Postsynaptic integration of glutamatergic and dopaminergic signals in the striatum

[1]  K. Fuxe,et al.  EVIDENCE FOR THE EXISTENCE OF MONOAMINE-CONTAINING NEURONS IN THE CENTRAL NERVOUS SYSTEM. I. DEMONSTRATION OF MONOAMINES IN THE CELL BODIES OF BRAIN STEM NEURONS. , 1964, Acta physiologica Scandinavica. Supplementum.

[2]  C J CLEMEDSON,et al.  DYNAMIC RESPONSE OF CHEST WALL AND LUNG INJURIES IN RABBITS EXPOSED TO AIR SHOCK WAVES OF SHORT DURATION. , 1964, Acta physiologica Scandinavica. Supplementum.

[3]  W M COWAN,et al.  A bilateral cortico-striate projection , 1965, Journal of neurology, neurosurgery, and psychiatry.

[4]  R. Johnston,et al.  CYCLIC 3',5'-NUCLEOTIDE PHOSPHODIESTERASE IN BRAIN , 1969, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.

[5]  S. Kakiuchi,et al.  Calcium dependent phosphodiesterase activity and its activating factor (PAF) from brain studies on cyclic 3',5'-nucleotide phosphodiesterase (3). , 1970, Biochemical and biophysical research communications.

[6]  T. Powell,et al.  The site of termination of afferent fibres in the caudate nucleus. , 1971, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.

[7]  T. Powell,et al.  The termination of fibres from the cerebral cortex and thalamus upon dendritic spines in the caudate nucleus: a study with the Golgi method. , 1971, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.

[8]  A. Heller,et al.  Anatomical and chemical studies of a nigro-neostriatal projection in the cat. , 1971, Brain research.

[9]  P. Greengard,et al.  Dopamine-sensitive adenylate cyclase in caudate nucleus of rat brain, and its similarity to the "dopamine receptor". , 1972, Proceedings of the National Academy of Sciences of the United States of America.

[10]  H. Fibiger,et al.  Analysis of the fine structure of the dopaminergic nigrostriatal projection by electron microscopic autoradiography. , 1973, Experimental neurology.

[11]  N. A. Buchwald,et al.  Caudate intracellular response to thalamic and cortical inputs. , 1973, Experimental neurology.

[12]  E. Krebs,et al.  Activation of protein kinase by physiological concentrations of cyclic AMP. , 1974, Proceedings of the National Academy of Sciences of the United States of America.

[13]  P. Greengard,et al.  CHARACTERIZATION OF A DOPAMINE‐SENSITIVE ADENYLATE CYCLASE IN THE RAT CAUDATE NUCLEUS , 1975, Journal of neurochemistry.

[14]  E. Krebs,et al.  Mechanisms of control for cAMP-dependent protein kinase from skeletal muscle. , 1975, Advances in cyclic nucleotide research.

[15]  J. Glowinski,et al.  Topographical distribution of dopaminergic innervation and of dopaminergic receptors in the rat striatum. II. Distribution and characteristics of dopamine adenylate cyclase — Interaction of d-LSD with dopaminergic receptors , 1976, Brain Research.

[16]  P. Greengard,et al.  Stimulation by dopamine of adenosine cyclic 3',5'-monophosphate formation in rat caudate nucleus: effect of lesions of the nigro-neostriatal pathway. , 1976, Molecular pharmacology.

[17]  F. Huang,et al.  Separation and characterization of two phosphorylase phosphatase inhibitors from rabbit skeletal muscle. , 1976, European journal of biochemistry.

[18]  I. H. Segel,et al.  Interaction of cyclic adenosine 3':5'-monophosphate with protein kinase. Equilibrium binding models. , 1976, The Journal of biological chemistry.

[19]  P. Mcgeer,et al.  A glutamatergic corticostriatal path? , 1977, Brain Research.

[20]  E. Fifková,et al.  Long-lasting morphological changes in dendritic spines of dentate granular cells following stimulation of the entorhinal area , 1977, Journal of neurocytology.

[21]  R. Porter,et al.  Cells of origin and terminal distrubution of corticostriatal fibers arising in the sensory‐motor cortex of monkeys , 1977, The Journal of comparative neurology.

[22]  E. Krebs,et al.  Concentrations of cyclic AMP-dependent protein kinase subunits in various tissues. , 1977, The Journal of biological chemistry.

[23]  A. Adinolfi,et al.  Subcellular localization of cyclic nucleotide phosphodiesterase in the caudate nucleus , 1977, Experimental Neurology.

