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Intragranular colocalization of arginine vasopressin and methionine-enkephalin-octapeptide in CRF-axons in the rat median eminence

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Summary

Ultrastructural appearances of axonal terminals containing corticoliberin (CRF) were examined in the rat median eminence prepared by a freeze-drying procedure. Immunolabeling was performed by using 5-, 8-, or 15-nm gold-antibody complexes for CRF, arginine vasopressin (VP) and methionine-enkephalin-octapeptide (Enk-8), singly or in combination. In intact animals, the CRF-containing secretory granules were only slightly labeled with goldanti-VP or -Enk-8. In adrenalectomized rats, granules within single axons appeared to be labeled with all the immunogold complexes. This intragranular colocalization of the three antigens was confirmed by using three neighboring sections of the same axon terminals which were stained separately with each one of the antibodies and visualized with the avidin-biotin-peroxidase complex method. The granules labeled for CRF had decreased 9 days after adrenalectomy but had increased again by day 21, while those labeled for VP steadily increased after adrenalectomy. However, this did not correspond with the appearances of cell bodies in the paraventricular nucleus; the cell bodies labeled for both CRF and VP steadily increased in number and in stainability. By contrast, Enk-8 immunoreactivity in the axonal terminals and cell bodies was not affected by adrenalectomy. These findings suggest that although the three peptides could be released simultaneously from the axonal terminals, VP may play some special role in the expression of CRF activity.

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References

  • Adachi T, Hisano S, Daikoku S (1985) Intragranular colocalization of immunoreactive methionine-enkephalin and oxytocin within the nerve terminals in the posterior pituitary. J Histochem Cytochem 33:891–899

    Google Scholar 

  • Burnstock G (1976) Do some nerve cells release more than one transmitter? Neuroscience 1:239–248

    Google Scholar 

  • Daikoku S, Okamura Y, Kawano H, Tsuruo Y, Maegawa M, Shibasaki T (1984) Immunohistochemical study on the development of CRF-containing neurons in the hypothalamus of the rat. Cell Tissue Res 238:539–544

    Google Scholar 

  • Daikoku S, Okamura Y, Kawano H, Tsuruo Y, Maegawa M, Shibasaki T (1985) CRF-containing neurons of the rat hypothalamus. Cell Tissue Res 240:575–584

    Google Scholar 

  • Davis LG, Arentzen R, Reid JM, Manning RW, Wolfson B, Lawrence KL, Baldino F Jr (1986) Glucocorticoid sensitivity of vasopressin mRNA levels in the paraventricular nucleus of the rat. Proc Natl Acad Sci USA 83:1145–1149

    Google Scholar 

  • De Mey JR (1983) The preparation of immunoglobulin gold conjugates (IGS reagents) and their use as markers for light and electron microscopic immunocytochemistry. In: Cuello AC (ed) Immunohistochemistry, J Wiley and Sons, Chuchester, pp 347–372

    Google Scholar 

  • De Souza EB, Insel TR, Perrin MH, Rivier J, Vale WW, Kuhar MJ (1985) Differential regulation of corticotropin-releasing factor receptors in anterior and intermediate lobes of pituitary and in brain following adrenalectomy in rats. Neurosci Lett 56:121–128

    Google Scholar 

  • Frens G (1973) Controlled nucleation for the regulation of the particle size in monodisperse gold suspensions. Nature (Lond) Phys Sci 241:20–22

    Google Scholar 

  • Gibbs DM (1985) Inhibition of corticotropin release during hypothermia: the role of corticotropin-releasing factor, vasopressin, and oxytocin. Endocrinology 116:723–727

    Google Scholar 

  • Gillies GE, Linton EA, Lowry PJ (1982) Corticotropin releasing activity of the new CRF is potentiated several times by vasopressin. Nature (Lond) 299:355–357

    Google Scholar 

  • Hisano S, Adachi T, Daikoku S (1985) Freeze-drying technique in electron microscopic immunohistochmistry. J Histochem Cytochem 33:485–490

    Google Scholar 

  • Hisano S, Adachi T, Maegawa M, Daikoku S (1986a) Some improvement in tissue preparation and colloidal-gold immunolabeling for electron microscopy. Am J Anat 175:245–266

    Google Scholar 

  • Hisano S, Daikoku S, Yanaihara N, Shibasaki T (1986b) Intragranular colocalization of CRF and Met-Enk-8 in nerve terminals in the rat median eminence. Brain Res 370:321–326

    Google Scholar 

  • Hökfelt T, Lundberg JM, Schultzberg M, Johansson O, Ljungdahl Å, Rehfeld J (1980) Coexistence of peptides and putative transmitters in neurons. In: Costa E, Trabucchi M (eds) Neural Peptides and Neuronal Communication, Advances in Biochemical Psychopharmacology, Vol 22, Raven Press, New York, pp 1–23

    Google Scholar 

  • Hökfelt T, Fahrenkrug J, Tatemoto K, Mutt V, Werner S, Hulting A-L, Terenius L, Chang KJ (1983) The PHI(PHI-27)/corticotropin-releasing factor/enkephalin immunoreactive hypothalamic neuron: possible morphological basis for integrated control of prolactin, corticotropin, and growth hormone secretion. Proc Natl Acad Sci USA 80:895–898

