Autocrine expression and ontogenetic functions of the PACAP ligand/receptor system during sympathetic development.
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J. Pintar | X. Zhou | W. Friedman | E. Dicicco-Bloom | J. Maltzman | J. Zheng | P. Deutsch | T. Zaremba | J. Zhang
[1] A. Buj-Bello,et al. Differences and Developmental Changes in the Responsiveness of PNS Neurons to GDNF and Neurturin , 1999, Molecular and Cellular Neuroscience.
[2] R. Rush,et al. Endogenous nerve growth factor and neurotrophin-3 act simultaneously to ensure the survival of postnatal sympathetic neurons in vivo , 1998, Neuroscience.
[3] J. Milbrandt,et al. Artemin, a Novel Member of the GDNF Ligand Family, Supports Peripheral and Central Neurons and Signals through the GFRα3–RET Receptor Complex , 1998, Neuron.
[4] F. Miller,et al. Autocrine Hepatocyte Growth Factor Provides a Local Mechanism for Promoting Axonal Growth , 1998, The Journal of Neuroscience.
[5] Renping Zhou,et al. Opposing mitogenic regulation by PACAP in sympathetic and cerebral cortical precursors correlates with differential expression of PACAP receptor (PAC1‐R) isoforms , 1998, Journal of neuroscience research.
[6] V. May,et al. Pituitary adenylate cyclase activating polypeptide (PACAP) expression in sympathetic preganglionic projection neurons to the superior cervical ganglion. , 1998, Journal of neurobiology.
[7] E. Carpenter,et al. Neural tube expression of pituitary adenylate cyclase-activating peptide (PACAP) and receptor: potential role in patterning and neurogenesis. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[8] S. Rawlings,et al. International Union of Pharmacology. XVIII. Nomenclature of receptors for vasoactive intestinal peptide and pituitary adenylate cyclase-activating polypeptide. , 1998, Pharmacological reviews.
[9] J. Hannibal,et al. Embryonic expression of pituitary adenylate cyclase‐activating polypeptide in sensory and autonomic ganglia and in spinal cord of the rat , 1998, The Journal of comparative neurology.
[10] A. Davies,et al. Multiple Roles for Hepatocyte Growth Factor in Sympathetic Neuron Development , 1998, Neuron.
[11] J. Pintar,et al. Embryonic and uterine expression patterns of peptidylglycine alpha-amidating monooxygenase transcripts suggest a widespread role for amidated peptides in development. , 1997, Developmental biology.
[12] M. Kanje,et al. The effects of axotomy and preganglionic denervation on the expression of pituitary adenylate cyclase activating peptide (PACAP), galanin and PACAP type 1 receptors in the rat superior cervical ganglion , 1997, Brain Research.
[13] M. Kanje,et al. Pituitary adenylate cyclase-activating peptide (PACAP) and PACAP type 1 receptor expression in regenerating adult mouse and rat superior cervical ganglia in vitro , 1997, Brain Research.
[14] Janet M. Allen,et al. Pituitary Adenylyl Cyclase-activating Peptide Stimulates Extracellular Signal-regulated Kinase 1 or 2 (ERK1/2) Activity in a Ras-independent, Mitogen-activated Protein Kinase/ERK Kinase 1 or 2-dependent Manner in PC12 Cells* , 1997, The Journal of Biological Chemistry.
[15] J. Milbrandt,et al. Neurturin shares receptors and signal transduction pathways with glial cell line-derived neurotrophic factor in sympathetic neurons. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[16] A. Davies,et al. Sympathetic neuron survival and TrkA expression in NT3‐deficient mouse embryos , 1997, The EMBO journal.
[17] V. May,et al. Identification of Endogenous Sympathetic Neuron Pituitary Adenylate Cyclase-Activating Polypeptide (PACAP): Depolarization Regulates Production and Secretion through Induction of Multiple Propeptide Transcripts , 1997, The Journal of Neuroscience.