[24]  J. Bockaert,et al.  Adenosine-sensitive adenylate cyclase in rat striatal homogenates and its relationship to dopamine- and Ca2+-sensitive adenylate cyclases. , 1977, Molecular pharmacology.

[25]  M. Sugimori,et al.  Convergence of excitatory synaptic inputs to caudate spiny neurons , 1977, Brain Research.

[26]  M. Brostrom,et al.  Calcium-dependent adenylate cyclase from rat cerebral cortex. Reversible activation by sodium fluoride. , 1977, The Journal of biological chemistry.

[27]  M. Brostrom,et al.  Calcium-dependent adenylate cyclase from rat cerebral cortex: activation by guanine nucleotides. , 1978, Archives of biochemistry and biophysics.

[28]  S. Snyder,et al.  Dopamine receptors localised on cerebral cortical afferents to rat corpus striatum , 1978, Nature.

[29]  P. Cohen,et al.  The Regulation of Glycogen Metaabolism , 1978 .

[30]  Y. Agid,et al.  Dopaminergic nerve endings in the neostriatum of the rat—1. Identification by intracerebral injections of 5-hydroxydopamine , 1978, Neuroscience.

[31]  P. Emson,et al.  Receptor-linked cyclic amp systems in rat neostriatum: Differential localization revealed by kainic acid injection , 1978, Brain Research.

[32]  M. Cuénod,et al.  Glutamate release in vitro from corticostriatal terminals , 1979, Brain Research.

[33]  Kretsinger Rh The informational role of calcium in the cytosol. , 1979 .

[34]  J. Kebabian,et al.  Multiple receptors for dopamine , 1979, Nature.

[35]  P. Greengard,et al.  Identification of the cyclic AMP-dependent protein kinase responsible for endogenous phosphorylation of substrate proteins in synaptic membrane fraction from rat brain. , 1979, The Journal of biological chemistry.

[36]  C. L. Johnson,et al.  Ca2+-dependent regulation of guinea pig brain adenylate cyclase. , 1980, The Journal of biological chemistry.

[37]  P. Seeman Brain dopamine receptors. , 1980, Pharmacological reviews.

[38]  R W Wallace,et al.  High levels of a heat-labile calmodulin-binding protein (CaM-BP80) in bovine neostriatum. , 1980, Biochemistry.

[39]  J. Wood,et al.  Immunocytochemical localization of calmodulin and a heat-labile calmodulin-binding protein (CaM-BP80) in basal ganglia of mouse brain , 1980, The Journal of cell biology.

[40]  J. C. Stoof,et al.  Opposing roles for D-1 and D-2 dopamine receptors in efflux of cyclic AMP from rat neostriatum , 1981, Nature.

[41]  D. Reis,et al.  Ultrastructural immunocytochemical localization of tyrosine hydroxylase in the neostriatum , 1981, Brain Research.

[42]  I. Divac,et al.  Biochemical evidence for glutamate as neurotransmitter in corticostriatal and corticothalamic fibres in rat brain , 1981, Neuroscience.

[43]  P. Somogyi,et al.  Monosynaptic cortical input and local axon collaterals of identified striatonigral neurons. A light and electron microscopic study using the golgi‐peroxidase transport‐degeneration procedure , 1981, The Journal of comparative neurology.

[44]  Charles J. Wilson,et al.  Spontaneous firing patterns of identified spiny neurons in the rat neostriatum , 1981, Brain Research.

[45]  J. Potter,et al.  Ca2+-dependent regulation of rat caudate nucleus adenylate cyclase and effects on the response to dopamine. , 1981, Molecular pharmacology.

[46]  M. Gnegy,et al.  Effect of calmodulin on dopamine-sensitive adenylate cyclase activity in rat striatal membranes. , 1981, Molecular Pharmacology.

[47]  D. Øgreid,et al.  Activation of protein kinase isoenzymes under near physiological conditions , 1982, FEBS letters.

[48]  B. Scatton Further evidence for the involvement of D2, but not D1 dopamine receptors in dopaminergic control of striatal cholinergic transmission. , 1982, Life sciences.

[49]  F. Crick Do dendritic spines twitch? , 1982, Trends in Neurosciences.

[50]  W. Theurkauf,et al.  Molecular characterization of the cAMP-dependent protein kinase bound to microtubule-associated protein 2. , 1982, The Journal of biological chemistry.

[51]  P. Cohen,et al.  Discovery of A Ca2+‐and calmodulin‐dependent protein phosphatase , 1982, FEBS letters.

