Publication Cover
Stress
The International Journal on the Biology of Stress
Volume 11, 2008 - Issue 4
311
Views
16
CrossRef citations to date
0
Altmetric
Original

The role of corticotrophin-releasing hormone receptors in the calcitonin gene-related peptide-induced suppression of pulsatile luteinising hormone secretion in the female rat

, , , , &
Pages 312-319 | Received 29 Jun 2007, Accepted 12 Nov 2007, Published online: 07 Jul 2009

References

  • Albeck DS, McKittrickm CR, Blanchard DC, Blanchard RJ, Nikulina J, McEwen BS, Sakai RR. Chronic social stress alters levels of corticotropin-releasing factor and arginine vasopressin mRNA in rat brain. J Neurosci 1997; 17: 4895–4903
  • Bonvallet M, Bobo EG. Changes in phrenic activity and heart rate elicited by localized stimulation of amygdala and adjacent structures. Electroencephalogr Clin Neurophysiol 1972; 32: 1–16
  • Borsody MK, Weiss JM. The effects of endogenous interleukin-1 bioactivity on locus coeruleus neurons in response to bacterial and viral substances. Brain Res 2004; 1007: 39–56
  • Bowe JE, Li XF, Kinsey-Jones JS, Paterson S, Brain SD, Lightman SL, O'Byrne KT. Calcitonin gene-related peptide-induced suppression of luteinizing hormone pulses in the rat: The role of endogenous opioid peptides. J Physiol 2005; 566: 921–928
  • Brown MR, Fisher LA. Corticotropin-releasing factor: Effects on the autonomic nervous system and visceral systems. Fed Proc 1985; 44: 243–248
  • Brown MR, Gray TS. Peptide injections into the amygdala of conscious rats: Effects on blood pressure, heart rate and plasma catecholamines. Regul Pept 1988; 21: 95–106
  • Cates PS, Li XF, O'Byrne KT. The influence of 17beta-oestradiol on corticotrophin-releasing hormone induced suppression of luteinising hormone pulses and the role of CRH in hypoglycaemic stress-induced suppression of pulsatile LH secretion in the female rat. Stress 2004; 7: 113–118
  • Chalmers DT, Lovenberg TW, De Souza EB. Localization of novel corticotropin-releasing factor receptor (CRF2) mRNA expression to specific subcortical nuclei in rat brain: Comparison with CRF1 receptor mRNA expression. J Neurosci 1995; 15: 6340–6350
  • Clarke IJ, Horton RJ, Doughton BW. Investigation of the mechanism by which insulin-induced hypoglycemia decreases luteinizing hormone secretion in ovariectomized ewes. Endocrinology 1990; 127: 1470–1476
  • Curtis AL, Bello NT, Connolly KR, Valentino RJ. Corticotropin-releasing factor neurones of the central nucleus of the amygdala mediate locus coeruleus activation by cardiovascular stress. J Neuroendocrinol 2002; 14: 667–682
  • Dayas CV, Buller KM, Crane JW, Xu Y, Day TA. Stressor categorization: Acute physical and psychological stressors elicit distinctive recruitment patterns in the amygdala and in medullary noradrenergic cell groups. Eur J Neurosci 2001; 14: 1143–1152
  • Dhillo WS, Small CJ, Jethwa PH, Russell SH, Gardiner JV, Bewick GA, Seth A, Murphy KG, Ghatei MA, Bloom SR. Paraventricular nucleus administration of calcitonin gene-related peptide inhibits food intake and stimulates the hypothalamo-pituitary-adrenal axis. Endocrinology 2003; 144: 1420–1425
  • Dobolyi A, Irwin S, Makara G, Usdin TB, Palkovits M. Calcitonin gene-related peptide-containing pathways in the rat forebrain. J Comp Neurol 2005; 489: 92–119
  • Fisher LA. Central autonomic modulation of cardiac baroreflex by corticotropin-releasing factor. Am J Physiol 1989; 256: H949–H955
  • Gully D, Geslin M, Serva L, Fontaine E, Roger P, Lair C, Darre V, Marcy C, Rouby PE, Simiand J, Guitard J, Gout G, Steinberg R, Rodier D, Griebel G, Soubrie P, Pascal M, Pruss R, Scatton B, Maffrand JP, Le FG. 4-(2-Chloro-4-methoxy-5-methylphenyl)-N-[(1S)-2-cyclopropyl-1-(3-fluoro-4-methylphenyl) ethyl]5-methyl-N-(2-propynyl)-1,3-thiazol-2-amine hydrochloride (SSR125543A): A potent and selective corticotrophin-releasing factor(1) receptor antagonist. I. Biochemical and pharmacological characterization. J Pharmacol Exp Ther 2002; 301: 322–332
