Serotonin induces inward potassium and calcium currents in rat cortical astrocytes
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H. Kimelberg | R. R. Margraf | M. Linne | H. K. Kimelberg | T. O. Jalonen | D. B. Wielt | C. J. Charniga | M.-L. Linne | T. Jalonen | C. Charniga
[1] S. Goderie,et al. Transmitter‐Induced Calcium Responses Differ in Astrocytes Acutely Isolated from Rat Brain and in Culture , 1997, Journal of neurochemistry.
[2] J. Stolzenburg,et al. Further evidence that fluoxetine interacts with a 5-HT2C receptor in glial cells , 1995, Brain Research Bulletin.
[3] S. Duffy,et al. Adrenergic calcium signaling in astrocyte networks within the hippocampal slice , 1995, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[4] V. Sogos,et al. Differential regulation of phospholipases C and D by phorbol esters and the physiological activators carbachol and glutamate in astrocytes from chicken embryo cerebrum and cerebellum. , 1995, Brain research. Developmental brain research.
[5] T. Pozzan,et al. Long-lasting Changes of Calcium Oscillations in Astrocytes , 1995, The Journal of Biological Chemistry.
[6] E. Azmitia,et al. Activation of glycogen phosphorylase by serotonin and 3,4-methylenedioxymethamphetamine in astroglial-rich primary cultures: involvement of the 5-HT2A receptor , 1995, Brain Research.
[7] Paul J. Harrison,et al. The distribution of 5-HT1A and 5-HT2A receptor mRNA in human brain , 1995, Brain Research.
[8] K. Mikoshiba,et al. Immunohistochemical study of inositol 1,4,5-trisphosphate receptor type 3 in rat central nervous system. , 1995, Neuroreport.
[9] N. Davidson,et al. Differential coupling of G protein alpha subunits to seven-helix receptors expressed in Xenopus oocytes. , 1994, The Journal of biological chemistry.
[10] D. Hillman,et al. Immunohistochemical localization of protein kinase C delta during postnatal development of the cerebellum. , 1994, Brain research. Developmental brain research.
[11] M. Hamon,et al. Postnatal development and localization of 5-HT1A receptor mRNA in rat forebrain and cerebellum. , 1994, Brain research. Developmental brain research.
[12] B. MacVicar,et al. Potassium-dependent calcium influx in acutely isolated hippocampal astrocytes , 1994, Neuroscience.
[13] M. Hamon,et al. Neuronal localization of 5-HT1A receptor mRNA and protein in rat embryonic brain stem cultures. , 1994, Brain research. Developmental brain research.
[14] P P Humphrey,et al. International Union of Pharmacology classification of receptors for 5-hydroxytryptamine (Serotonin). , 1994, Pharmacological reviews.
[15] E. Daniel,et al. L-type calcium channels may fill directly the IP3-sensitive calcium store. , 1994, General physiology and biophysics.
[16] DH Bobker. A slow excitatory postsynaptic potential mediated by 5-HT2 receptors in nucleus prepositus hypoglossi , 1994, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[17] S. Peroutka,et al. The molecular evolution of G protein-coupled receptors: Focus on 5-hydroxytryptamine receptors , 1994, Neuropharmacology.
[18] Chuen-Mao Yang,et al. 5‐Hydroxytryptamine receptor‐mediated phosphoinositide hydrolysis in canine cultured tracheal smooth muscle cells , 1994, British journal of pharmacology.
[19] E. Azmitia,et al. Localization of 5‐HT1A receptors to astroglial cells in adult rats: Implications for neuronal‐glial interactions and psychoactive drug mechanism of action , 1993, Synapse.
[20] D. Morilak,et al. Production and characterization of a specific 5-HT2 receptor antibody , 1993, Brain Research.
[21] H. Kimelberg,et al. Detection of 5‐hydroxytryptamine2 receptors by radioligand binding, northern blot analysis, and Ca2+ responses in rat primary astrocyte cultures , 1993, Journal of neuroscience research.
[22] R. Miledi,et al. Neurotransmitter receptors and voltage-dependent Ca2+ channels encoded by mRNA from the adult corpus callosum. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[23] L. Hösli,et al. Receptors for neurotransmitters on astrocytes in the mammalian central nervous system , 1993, Progress in Neurobiology.
[24] S. Peroutka. 5‐Hydroxytryptamine Receptors , 1993, Journal of neurochemistry.
[25] P. M. Hinkle,et al. Measurement of intracellular cadmium with fluorescent dyes. Further evidence for the role of calcium channels in cadmium uptake. , 1992, The Journal of biological chemistry.
[26] Chi Cheng,et al. Characterization of (superscript 3)H-Serotonin(5-HT)Binding and Effects on the Phosphoinositides(PI)Turnover in Cultured C6 Glioma and N2 Neuroblastoma Cells from Rodents , 1992 .
[27] M. Segal,et al. Analyzing responses to serotonin in glial cell line , 1992, Journal of Chemical Neuroanatomy.
[28] A. N. van den Pol,et al. Calcium excitability and oscillations in suprachiasmatic nucleus neurons and glia in vitro , 1992, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[29] J. Deitmer,et al. Calcium transients in identified leech glial cells in situ evoked by high potassium concentrations and 5-hydroxytryptamine. , 1992, The Journal of experimental biology.