[18] E. Dicicco-Bloom,et al. Pituitary adenylate cyclase-activating polypeptide is an autocrine inhibitor of mitosis in cultured cortical precursor cells. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[19] D. Kaplan,et al. Signal transduction by the neutrophin receptors , 1997 .
[20] A. Davies. Neurotrophin switching: where does it stand? , 1997, Current Opinion in Neurobiology.
[21] A. Granholm,et al. Morphological Alterations in the Peripheral and Central Nervous Systems of Mice Lacking Glial Cell Line-Derived Neurotrophic Factor (GDNF): Immunohistochemical Studies , 1997, The Journal of Neuroscience.
[22] C. Pozniak,et al. NGF and Neurotrophin-3 Both Activate TrkA on Sympathetic Neurons but Differentially Regulate Survival and Neuritogenesis , 1997, The Journal of cell biology.
[23] E. Dicicco-Bloom. Region‐Specific Regulation of Neurogenesis by VIP and PACAP: Direct and Indirect Modes of Action , 1996, Annals of the New York Academy of Sciences.
[24] A. Fagan,et al. TrkA, But Not TrkC, Receptors Are Essential for Survival of Sympathetic Neurons In Vivo , 1996, The Journal of Neuroscience.
[25] I. Fariñas,et al. Renal and neuronal abnormalities in mice lacking GDNF , 1996, Nature.
[26] I. Black,et al. A paradigm for distinguishing the roles of mitogenesis and trophism in neuronal precursor proliferation. , 1996, Brain research. Developmental brain research.
[27] I. Fariñas,et al. A Reciprocal Cell–Cell Interaction Mediated by NT-3 and Neuregulins Controls the Early Survival and Development of Sympathetic Neuroblasts , 1996, Neuron.
[28] S. Rawlings,et al. Pituitary adenylate cyclase-activating polypeptide (PACAP) and PACAP/vasoactive intestinal polypeptide receptors: actions on the anterior pituitary gland. , 1996, Endocrine reviews.
[29] S. Linnarsson,et al. Prenatal and postnatal requirements of NT-3 for sympathetic neuroblast survival and innervation of specific targets. , 1996, Development.
[30] M. Mulholland,et al. Pituitary adenylate cyclase-activating peptide stimulates neurite growth in PC12 cells , 1995, Peptides.
[31] R. Rush,et al. Sympathetic neurons in neonatal rats require endogenous neurotrophin-3 for survival , 1995, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[32] A. Tolkovsky,et al. Activation of p44 and p42 MAP Kinases is not Essential for the Survival of Rat Sympathetic Neurons , 1995, The European journal of neuroscience.
[33] A. Davies,et al. GDNF is an age-specific survival factor for sensory and autonomic neurons , 1995, Neuron.
[34] A. Davies,et al. Regulation of nerve growth factor receptor gene expression in sympathetic neurons during development , 1995, The Journal of cell biology.
[35] V. May,et al. Pituitary Adenylate Cyclase‐Activating Polypeptide (PACAP) Regulation of Sympathetic Neuron Neuropeptide Y and Catecholamine Expression , 1995, Journal of neurochemistry.
[36] E. Arenas,et al. Peripheral expression and biological activities of GDNF, a new neurotrophic factor for avian and mammalian peripheral neurons , 1995, The Journal of cell biology.
[37] R. Oppenheim,et al. Evidence for an important role of IGF-I and IGF-II for the early development of chick sympathetic neurons , 1995, Neuron.
[38] S. Shioda,et al. Pituitary Adenylate Cyclase Activating Polypeptide (PACAP) and Its Receptors: Neuroendocrine and Endocrine Interaction , 1995, Frontiers in Neuroendocrinology.
[39] I. Black,et al. Trophic mechanisms regulate mitotic neuronal precursors: role of vasoactive intestinal peptide (VIP) , 1994, Brain Research.