    Google Scholar 

  • Holmes MC, Antoni FA, Catt KJ, Aguilera G (1986) Predominant release of vasopressin vs. corticotropin-releasing factor from the isolated median eminence after adrenalectomy. Neuroendocrinology 43:245–251

    Google Scholar 

  • Kiss JZ, Mezey E, Skirboll L (1984) Corticotropin-releasing factorimmunoreactive neurons of the paraventricular nucleus become vasopressin positive after adrenalectomy. Proc Natl Acad Sci USA 81:1854–1858

    Google Scholar 

  • Kobayashi S, Uchida T, Ohashi T, Fujita T, Imura H, Mochizuki T, Yanaihara C, Yanaihara N (1983) Met-enkephalin-Arg-GlyLeu-like immunoreactivity in adrenal chromaffin cells and carotid body chief cells of the dog and monkey. Biomed Res 4:201–210

    Google Scholar 

  • Koenig JI, Meltzer HY, Devane GD, Gudelsky GA (1986) The concentration of arginine vasopressin in pituitary stalk plasma of the rat after adrenalectomy or morphine. Endocrinology 118:2534–2539

    Google Scholar 

  • Lamberts SWJ, Janssens ENW, Bons EG, Uitterlinden P, Zuiderwijk JM, Del Pozo E (1983) The Met-enkephalin analog FK 33–824 directly inhibits ACTH release by the rat pituitary gland in vitro. Life Sci 32:1167–1173

    Google Scholar 

  • Liposits ZS, Paull WK (1985) Ultrastructural alterations of the paraventriculo-infundibular corticotropin releasing factor (CRF)-immunoreactive neuronal system in long term adrenalectomized rats. Peptides 6:1021–1036

    Google Scholar 

  • Mühlpfordt H (1982) The preparation of colloidal gold particles using tannic acid as an additional reducing agent. Experientia 38:1127–1128

    Google Scholar 

  • Osborne NN (1979) Is Dale's principle valid? Trends Neurosci 2:73–75

    Google Scholar 

  • Plotsky PM, Bruhn TO, Vale W (1985) Hypophysiotropic regulation of adrenocorticotropin secretion in response to insulininduced hypoglycemia. Endocrinology 117:323–329

    Google Scholar 

  • Rivier C, Vale W (1983) Interaction of corticotropin-releasing factor and arginine vasopressin on adrenocorticotropin secretion in vivo. Endocrinology 113:939–942

    Google Scholar 

  • Roth J (1984) Light and electron microscopic localization of antigenic sites in tissue sections by the protein A-gold technique. Acta Histochem [Suppl] 29:9–22

    Google Scholar 

  • Sawchenko PE, Swanson LW, Vale WW (1984) Co-expression of corticotropin-releasing factor and vasopressin immunoreactivity in parvocellular neurosecretory neurons of the adrenalectomized rat. Proc Natl Acad Sci USA 81:1883–1887

    Google Scholar 

  • Tramu G, Croix C, Pillez A (1983) Ability of the CRF immunoreactive neurons of the paraventricular nucleus to produce a vasopressin-like material. Immunohistochemical demonstration in adrenalectomized guinea pigs and rats. Neuroendocrinology 37:467–469

    Google Scholar 

  • Vacca LL, Abrahams SJ, Naftchi NE (1980) A modified peroxidase-antiperoxidase procedure for improved localization of tissue antigens: localization of substance P in rat spinal cord. J Histochem Cytochem 28:297–307

    Google Scholar 

  • Vale W, Spiess J, Rivier C, Rivier J (1981) Characterization of a 41-residue ovine hypothalamic peptide that stimulates secretion of corticotropin and β-endorphin. Science 213:1394–1397

    Google Scholar 

  • Vale W, Vaughan J, Smith M, Yamamoto G, Rivier J, Rivier C (1983) Effects of synthetic ovine corticotropin-releasing factor, glucocorticoids, catecholamines, neurohypophysial peptides, and other substances on cultured corticotropic cells. Endocrinolgy 113:1121–1131

    Google Scholar 

  • Whitnall MH, Mezey E, Gainer H (1985) Co-localization of corticotropin-releasing factor and vasopressin in median eminence neurosecretory vesicles. Nature (Lond) 317:248–250

    Google Scholar 

  • Wolfson B, Manning RW, Davis LG, Arentzen R, Baldino F Jr (1985) Co-localization of corticotropin releasing factor and vaopressin mRNA in neurones after adrenalectomy. Nature (Lond) 315:59–61

    Google Scholar 

  • Wynn PC, Harwood JP, Catt KJ, Aguilera G (1985) Regulation of corticotropin-releasing factor (CRF) receptors in the rat pituitary gland: effects of adrenalectomy on CRF receptors and corticotroph responses. Endocrinology 116:1653–1659

    Google Scholar 

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Hisano, S., Tsuruo, Y., Katoh, S. et al. Intragranular colocalization of arginine vasopressin and methionine-enkephalin-octapeptide in CRF-axons in the rat median eminence. Cell Tissue Res. 249, 497–507 (1987). https://doi.org/10.1007/BF00217321

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