circadian rhythm. CRC Press, Orlando, Florida 1992
  • Nishino H, Koizumi K. Responses of neurons in the suprachiasmatic nuclei of the hypothalamus to putative transmitters. Brain Res. 1977; 120: 167–72
  • Novak C M, Nunez A A. Tyrosine hydroxylase- and/or aromatic L-amino acid decarboxylase-containing cells in the suprachiasmatic nucleus of the Syrian hamster (Mesocricetus auratus). J Chem Neuroanat. 1998; 14: 87–94
  • Odum E P, Perkinson J D. Relation of lipid metabolism to migration in birds. I. Seasonal variation in body lipids of the migratory white-throated sparrow. Physiol Zool. 1951; 24: 16–30
  • Rusak B, Zucker I. Neural regulation of circadian rhythms. Physiol Rev. 1979; 59: 449–526
  • Shibata S, Tsuneyoshi A, Hamada T, et al. Phase-resetting effect of 8-OH-DPAT, a serotonin 1A receptor agonist on the circadian rhythm of firing rate in the rat suprachiasmatic nuclei in vitro. Brain Res. 1992; 582: 353–56
  • Shinohara K, Honma S, Hatsuno Y, et al. Two distinct oscillators in the rat suprachiasmatic nucleus in vitro. Proc Natl Acad Sci USA 1995; 92: 7396–7400
  • Snider S R, Hutt C, Stein B, et al. Correlation of behavioral inhibition or excitation produced by bromocriptine with changes in brain catecholamine turnover. J Pharm Pharmacol. 1976; 28: 563–66
  • Soares M J, Colosi P, Talamantes F. Development of a homologous radioimmunoassay for secreted hamster prolactin (41574). Proc Soc Exp Biol Med. 1983; 172: 379–81
  • Southern L L, Cincotta A H, Meier A H, et al. Bromocriptine-induced reduction of body fat in pigs. J Anim Sci. 1990; 68: 931–36
  • Szafarczyk A, Ixart G, Alonso G, et al. Effects of raphe lesions on circadian ACTH, corticosterone and motor activity rhythms in free-running blinded rats. Neurosci Lett. 1981; 23: 92–97
  • Telegdy G, Vermes I. Effect of adrenocortical hormones on activity of the serotonergic system in limbic structures. Neuroendocrinology 1975; 18: 16–26
  • Totzke U, Hubinger A, Bairlein F. Glucose utilization rate and pancreatic hormone response to oral glucose loads are influenced by the migratory condition and fasting in the garden warbler (Sylvia borin). J Endocrinol. 1998; 158: 191–96
  • Vincent S R. Distributions of tyrosine hydroxylase-, dopamine-beta-hydroxylase-, and phenylethanolamine-N-methyltransferase-immunoreactive neurons in the brain of the hamster (Mesocricetus auratus). J Comp Neurol. 1988; 268: 584–99
  • Weber E T, Gannon R L, Rea M A. Local administration of serotonin agonists blocks light-induced phase advances of the circadian activity rhythm in the hamster. J Biol Rhythms 1998; 13: 209–18
  • Welsh D K, Logothetis D E, Meister M, et al. Individual neurons dissociated from rat suprachiasmatic nucleus express independently phased circadian firing patterns. Neuron. 1995; 14: 697–706
  • Williams J H, Miall-Allen V M, Linowski M, et al. Effect of the microinjections of 5,7-dihydroxytryptamine in the suprachiasmatic nuclei of the rat on serotonin reuptake and the circadian variation of corticosterone levels. Neuroendocrinology 1983; 36: 431–35
  • Wilson J M, Meier A H. Resetting the annual cycle with timed daily injections of 5-hydroxytryptophan and L-dihydroxyphenylalanine in Syrian hamsters. Chronobiol Int. 1989; 6: 113–32
  • Yamada N, Martin-Iverson M T. Selective dopamine D1 and D2 agonists independently affect different components of the free-running circadian rhythm of locomotor in rats. Brain Res. 1991; 538: 310–12
  • Young R A. Fat, energy and mammalian survival. Am Zool. 1976; 16: 699–710

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