[40] J. Allen,et al. Vasoactive intestinal peptide stimulates neuropeptide Y gene expression and causes neurite extension in PC12 cells through independent mechanisms , 1994, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[41] S. Landis,et al. The appearance of NPY and VIP in sympathetic neuroblasts and subsequent alterations in their expression , 1994, Journal of Neuroscience.
[42] I. Fariñas,et al. Severe sensory and sympathetic deficits in mice lacking neurotrophin-3 , 1994, Nature.
[43] C. Marshall,et al. Activation of MAP kinase kinase is necessary and sufficient for PC12 differentiation and for transformation of NIH 3T3 cells , 1994, Cell.
[44] R. Jaenisch,et al. Lack of neurotrophin-3 leads to deficiencies in the peripheral nervous system and loss of limb proprioceptive afferents , 1994, Cell.
[45] S. McMahon,et al. Mice lacking nerve growth factor display perinatal loss of sensory and sympathetic neurons yet develop basal forebrain cholinergic neurons , 1994, Cell.
[46] Mu-ming Poo,et al. Turning of nerve growth cones induced by neurotransmitters , 1994, Nature.
[47] E. Van Obberghen,et al. Cyclic AMP activates the mitogen-activated protein kinase cascade in PC12 cells. , 1994, The Journal of biological chemistry.
[48] J. Tavaré,et al. Differentiation of PC12 cells in response to a cAMP analogue is accompanied by sustained activation of mitogen‐activated protein kinase , 1994, FEBS letters.
[49] I. Black,et al. NT-3 stimulates sympathetic neuroblast proliferation by promoting precursor survival , 1993, Neuron.
[50] D. Anderson,et al. Sympathetic neuroblasts undergo a developmental switch in trophic dependence. , 1993, Development.
[51] C. Delporte,et al. Contrasting effects of PACAP and carbachol on [Ca2+]i and inositol phosphates in human neuroblastoma NB-OK-1 cells , 1993, Peptides.
[52] J. Christophe,et al. Type I receptors for PACAP (a neuropeptide even more important than VIP?). , 1993, Biochimica et biophysica acta.
[53] Laurent Journot,et al. Differential signal transduction by five splice variants of the PACAP receptor , 1993, Nature.
[54] S. Wank,et al. Molecular cloning and functional expression of the pituitary adenylate cyclase-activating polypeptide type I receptor. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[55] N. Barzilai,et al. 38‐Amino acid form of pituitary adenylate cyclase activating peptide induces process outgrowth in human neuroblastoma cells , 1993, Journal of neuroscience research.
[56] A. Ito,et al. Biochemical characterization of programmed cell death in NGF-deprived sympathetic neurons. , 1992, Journal of neurobiology.
[57] M. Chao. Neurotrophin receptors: A window into neuronal differentiation , 1992, Neuron.
[58] P. Deutsch,et al. Regulation of gene expression in PC12 cells via an activator of dual second messengers: pituitary adenylate cyclase activating polypeptide. , 1992, Molecular biology of the cell.
[59] D. Anderson,et al. Membrane depolarization induces p140trk and NGF responsiveness, but not p75LNGFR, in MAH cells. , 1992, Science.
[60] P. de Neef,et al. Structural requirements for the occupancy of pituitary adenylate-cyclase-activating-peptide (PACAP) receptors and adenylate cyclase activation in human neuroblastoma NB-OK-1 cell membranes. Discovery of PACAP(6-38) as a potent antagonist. , 1992, European journal of biochemistry.
[61] Y. Sun,et al. The 38-amino acid form of pituitary adenylate cyclase-activating polypeptide stimulates dual signaling cascades in PC12 cells and promotes neurite outgrowth. , 1992, The Journal of biological chemistry.
[62] A. Arimura. Pituitary adenylate cyclase activating polypeptide (PACAP): discovery and current status of research , 1992, Regulatory Peptides.
