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Morphometrical variations of prolactin cells in response to prolonged and systemic administration of Met-enkephalin in female rats

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Summary

A stimulatory effect on prolactin secretion had been describe after acute and systemic administration of met-enkephalin, but the effects of this opioid after chronic administration has not been reported, and the response of mammotroph cells is not clear. As a complement to previous studies, a morphometric analysis (light and electron microscopy) was carried out on prolactin cells from female rats treated chronically with met-enkephalin. Clear features of cellular hyperactivity appeared after chronic and systemic administration of the opioid, and these persisted for two weeks. The changes consisted in increases of cellular, cytoplasmic and nuclear areas, volume and surface densities of the Golgi complex and rough endoplasmic reticulum, as well as the numbers of exocytotic figures. These morphological alterations were paralleled by an increase in serum prolactin levels as detected by RIA. It is concluded that the increase in the synthesis and secretory activity of prolactin cells following chronic and systemic administration of met-enkephalin is very similar to those observed after acute and intraventricular administration.

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References

  • Allaerts W, Mignon A, Denef C (1991) Selectivity of juxtaposition between cup-shaped lactotrophs and gonadotrophs from rat anterior pituitary in culture. Cell Tissue Res 263:217–225

    Google Scholar 

  • Bentley AM, Wallis M (1986) Effects of two analogues, morphine sulphate, dopamine and naloxone on prolactin secretion from rat anterior pituitary glands in vitro. J Endocrinol 109:313–320

    Google Scholar 

  • Blank MS, Fabbria A, Catt KJ, Dufau ML (1986) Inhibition of luteinizing hormone release by morphine and endogenous opiates in cultured pituitary cells. Endocrinology 118:2097–2101

    Google Scholar 

  • Bruni JF, Van Vught D, Marshall S, Meites J (1977) Effects of naloxone, morphine and methionine-enkephalin on serum prolactin, luteinizing hormone, follicle-stimulating hormone, thyroid-stimulating hormone and growth hormone. Life Sci 21:461–466

    Google Scholar 

  • Cacicedo L, Sánchez-Franco F (1986) Direct action of opioid peptides and naloxone on gonadotropin secretion by cultured rat anterior pituitary cells. Life Sci 38:617–625

    Google Scholar 

  • Carretero, Sánchez F, Blanco E, Riesco JM, Vázquez R (1988) Analysis of immunoreactive PRL-cells following treatment with Met-enkephalin. Z Mikrosk Anat Forsch 102:711–720

    Google Scholar 

  • Carretero J, Sánchez F, Blanco E, Riesco JM, Sánchez-Franco F, Vázquez R (1989) Morphofunctional study of mammotropic cells following intraventricular administration of Met-enkephalin. Anat Embryol 179:243–250

    Google Scholar 

  • Carretero J, Sánchez F, Blanco E, Montero M, Riesco JM, González R, Vázquez R (1991) Estrogenic modulation of met-enkephalin-induced prolactin secretion in rats. Anat Embryol 183:455–459

    Google Scholar 

  • Cornford EM, Braun LD, Crane PD, Oldendorf WH (1978) Blood-brain barrier restriction of peptides and the low uptake of enkephalins. Endocrinology 103:1297–1303

    Google Scholar 

  • Delitala G, Giusti M, Borsi L, Devilla L, Mazzochi G, Lotti G, Giordano G (1981) Effects of a Met-Enkephalin analogue and naloxone infusion on anterior pituitary hormone secretion in acromegaly. Horm Res 15:88–98

    Google Scholar 

  • Du Ruisseau P, Tache Y, Brazeau P, Collu R (1978) Pattern of hypophyseal hormone changes induced by various stressors in female and male rats. Neuroendocrinology 27:257–271

    Google Scholar 

  • Enjalbert A, Rubert M, Aranciba S, Priam M, Kordon C (1979) Endogenous opiates block dopamine inhibition of prolactin secretion in vitro. Nature 280:595–597

    Google Scholar 

  • Franks S (1983) Regulation of prolactin secretion by estrogens: physiological and pathological significance. Clin Sci 65:457–462

    Google Scholar 

  • Girod Ch (1984) Fine structure of the pituitary pars distalis. In: Motta PM (ed) Ultrastructure of endocrine cells and tissues. Nijhoff, Boston, pp 12–28

    Google Scholar 

  • Gorenstein BC, Snyder SH (1980) Enkephalinases. Proc Robc Lond 210:123

    Google Scholar 

  • Graham RC, Karnovsky MJ (1966) The early stages of absorption of injected horseradish peroxidase in the proximal tubules of mouse kidney: ultrastructural cytochemistry by a new technique. J Histochem Cytochem14:291–302