[30] D. D. Fraser,et al. Voltage-activated K+ currents in acutely isolated hippocampal astrocytes , 1992, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[31] R. Andrade,et al. 5-Hydroxytryptamine2 and 5-hydroxytryptamine1A receptors mediate opposing responses on membrane excitability in rat association cortex , 1991, Neuroscience.
[32] K. McCarthy,et al. Pharmacologically-distinct subsets of astroglia can be identified by their calcium response to neuroligands , 1991, Neuroscience.
[33] E. Azmitia,et al. Awakening the sleeping giant: anatomy and plasticity of the brain serotonergic system. , 1991, The Journal of clinical psychiatry.
[34] E. Hansson,et al. Adrenergic and 5-HT2 receptors on the same astroglial cell. A microspectrofluorimetric study on cytosolic Ca2+ responses in single cells in primary culture. , 1991, Brain research. Developmental brain research.
[35] A. Charles,et al. Intercellular signaling in glial cells: Calcium waves and oscillations in response to mechanical stimulation and glutamate , 1991, Neuron.
[36] M. Mizuguchi,et al. Phospholipase C isozymes in neurons and glial cells in culture: an immunocytochemical and immunochemical study , 1991, Brain Research.
[37] M. Mizuguchi,et al. Developmental changes of three phosphoinositide-specific phospholipase C isozymes in the rat nervous system. , 1991, Brain research. Developmental brain research.
[38] D. Corey,et al. Ion channel expression by white matter glia: The type-1 astrocyte , 1990, Neuron.
[39] E. Azmitia,et al. Stimulation of astroglial 5-HT1A receptors releases the serotonergic growth factor, protein S-100, and alters astroglial morphology , 1990, Brain Research.
[40] S. Hagiwara,et al. Neuronal modulation of calcium channel activity in cultured rat astrocytes. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[41] M. Segal. Developmental changes in serotonin actions in rat hippocampus. , 1990, Brain research. Developmental brain research.
[42] C. Gerfen,et al. Immunohistochemical localization of a brain isozyme of phospholipase C (PLC III) in astroglia in rat brain , 1989, Brain Research.
[43] B. Barres,et al. Calcium current in cortical astrocytes: induction by cAMP and neurotransmitters and permissive effect of serum factors , 1989, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[44] G. Reiser,et al. Serotonin regulates cytosolic Ca2+ activity and membrane potential in a neuronal and in a glial cell line via 5-HT3 and 5-HT2 receptors by different mechanisms. , 1989, Journal of cell science.
[45] B. MacVicar,et al. Calcium activated potassium channels in cultured astrocytes , 1986, Neuroscience.
[46] A. Ogura,et al. Cytosolic calcium elevation and cGMP production induced by serotonin in a clonal cell of glial origin , 1986, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[47] B. MacVicar,et al. Voltage-dependent calcium channels in glial cells. , 1984, Science.
[48] A. Ogura,et al. Serotonin-receptor coupled with membrane electrogenesis in a rat glioma clone , 1984, Brain Research.
[49] W. Walz,et al. Ionic mechanism of a hyperpolarizing 5-hydroxytryptamine effect on leech neuropile glial cells , 1982, Brain Research.
[50] B. Sakmann,et al. Single-Channel Recording , 1995, Springer US.
[51] E. Claro,et al. Neurotransmitter-specific profiles of inositol phosphates in rat brain cortex: relation to the mode of receptor activation of phosphoinositide phospholipase C. , 1995, The Journal of pharmacology and experimental therapeutics.
[52] J. Lauder,et al. Glial heterogeneity and developing neurotransmitter systems. , 1994, Perspectives on developmental neurobiology.
[53] C. Fewtrell. Ca2+ oscillations in non-excitable cells. , 1993, Annual review of physiology.
[54] H. Kimelberg,et al. CHAPTER 9 – Regulation of the Brain Microenvironment: Transmitters and Ions , 1993 .
[55] S. Murphy,et al. Astrocytes: Pharmacology and Function edited by J. Murphy, Academic Press, 1993. £75.00 (xx + 457 pages) ISBN 0 12511370 6 , 1994, Trends in Neurosciences.
[56] B. MacVicar,et al. CHAPTER 7 – Voltage-Dependent Ionic Channels in Astrocytes , 1993 .
[57] M. Segal,et al. Calcium dependence of serotonin‐evoked conductance in C6 glioma cells , 1992, Glia.
[58] A. Fatatis,et al. Spontaneous changes in intracellular calcium concentration in type I astrocytes from rat cerebral cortex in primary culture , 1992, Glia.
[59] J. Lauder,et al. Serotonin promotes region‐specific glial influences on cultured serotonin and dopamine neurons , 1992, Glia.
[60] S. Weiss,et al. Modulation of intracellular Ca++ in cultured astrocytes by influx through voltage‐activated Ca++ channels , 1991, Glia.
[61] K. McCarthy,et al. Cerebral type 2 astroglia are heterogeneous with respect to their ability to respond to neuroligands linked to calcium mobilization , 1991, Glia.
[62] P. Grafe,et al. Electrophysiological measurements of volume changes in leech neuropile glial cells , 1990, Glia.
[63] F. W. Tse,et al. Norepinephrine and cyclic adenosine 3′:5′‐cyclic monophosphate enhance a nifedipine‐sensitive calcium current in cultured rat astrocytes , 1988, Glia.
[64] Alain Marty,et al. Tight-Seal Whole-Cell Recording , 1983 .