[63] E. Dicicco-Bloom,et al. Pituitary adenylate cyclase activating polypeptide (PACAP) potently stimulates mitosis, neuritogenesis and survival in cultured rat sympathetic neuroblasts , 1992, Regulatory Peptides.
[64] A. Tolkovsky,et al. The Death Programme in Cultured Sympathetic Neurones Can Be Suppressed at the Posttranslational Level by Nerve Growth Factor, Cyclic AMP, and Depolarization , 1991, Journal of neurochemistry.
[65] I. Black,et al. Role of voltage-sensitive calcium channels in mitogenic stimulation of neuroblasts , 1991, Brain Research.
[66] R. Harvey,et al. Fibroblast growth factor-mediated proliferation of central nervous system precursors depends on endogenous production of insulin-like growth factor I. , 1991, Proceedings of the National Academy of Sciences of the United States of America.
[67] I. Black,et al. Neuroblast mitosis in dissociated culture: regulation and relationship to differentiation , 1990, The Journal of cell biology.
[68] I. Black,et al. Vasoactive intestinal peptide regulation of neuroblast mitosis and survival: role of cAMP , 1990, Brain Research.
[69] I. Black,et al. Vasoactive intestinal peptide regulates mitosis, differentiation and survival of cultured sympathetic neuroblasts , 1990, Nature.
[70] A. Pardee. G1 events and regulation of cell proliferation. , 1989, Science.
[71] M. Culler,et al. Isolation of a novel 38 residue-hypothalamic polypeptide which stimulates adenylate cyclase in pituitary cells. , 1989, Biochemical and biophysical research communications.
[72] I. Black,et al. Depolarization and insulin like growth factor-l (IGF-l) differentially regulate the mitotic cycle in cultured rat sympathetic neuroblasts , 1989, Brain Research.
[73] H. Rohrer,et al. Proliferation and differentiation of embryonic chick sympathetic neurons: Effects of ciliary neurotrophic factor , 1989, Neuron.
[74] I. Black,et al. Insulin growth factors regulate the mitotic cycle in cultured rat sympathetic neuroblasts. , 1988, Proceedings of the National Academy of Sciences of the United States of America.
[75] H. Thoenen,et al. Relationship between differentiation and terminal mitosis: chick sensory and ciliary neurons differentiate after terminal mitosis of precursor cells, whereas sympathetic neurons continue to divide after differentiation , 1987, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[76] R. Levi‐montalcini,et al. The nerve growth factor 35 years later. , 1987, Science.
[77] E. Rozengurt. Early signals in the mitogenic response. , 1986, Science.
[78] M. Coughlin,et al. Nerve growth factor-independent development of embryonic mouse sympathetic neurons in dissociated cell culture. , 1985, Developmental biology.
[79] E. Rubin. Development of the rat superior cervical ganglion: ganglion cell maturation , 1985, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[80] T. P. Rothman,et al. Catecholamine biosynthetic enzymes are expressed in replicating cells of the peripheral but not the central nervous system. , 1980, Proceedings of the National Academy of Sciences of the United States of America.
[81] I. Black,et al. Initial development of the noradrenergic phenotype in autonomic neuroblasts of the rat embryo in vivo. , 1979, Developmental biology.
[82] T. P. Rothman,et al. The relationship of cell division to the acquisition of adrenergic characteristics by developing sympathetic ganglion cell precursors. , 1978, Developmental biology.
[83] M. Greenberg,et al. Intracellular signaling pathways activated by neurotrophic factors. , 1996, Annual review of neuroscience.
[84] F. Costantini,et al. Common origin and developmental dependence on c-ret of subsets of enteric and sympathetic neuroblasts. , 1996, Development.
[85] A. Arimura,et al. Primary structure and characterization of the precursor to human pituitary adenylate cyclase activating polypeptide. , 1992, DNA and cell biology.
[86] Renato Baserga,et al. The biology of cell reproduction , 1985 .