Cytochemical localization of adenylate cyclase activity in the rat anterior pituitary
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Summary
The cytochemical localization of adenylate cyclase was studied in relation to the secretory function of the anterior pituitary glands of male rats. The reaction product of adenylate cyclase was localized on the outside of plasma membranes, but was not detected intracellularly. High activity of adenylate cyclase was detected on somatotrophs and microvilli of follicular cells, whereas no activity was found on thyrotrophs or corticotrophs. Although most of the gonadotrophs showed little or no adenylate-cyclase activity, some was detected in a small number of gonadotrophs in the central portion of the gland. In somatotrophs, activity was not detected on the plasma membranes facing perivascular spaces where exocytotic extrusion of secretory granules was frequently observed, although the remaining areas of plasma membranes of the same somatotrophs were associated with high levels of adenylate-cyclase activity. These findings indicate that the association of a high level of adenylate-cyclase activity is not directly related to the ability of the plasma membranes to fuse with secretory granule membranes.
Key words
Adenylate cyclase Cytochemistry Anterior pituitary gland Secretion Plasma membranePreview
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References
- Åbro A, Kvinnsland S (1974) Adenylate cyclase in an estradiol sensitive tissue: A cytochemical study. Histochemistry 42:333–344Google Scholar
- Cheng H, Farquhar MG (1967) Presence of adenylate cyclase activity in Golgi and other fractions from rat liver II. Cytochemical localization within Golgi and ER membranes. J Cell Biol 70:671–684Google Scholar
- Cutler LS (1975) Comments on the validity of the use of lead nitrate for the cytochemical study of adenylate cyclase. J Histochem Cytochem 23:786–787Google Scholar
- Cutler LS, Rodan SB (1976) Biochemical and cytochemical studies on adenylate cyclase activity in the developing rat submandibular gland: differentiation of the acinar secretory compartment. J Embryol Morph 36:291–303Google Scholar
- Cutler LS, Mooradian BA, Christian C (1977) Concurrent cytochemical localization of adenylate cyclase and peroxidase in the developing rat submandibular gland. J Histochem Cytochem 25:1207–1212Google Scholar
- Cutler LS, Rodan G, Feinstein MB (1978) Cytochemical localization of adenylate cyclase and of calcium ion, magnesium ion-activated ATPases in the dense tubular system of human blood platelets. Biochem Biophys Acta 541:48–61Google Scholar
- Denef C, Hautekeete E, Dewals R, De Wolf A (1980) Differential control of luteinizing hormone and follicle-stimulating hormone secretion by androgens in rat pituitary cells in culture: Functional diversity of subpopulations separated by unit gravity sedimentation. Endocrinology 106:724–729Google Scholar
- Hayasaki-Kimura N, Takahashi K (1979) Studies on actin of somatostatin on growth hormone release in relation to calcium and cAMP. Proc Soc Exp Biol Med 161:312–318Google Scholar
- Hiura M, Fujita H (1977) Cytochemical localization of adenyl cyclase activity in the theca folliculi of the mouse Graafian follicle. Histochemistry 51:321–326Google Scholar
- Howell SL, Whitfield M (1972) Cytochemical localization of adenyl cyclase activity in rat islets of Langerhans. J Histochem Cytochem 20:873–879Google Scholar
- Jande SS, Robert P (1974) Cytochemical localization of parathyroid hormone activated adenyl cyclase in rat kidney. Histochemistry 40:323–327Google Scholar
- Kim SK, Han SS (1975) The cytochemical localization of adenyl cyclase activity in rat sublingual gland. Am J Anat 144:467–476Google Scholar
- Labrie F, Borgeat P, Lemay A, Lemaire S, Barden N, Drouin J, Lemaire I, Policoeur P, Bélanger A (1975) Role of cyclic AMP in the action of hypothalamic regulatory hormones. In: Drummond GI, Greengard P, Robison GA (eds) Advances in cyclic nucleotide research. Raven Press, New York Vol 5, pp 787–801Google Scholar
- Labrie F, Borgeat P, Drouin J, Beaulieu M, Lagacé L, Ferland L, Raymond V (1979) Mechanism of action of hypothalamic hormones in the adenohypophysis. Ann Rev Physiol 41:555–569Google Scholar
- Lemay A, Jarett L (1975) Pitfalls in the use of lead nitrate for the histochemical demonstration of adenylate cyclase activity. J Cell Biol 65:39–50Google Scholar
- Rasmussen J, Goodman DBP (1977) Relationships between calcium and cyclic nucleotides in cell activation. Physiol Rev 57:421–509Google Scholar
- Reik L, Petzold GL, Higgins JA, Greengard P, Barrnett RJ (1970) Hormone-sensitive adenyl cyclase: Cytochemical localization in rat liver. Science 168:382–384Google Scholar
- Sananes N, Psychoyos A (1974) Cytochemical localization of adenyl cyclase in the rat uterus. J Reprod Fert 38:181–183Google Scholar
- Santolaya R, Lederis K (1980) Localization of adenylate cyclase in the neurointermediate lobe of the rat pituitary: Ultrastructural cyctochemistry. Cell Tissue Res 207:387–394Google Scholar
- Sato T, Garcia-Bunuel R, Brandes D (1974) Ultrastructural cytochemical localization of adenylate cyclase in the rat nephron. Lab Invest 30:222–229Google Scholar
- Soji T (1978) Cytological changes in the pituitary basophils in rats slowly infused with LRH and with LRH and TRH in combination. Endocrinol Jpn 25:259–274Google Scholar
- Spona J (1975) LH-RH-sensitive adenylate cyclase in isolated plasma membranes of rat adenohypophyses. Endocrinol Exp 9:27–34Google Scholar
- Trandaburu T (1976) Ultrastructural localization of adenyl cyclase activity in the pancreas of two amphibian species (Salamandra salamandra L. and Rana esculenta L.). Histochemistry 48:1–6Google Scholar
- Tsuchiya T, Tamate H (1979) Ultrastructural localization of adenyl cyclase activity in sheep parathyroid gland. Acta Histochem Cytochem 12:356–360Google Scholar
- Vorbrodt A, Konwinski M, Solter D, Koprowski H (1977) Ultrastructural cytochemistry of membrane-bound phosphatases in preimplantation mouse embryos. Dev Biol 55:117–134Google Scholar