DEVELOPMENTAL CHANGE OF Ca2+-ATPASE ACTIVITY ON PLASMA MEMBRANE OF RAT PANCREAS DURING PERINATAL PERIOD
Cat+-ATPase activity in rat pancreatic exocrine cells and endocrine cells during perinatal development was cytochemically examined at the electron microscopic level. The intense enzyme activity on the plasma membrane of endocrine cells was observed from the beginning of differentiation of endocrine...
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Published in | ACTA HISTOCHEMICA ET CYTOCHEMICA Vol. 23; no. 6; pp. 805 - 816 |
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Main Authors | , , |
Format | Journal Article |
Language | English |
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Kyoto
JAPAN SOCIETY OF HISTOCHEMISTRY AND CYTOCHEMISTRY
01.01.1990
Japan Society of Histochemistry and Cytochemistry Japan Science and Technology Agency |
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Abstract | Cat+-ATPase activity in rat pancreatic exocrine cells and endocrine cells during perinatal development was cytochemically examined at the electron microscopic level. The intense enzyme activity on the plasma membrane of endocrine cells was observed from the beginning of differentiation of endocrine cells, as well as in adult rats. However, no activity was seen on the plasma membrane of exocrine cells in prenatal rats. Ca2+-ATPase activity on the basolateral plasma membrane of exocrine cells appeared after birth, whereas pancreatic acini and zymogen granules were fully developed during the late embryonic stage. It seemed that the appearance of Ca2+-ATPase activity on the plasma membrane corresponded to the beginning of exocrine secretory function. These results suggest that Ca2+-ATPase activity on plasma membrane of exocrine cells may be deeply involved in the secretory function and/or its regulation. |
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AbstractList | Cat+-ATPase activity in rat pancreatic exocrine cells and endocrine cells during perinatal development was cytochemically examined at the electron microscopic level. The intense enzyme activity on the plasma membrane of endocrine cells was observed from the beginning of differentiation of endocrine cells, as well as in adult rats. However, no activity was seen on the plasma membrane of exocrine cells in prenatal rats. Ca2+-ATPase activity on the basolateral plasma membrane of exocrine cells appeared after birth, whereas pancreatic acini and zymogen granules were fully developed during the late embryonic stage. It seemed that the appearance of Ca2+-ATPase activity on the plasma membrane corresponded to the beginning of exocrine secretory function. These results suggest that Ca2+-ATPase activity on plasma membrane of exocrine cells may be deeply involved in the secretory function and/or its regulation. |
Author | TAKASHIMA, YOICHIRO LEE, JUNG NAM ARAKI, NOBUKAZU |
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Copyright | the Japan Society of Histochemistry and Cytochemistry 1992 INIST-CNRS Copyright Japan Science and Technology Agency 1990 |
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Keywords | Ca-ATPase Vertebrata Regulation(control) Mammalia Enzymatic activity Rat Enzyme Rodentia Plasma membrane Perinatal Pancreas |
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N. Y. Acad. Sci. 307; 562-582, 1978. 15. Jaffe, L. F.: Control of development by steady ionic currents. Fed. Proc. 40; 125-127, 1981. 7. Dumm, C. L. G., Galeano, A. M., Genoro, S. and Gagliardino, J. J.: Appearance of immunoreactive endocrine cells during the development of the rat pancreas, with special reference to polypeptide-secreting cells. Acta Anat. 130; 158-162, 1987. 19. Larose, L. and Morisset, J.: Acinar cell responsiveness to urecholine in the rat pancreas during fetal and early postnatal growth. Gastroenterol. 73; 530-533, 1977. 29. Rhoten, W. B.: Insulin secretory dynamics during development of rat pancreas. Am. J. Physiol. 239; E57-E63, 1980. 34. Van Nest, G. A., MacDonald, R. J., Raman, R. K. and Rutter, W. J.: Proteins synthesized and secreted during rat pancreatic development. J. Cell. Biol. 86; 784-794, 1980. 38. Wollheim, C. B. and Sharp, G. W. G.: Regulation of insulin release by calcium. Physiol. Rev. 61; 914-973, 1981. 40. Zoppi, G., Andreotti, G. and Pajno-Ferrara, F.: Exocrine pancreas function in premature and full-term neonates. Pediatr. Res. 6; 880-886, 1972. 14. Hurley, T. W. Becker, J. K. and Martinez, J. R.: High affinity, calcium-stimulated adenosine triphosphatase activity in the particulate fraction of rat pancreatic acini. J. Biol. Chem. 259; 7061-7066, 1984. 26. Pictet, R. L., Clark, W. R., William, R. H. and Rutter, W. J.: An ultrastructural analysis of the developing embryonic pancreas. Dev. Biol. 29; 436-467, 1972. 35. Werlin, S. L., Colton, D. G., Harb, J., Reynolds, E., Hoffman, R. G. and Williams, J. A.: Ontogeny of secretory function and cholecystokinin binding capacity in immature rat pancreas. Life Sci. 40; 2237-2245, 1987. 31. Schreurs, V. V. A. M., Swarts, H. G. P., De Pont, J. J. H. H. M. and Bonting, S. L.: Role of calcium in exocrine pancreatic secretion. II. Comparison of the effects of carbachol and ionophore A23187 on enzyme secretion and calcium movements in rabbit pancreas. Biochim. Biophys. Acta 419; 320-330, 1976. 18. Kervran, A. and Randon, J.: Development of insulin release by fetal rat pancreas in vitro. Diabetes 29; 673-678, 1980. 24. O'Doherty, J. and Stark, J. R.: Stimulation of pancreatic acinar secretion: increases in cytosolic calcium and sodium. Am. J. Physiol. 242, G513-521, 1982. 37. Williams, J. A.: Regulation of pancreatic acinar cell function by intracellular calcium. Am. J. Physiol. 238; G269-279, 1982. 30. Sanders, T. G. and Rutter, W. J.: The developmental regulation of amylolytic and proteolytic enzymes in the embryonic rat pancreas. J. Biol. Chem. 249, 3500-3509, 1974. 32. Schulz, I. and Stolze, H. H.: The exocrine pancreas: The role of secretagogues, cyclic nucleotides, and calcium in enzyme secretion. Ann. Rev. Physiol. 42; 127-156, 1980. 36. Werlin, S. L. and Grand, R. 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L.: Pancreatic insulin-, glucagon-, and somatostatin-positive islet cell populations during the perinatal development of the rat. Biol. Neonate 38; 248-254, 1980. |
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Title | DEVELOPMENTAL CHANGE OF Ca2+-ATPASE ACTIVITY ON PLASMA MEMBRANE OF RAT PANCREAS DURING PERINATAL PERIOD |
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