  • Hahn JD, Kalamatianos T, Coen CW. Studies on the neuroanatomical basis for stress-induced oestrogen-potentiated suppression of reproductive function: Evidence against direct corticotropin-releasing hormone projections to the vicinity of luteinizing hormone-releasing hormone cell bodies in female rats. J Neuroendocrinol 2003; 15: 732–742
  • Harbuz MS, Lightman SL. Responses of hypothalamic and pituitary mRNA to physical and psychological stress in the rat. J Endocrinol 1989; 122: 705–711
  • Harrigan EA, Magnuson DJ, Thunstedt GM, Gray TS. Corticotropin releasing factor neurons are innervated by calcitonin gene-related peptide terminals in the rat central amygdaloid nucleus. Brain Res Bull 1994; 33: 529–534
  • Hsu DT, Chen FL, Takahashi LK, Kalin NH. Rapid stress-induced elevations in corticotropin-releasing hormone mRNA in rat central amygdala nucleus and hypothalamic paraventricular nucleus: An in situ hybridization analysis. Brain Res 1998; 788: 305–310
  • Kainu T, Honkaniemi J, Gustafsson JA, Rechardt L, Pelto-Huikko M. Co-localization of peptide-like immunoreactivities with glucocorticoid receptor- and Fos-like immunoreactivities in the rat parabrachial nucleus. Brain Res 1993; 615: 245–251
  • Kalin NH, Takahashi LK, Chen FL. Restraint stress increases corticotropin-releasing hormone mRNA content in the amygdala and paraventricular nucleus. Brain Res 1994; 656: 182–186
  • Kawakami M, Kimura F. Inhibition of ovulation in the rat by electrical stimulation of the lateral amygdale. Endocrinol Jpn 1975; 22: 61–65
  • Kovacs A, Biro E, Szeleczky I, Telegdy G. Role of endogenous CRF in the mediation of neuroendocrine and behavioral responses to calcitonin gene-related peptide in rats. Neuroendocrinology 1995; 62: 418–424
  • Li XF, Mitchell JC, Wood S, Coen CW, Lightman SL, O'Byrne KT. The effect of oestradiol and progesterone on hypoglycaemic stress-induced suppression of pulsatile luteinizing hormone release and on corticotropin-releasing hormone mRNA expression in the rat. J Neuroendocrinol 2003; 15: 468–476
  • Li XF, Bowe JE, Mitchell JC, Brain SD, Lightman SL, O'Byrne KT. Stress-induced suppression of the gonadotropin-releasing hormone pulse generator in the female rat: A novel neural action for calcitonin gene-related peptide. Endocrinology 2004; 145: 1556–1563
  • Li XF, Bowe JE, Lightman SL, O'Byrne KT. Role of corticotropin-releasing factor receptor-2 in stress-induced suppression of pulsatile luteinizing hormone secretion in the rat. Endocrinology 2005; 146: 318–322
  • Li XF, Bowe JE, Kinsey-Jones JS, Brain SD, Lightman SL, O'Byrne KT. Differential role of corticotrophin-releasing factor receptor types 1 and 2 in stress-induced suppression of pulsatile luteinising hormone secretion in the female rat. J Neuroendocrinol 2006; 18: 602–610
  • Naylor AM, Porter DW, Lincoln DW. Central administration of corticotrophin-releasing factor in the sheep: Effects on secretion of gonadotrophins, prolactin and cortisol. J Endocrinol 1990; 124: 117–125
  • Maeda K, Cagampang FR, Coen CW, Tsukamura H. Involvement of the catecholaminergic input to the paraventricular nucleus and of corticotropin-releasing hormone in the fasting-induced suppression of luteinizing hormone release in female rats. Endocrinology 1994; 134: 1718–1722
  • Makino S, Shibasaki T, Yamauchi N, Nishioka T, Mimoto T, Wakabayashi I, Gold PW, Hashimoto K. Psychological stress increased corticotropin-releasing hormone mRNA and content in the central nucleus of the amygdala but not in the hypothalamic paraventricular nucleus in the rat. Brain Res 1999; 850: 136–143
  • Nguyen KQ, Sills MA, Jacobowitz DM. Cardiovascular effects produced by microinjection of calcitonin gene-related peptide into the rat central amygdaloid nucleus. Peptides 1986; 7: 337–339
