Summary
Using a somatostatin-gold conjugate of known biological activity, high affinity binding sites for this neuropeptide were visualized at cellular resolution on cultured diencephalic astrocytes and on frozen sections of the rat diencephalon. Binding could be completely suppressed in competition experiments with surplus unlabeled somatostatin. On sections, the ligand was displaced from its binding sites by 10 μM guanosine triphosphate indicating a functional significance of the labeled structures. As with the native peptide, a surplus of the analog SMS 201–995 suppressed nearly all staining. The ligand was bound to distinct populations of astrocytes, namely to those in subependymal and perivascular positions, to astrocytes in somatostatin-innervated hypothalamic nuclei in the mid-sagittal plane and to borderline regions of circumventricular organs. A general mismatch between the distribution of somatostatin-immunoreactive terminals and the pattern of binding of the ligand does not exist. This, together with the competition experiments, suggests a functional relationship between the somatostatin-releasing neurons and associated astrocytes.
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Ambach G, Palkovits M, Szentágothai J (1976) Blood supply of the rat hypothalamus. IV. Retrochiasmatic area, median eminence, arcuate nucleus. Acta Morph Acad Sci Hung 24:93–119
Calker D van, Müller M, Hamprecht B (1980) Regulation by secretin, vasoactive intestinal peptide, and somatostatin of cyclic AMP accumulation in cultured brain cells. Proc Natl Acad Sci USA 77:6907–6911
Calker D van, Löffler F, Hamprecht B (1983) Corticotropin peptides and melanotropins elevate the level of adenosine 3′5′-cyclic monophosphate in cultured murine brain cells. J Neurochem 40:418–427
Chneiweiss H, Glowinski J, Prémont J (1985) Modulation by monoamines of somatostatin sensitive adenylate cyclase on neuronal and glial cells from the mouse brain in primary cultures. J Neurochem 44:1825–1831
Enjalbert A, Rasolonjanahary R, Moyse E, Kordon S, Epelbaum J (1983) Guanine nucleotide sensitivity of (125J)Iodo-N-Tyr-somatostatin binding in rat adenohypophysis and cerebral cortex. Endocrinology 113:822–824
Epelbaum J, Dussaillant M, Enjalbert A, Kordon C, Rostène W (1985) Autoradiographic localization of a non-reducible somatostatin analog (125I-CGP 23996) binding sites in the rat brain: comparison with membrane binding. Peptides 6:713–719
Evans T, McCarthy KD, Harden TK (1984) Regulation of cyclic AMP accumulation by peptide hormone receptors in immunocytochemically defined astroglial cells. J Neurochem 43:131–138
Hansson E (1988) Astroglia from defined brain regions as studied with primary cultures. Prog Neurobiol 30:369–397
Heiman ML, Murphy WA, Coy DH (1987) Differential binding of somatostatin agonists to somatostatin receptors in brain and adenohypophysis. Neuroendocrinology 45:429–436
Herkenham M (1987) Mismatches between neurotransmitter and receptor localization in brain: observations and implications. Neuroscience 23:1–38
Krantic S, Martel J-C, Weissmann D, Quirion R (1989) Radioautographic analysis of somatostatin receptor subtype in rat hypothalamus. Brain Res 498:267–278
Krisch B (1978a) Light- and electron-microscopic localization of vasopressin-like substance in the neurons of the rat suprachiasmatic nucleus. Cell Tissue Res 194:361–365
Krisch B (1978b) Hypothalamic and extrahypothalamic distribution of somatostatin-immunoreactive elements in the rat brain. Cell Tissue Res 195:499–513
Krisch B (1980) Immunocytochemistry of neuroendocrine systems. Prog Histochem Cytochem 13:1–163
Krisch B, Leonhardt H (1980a) Luliberin and somatostatin fiberterminals in the subfornical organ of the rat. Cell Tissue Res 210:33–45
Krisch B, Leonhardt H (1980b) Neurohormones in the intercellular clefts and in glia-like cells of the rat brain. Cell Tissue Res 211:251–268
Krisch B, Leonhardt H (1984) Ependymal cells-transporting epithelia? Verh Anat Ges 78:85–92
Krisch B, Leonhardt H (1989) Relations between leptomeningeal compartments and the neurohemal regions of circumventricular organs. Biomed Res 10 [Suppl 3]:155–168
Krisch B, Mentlein M (1989) The bifunctional role of pro-opiomelanocortin derivatives in the mediobasal hypothalamus of the rat. Z Mikrosk Anat Forsch 103:861–876
Leonhardt H, Krisch B, Erhardt H (1984) Organization of the neuroglia in the midsagittal plane of the central nervous system: a speculative report. In: Scharrer B, Korf H-W, Hartwig H-G (eds) Functional morphology of neuroendocrine systems. Springer, Berlin Heidelberg New York, pp 175–187
Leroux P, Pelletier G (1984) Radioautographic localization of somatostatin-14 and somatostatin-28 binding sites in the rat brain. Peptides 5:503–506
Leroux P, Quirion R, Pelletier G (1985) Localization and characterization of brain somatostatin receptors as studied with somatostatin-14 and somatostatin-28 receptor autoradiography. Brain Res 347:74–84
Leroux P, Gonzalez BJ, Laquerrière A, Bodenant C, Vaudry H (1988) Autoradiographic study of somatostatin receptors in the rat hypothalamus: validation of a GTP-induced desaturation procedure. Neuroendocrinology 47:533–544
McCarthy KD, Vellis J de (1980) Preparation of separate astroglial and oligodendroglial cell cultures from rat cerebral tissue. J Cell Biol 85:890–902
McKelvy JF, Blumberg S (1986) Inactivation and metabolism of neuropeptides. Annu Rev Neurosci 9:415–434
Mentlein R, Buchholz C, Krisch B (1990) Somatostatin binding sites on rat telencephalic astrocytes. Light- and electron-microscopic study in vitro and in vivo. Cell Tissue Res 262:431–443
Moyse E, Slama C, Angela P de, Kordon C, Epelbaum J (1989) Regional distribution of somatostatin receptor affinity states in rat brain: effects of divalent cations and GTP. Regul Pept 26:225–234
Reubi JC (1984) Evidence for two somatostatin-14 receptor types in rat brain cortex. Neurosci Lett 49:259–263
Reubi JC, Maurer R (1985) Autoradiographic mapping of somatostatin receptors in the rat central nervous system and pituitary. Neuroscience 15:1183–1193
Rougon G, Noble M, Mudge AW (1983) Neuropeptides modulate the β-adrenergic response of purified astrocytes in vitro. Nature 305:715–717
Tran VT, Beal MF, Martin JB (1985) Two types of somatostatin receptors differentiated by cyclic somatostatin analogs. Science 228:492–495
Walz W (1989) Role of glial cells in the regulation of the brain ion microenvironment. Prog Neurobiol 33:309–333
Záborszky L, Schiebler TH (1978) Über die Glia der Eminentia mediana. Elektronenmikroskopische Untersuchungen an normalen, adrenalektomierten und kastrierten Ratten. Z Mikrosk Anat Forsch 92:781–799
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Krisch, B., Buchholz, C. & Mentlein, R. Somatostatin binding sites on rat diencephalic astrocytes. Cell Tissue Res 263, 253–263 (1991). https://doi.org/10.1007/BF00318767
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DOI: https://doi.org/10.1007/BF00318767