    Google Scholar 

  • Gudelsky GA, Porter JC (1979) Release of dopamine from tuberoinfundibular neurons into pituitary stalk blood after prolactin or haloperidol administration. Endocrinology 106:526–534

    Google Scholar 

  • Hagen C, Brandt MR, Kehlet H (1980) Prolactin, LH, FSH, GH and cortisol response to surgery and the effect of epidural analgesia. Acta Endocrinol 94:151–154

    Google Scholar 

  • Hambrook JM, Morgan BA, Rance MJ, Smith CFC (1976) Mode of deactivation of the enkephalins by rat plasma and rat brain homogenates. Nature 262:782–783

    Google Scholar 

  • Haskins JT, Gudelsky GA, Moss RL, Porter JC (1981) Iontophoresis of morphine into the arcuate nucleus: effects on dopamine concentrations in the hypophyseal portal plasma and serum prolactin concentrations. Endocrinology 108:767–771

    Google Scholar 

  • Ieiri T, Chen HT, Meites J (1979) Effects of morphine and naloxone on serum levels of luteinizing hormone and prolactin in prepuberal male and female rats. Neuroendocrinology 29:288–292

    Google Scholar 

  • Johnson MD, Crowley WR (1984) Effects of opiate antagonists on serotonin turnover and on luteinizing hormone and prolactin secretion in estrogen or morphin treated rats. Neuroendocrinology 38:322–327

    Google Scholar 

  • Kalra PS, Fawcett CP, Krulich L, McCann SM (1973) The effects of gonadal steroids on plasma gonadotropins and prolactin in the rat. Endocrinology 92:1256–1268

    Google Scholar 

  • Kaplan SL, Grumbach MM, Aubert ML (1976) The ontogenesis of pituitary hormones and hypothalamic factors in the human fetus: maturation of central nervous system regulation of anterior pituitary function. Rec Prog Horm Res 32:161–243

    Google Scholar 

  • Kastin AJ, Nissen C, Schally AV, Coy DH (1976) Blood-brain barrier, half-time disappearance and brain distribution for labelled enkephalin and a potent analog. Brain Res Bull 1:583–589

    Google Scholar 

  • Kastin AJ, Olson RD, Scahlly AV, Coy DH (1979) CNS effects of peripherally administered brain peptides. Life Sci 25:401–414

    Google Scholar 

  • Koenig JI, Mayfield MA, Coppings RJ, McCann SM, Krulich L (1980) Role of central nervous system neurotransmitters in mediating the effects of morphine on growth hormone and prolactin secretion in the rat. Brain Res 197:453–468

    Google Scholar 

  • Kwa HG, Verhofstad F (1967) Radioimmunoassay of rat prolactin. Biochem Biophys Acta 138:186–190

    Google Scholar 

  • Lien EL, Fenichel RL, Grasky V, Sarantakis D, Grant NH (1976) Enkephalin stimulating prolactin release. Life Sci 19:837–840

    Google Scholar 

  • MacLeod RM (1969) Influence of norepinephrine and catecholamine-depending agents on the synthesis and release of prolactin and growth hormone. Endocrinology 85:916–923

    Google Scholar 

  • Maurer RA, Gorski J, McKean DJ (1977) Partial aminoacid sequence of rat pre-prolactin. Biochem J 161:189–192

    Google Scholar 

  • McShan WH (1965) Ultrastructure and function of the anterior pituitary gland. In: Selwyn DM (ed) Proc 2nd Int Cong Endocrinol London. Excerpta Medica Foundation, Amsterdam, pp 382–391

    Google Scholar 

  • Meites J, Bruni JR, Van Vugt DA, Smith AF (1979) Relation of endogenous opiates and morphine to neuroendocrine functions. Life Sci 24:1325–1336

    Google Scholar 

  • Nogami H, Yoshimura F (1982) Fine structural criteria of prolactin cells identified immunohistochemically in the male rat. Anat Rec 202:261–274

    Google Scholar 

  • Pardridge WM, Meitus LJ (1981) Enkephalin and blood-brain barrier: studies of binding and degradation in isolated brain micro-vessels. Endocrinology 109:1138–1143

    Google Scholar 

  • Pechnick RN, George R, Poland RE (1987) The effects of the systemic administration of N-methylmorphine chloride, a quaternary analogue of morphine that does not cross the bloodbrain barrier, on the release of anterior pituitary hormones in the rat. Psychoneuroendocrinology 12:67–71