  • Oliver KR, Wainwright A, Heavens RP, Hill RG, Sirinathsinghji DJ. Distribution of novel CGRP1 receptor and adrenomedullin receptor mRNAs in the rat central nervous system. Brain Res Mol Brain Res 1998; 57: 149–154
  • Paxinos G, Watson C. The rat brain in stereotaxic coordinates4th ed. Academic Press, New York 1986
  • Primus RJ, Yevich E, Baltazar C, Gallager DW. Autoradiographic localization of CRF1 and CRF2 binding sites in adult rat brain. Neuropsychopharmacology 1997; 17: 308–316
  • Rivalland ET, Tilbrook AJ, Turner AI, Iqbal J, Pompolo S, Clarke IJ. Projections to the preoptic area from the paraventricular nucleus, arcuate nucleus and the bed nucleus of the stria terminalis are unlikely to be involved in stress-induced suppression of GnRH secretion in sheep. Neuroendocrinology 2006; 16: 1–13
  • Rivest S, Rivier C. Influence of the paraventricular nucleus of the hypothalamus in the alteration of neuroendocrine functions induced by intermittent footshock or interleukin. Endocrinology 1991; 129: 2049–2057
  • Rivier C, Vale W. Influence of corticotropin-releasing factor on reproductive functions in the rat. Endocrinology 1984; 114: 914–921
  • Rivier J, Gulyas J, Kirby D, Low W, Perrin MH, Kunitake K, DiGruccio M, Vaughan J, Reubi JC, Waser B, Koerber SC, Martinez V, Wang L, Taché Y, Vale W. Potent and long-acting corticotropin releasing factor (CRF) receptor 2 selective peptide competitive antagonists. J Med Chem 2002; 45: 4737–4747
  • Schlor KH, Stumpf H, Stock G. Baroreceptor reflex during arousal induced by electrical stimulation of the amygdala or by natural stimuli. J Auton Nerv Syst 1984; 10: 157–165
  • Swanson LW, Sawchenko PE, Rivier J, Vale WW. Organization of ovine corticotropin-releasing factor immunoreactive cells and fibers in the rat brain: An immunohistochemical study. Neuroendocrinology 1983; 36: 165–186
  • Thompson RC, Seasholtz AF, Herbert E. Rat corticotropin-releasing hormone gene: Sequence and tissue-specific expression. Mol Endocrinol 1987; 1: 363–370
  • Tsukamura H, Nagatani S, Cagampang FR, Kawakami S, Maeda K. Corticotropin-releasing hormone mediates suppression of pulsatile luteinizing hormone secretion induced by activation of alpha-adrenergic receptors in the paraventricular nucleus in female rats. Endocrinology 1994; 134: 1460–1466
  • Vale W, Spiess J, Rivier C, Rivier J. Characterization of a 41-residue ovine hypothalamic peptide that stimulates secretion of corticotropin and beta-endorphin. Science 1981; 213: 1394–1397
  • van Cauter E. Estimating false-positive and false-negative errors in analyses of hormonal pulsatility. Am J Physiol 1988; 254: E786–E794
  • van de Kar LD, Piechowski RA, Rittenhouse PA, Gray TS. Amygdaloid lesions: Differential effect on conditioned stress and immobilization-induced increases in corticosterone and renin secretion. Neuroendocrinology 1991; 54: 89–95
  • van Rossum D, Hanisch UK, Quirion R. Neuroanatomical localization, pharmacological characterization and functions of CGRP, related peptides and their receptors. Neurosci Biobehav Rev 1997; 21: 649–678
  • Williams CL, Nishihara M, Thalabard JC, Grosser PM, Hotchkiss J, Knobil E. Corticotropin-releasing factor and gonadotropin-releasing hormone pulse generator activity in the rhesus monkey, electrophysiological studies. Neuroendocrinology 1990; 52: 133–137
  • Xu Y, Day TA, Buller KM. The central amygdala modulates hypothalamic-pituitary-adrenal axis responses to systemic interleukin-1beta administration. Neuroscience 1999; 94: 175–183
  • Zhang JX, Harper RM, Ni HF. Cryogenic blockade of the central nucleus of the amygdala attenuates aversively conditioned blood pressure and respiratory responses. Brain Res 1986; 386: 136–145

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.