    Google Scholar 

  • Rapoport SI, Klee WA, Pettigrew KD, Ohno K (1980) Entry of opioid peptides into the central nervous system. Science 207:84–86

    Google Scholar 

  • Reynolds ES (1963) The use of lead citrate at high pH as an electron-opaque stain in electron microscopy. J Cell Biol 17:208–213

    Google Scholar 

  • Richards JS, Jonassen JA, Kersey KA (1980) Evidence that changes in tonic luteinizing hormone secretion determine the growth of preovulatory follicles in the rat. Endocrinology 107:641–648

    Google Scholar 

  • Rivier C, Vale W, Brown M, Guillemin R (1977) Stimulation in vivo of the secretion of prolactin and growth hormone by βendorphin. Endocrinology 100:238–241

    Google Scholar 

  • Robberecht W, Denef C (1989) Paracrine interactions in the anterior pituitary. In: Wass JAH, Scanlon MF (eds) Neuroendocrine perspectives, vol 6. Springer, New York, pp 17–25

    Google Scholar 

  • Sánchez-Franco F, Cacicedo L (1986) Inhibitory effects of β-endorphin on gonadotropin-releasing hormones and thyrotropin releasing hormone releasing activity in cultured rat anterior pitui tary cells. Hormone Res 24:55–61

    Google Scholar 

  • Santolaya RC, Ciocca D, Maneschi E (1979) Effects of pimozide on the ultrastructure of the pars distalis in the rat. Cell Tissue Res 199:483–492

    Google Scholar 

  • Schwartz JCh (1983) Metabolism of enkephalin and the inactivating neuropeptidase concept. TINS 6:45–48

    Google Scholar 

  • Shin SH (1978) Blockage of the ether-induced surge of prolactin by naloxone in male rats. J Endocrinol 79:397–398

    Google Scholar 

  • Shin SH, Aiken RB, Roberts R, Howitt C (1974) Effect of testoster one on serum prolactin in the castrated rat. J Endocrinol 63:257–258

    Google Scholar 

  • Sternberger LA, Hardy PH, Cuculis JJ, Meyer HG (1970) The unlabelled antibody-enzyme method of immunohistochemistry. Preparation of soluble antigen-antibody complex (horseradish peroxidase-antihorseradish peroxidase) and its use in identification of spirochetes. J Histochem Cytochem 18:315–333

    Google Scholar 

  • Streefkerk JG (1972) Inhibition of erythrocyte pseudoperoxidas activity by treatment with hydrogen peroxide following methanol. J Histochem Cytochem 20:829–831

    Google Scholar 

  • Tache Y, Lis M, Collu R (1977) Effects of Thyrotropin-releasing hormone on behavioral and hormonal changes induced by βendorphin. Life Sci 21:841–846

    Google Scholar 

  • Tixier-Vidal A, Tougard C, Dufi B, Vincent JD (1982) Morphological, functional and electrical correlates in anterior pituitarycells. In: Muller E, MacLeod RM (eds) Neuroendocrine perspectives, vol 1. Elsevier, Amsterdam, pp 211–251

    Google Scholar 

  • Torres AI, Aoki A (1987) Release of big and small mollecular forms of prolactin: dependence upon dynamic state of the lactotroph. J Endocrinol 114:213–220

    Google Scholar 

  • Van Vugt DA, Meites J (1980) Influence of endogenous opiates on anterior pituitary function. Fed Proc 39:2533–2538

    Google Scholar 

  • Weber E, Voigt KH, Martin R (1978) Pituitary somatotrophs contain [Met] enkephalin-like immunoreactivity. Proc Natl Acad Sci USA 75:6134–6139

    Google Scholar 

  • Weibel ER (1969) Stereological principles for morphometry in electron microscopic cytology. Int Rev Cytol 26:235–302

    Google Scholar 

  • Zlokovic B, Begley D, Chain-Eliash D (1985) Blood-brain barrier permeability to leucine-enkephalin, D-alanine 2-D-leucine 5-enkephalin and their N-terminal aminoacid (tyrosine). Brain Res 336:125–132

    Google Scholar 

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Carretero, J., Blanco, E., Sánchez, F. et al. Morphometrical variations of prolactin cells in response to prolonged and systemic administration of Met-enkephalin in female rats. Anat Embryol 186, 99–105 (1992). https://doi.org/10.1007/BF00710406

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