[52]  Gnegy Me Relationship of calmodulin and dopaminergic activity in the striatum. , 1982 .

[53]  P. De Camilli,et al.  Frozen tissue sections as an experimental system to reveal specific binding sites for the regulatory subunit of type II cAMP-dependent protein kinase in neurons. , 1982, Proceedings of the National Academy of Sciences of the United States of America.

[54]  M. Memo,et al.  Agonist-induced subsensitivity of adenylate cyclase coupled with a dopamine receptor in slices from rat corpus striatum. , 1982, Proceedings of the National Academy of Sciences of the United States of America.

[55]  T E Salt,et al.  Effects of excitatory amino acids and their antagonists on membrane and action potentials of cat caudate neurones. , 1983, The Journal of physiology.

[56]  P. Greengard,et al.  Protein phosphorylation in the brain , 1980, Nature.

[57]  W. Levy,et al.  Temporal contiguity requirements for long-term associative potentiation/depression in the hippocampus , 1983, Neuroscience.

[58]  A. Parent,et al.  The subcortical afferents to caudate nucleus and putamen in primate: A fluorescence retrograde double labeling study , 1983, Neuroscience.

[59]  Paul Greengard,et al.  A dopamine- and cyclic AMP-regulated phosphoprotein enriched in dopamine-innervated brain regions , 1983, Nature.

[60]  O. Steward,et al.  Immunocytochemical localization of actin and microtubule-associated protein MAP2 in dendritic spines. , 1983, Proceedings of the National Academy of Sciences of the United States of America.

[61]  O. Steward,et al.  Distribution and subcellular localization of calmodulin in adult and developing brain tissue , 1983, Neuroscience.

[62]  J. Lehmann,et al.  The striatal cholinergic interneuron: Synaptic target of dopaminergic terminals? , 1983, Neuroscience.

[63]  Richard S. Sutton,et al.  Neuronlike adaptive elements that can solve difficult learning control problems , 1983, IEEE Transactions on Systems, Man, and Cybernetics.

[64]  W. Theurkauf,et al.  Extensive cAMP-dependent and cAMP-independent phosphorylation of microtubule-associated protein 2. , 1983, The Journal of biological chemistry.

[65]  P. Cohen,et al.  The protein phosphatases involved in cellular regulation. 6. Measurement of type-1 and type-2 protein phosphatases in extracts of mammalian tissues; an assessment of their physiological roles. , 1983, European journal of biochemistry.

[66]  T D Pollard,et al.  Phosphorylation of microtubule-associated proteins regulates their interaction with actin filaments. , 1983, The Journal of biological chemistry.

[67]  P. Groves,et al.  Three-dimensional structure of dendritic spines in the rat neostriatum , 1983, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[68]  P. Cohen,et al.  The protein phosphatases involved in cellular regulation. 1. Classification and substrate specificities. , 1983, European journal of biochemistry.

[69]  P. Cohen,et al.  The protein phosphatases involved in cellular regulation , 1984 .

[70]  P. Greengard,et al.  DARPP-32, a dopamine- and adenosine 3':5'-monophosphate-regulated neuronal phosphoprotein. II. Comparison of the kinetics of phosphorylation of DARPP-32 and phosphatase inhibitor 1. , 1984, The Journal of biological chemistry.

[71]  C. Y. Yim,et al.  Excitatory input from sensory motor cortex to neostriatum and its modification by conditioning stimulation of the substantia nigra , 1984, Brain Research.

[72]  P. Greengard,et al.  DARPP-32, a dopamine-regulated neuronal phosphoprotein, is a potent inhibitor of protein phosphatase-1 , 1984, Nature.

[73]  P. Greengard,et al.  DARPP-32, a dopamine- and adenosine 3':5'-monophosphate-regulated phosphoprotein enriched in dopamine-innervated brain regions. III. Immunocytochemical localization , 1984, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[74]  P. Greengard,et al.  Immunocytochemical localization of calcium/calmodulin-dependent protein kinase II in rat brain. , 1984, Proceedings of the National Academy of Sciences of the United States of America.

[75]  Activation of brain calcineurin phosphatase towards nonprotein phosphoesters by Ca2+, calmodulin, and Mg2+. , 1984, The Journal of biological chemistry.

[76]  P. Greengard,et al.  Protein phosphorylation in the nervous system , 1984 .

[77]  P. Greengard,et al.  Mammalian brain phosphoproteins as substrates for calcineurin. , 1984, The Journal of biological chemistry.

[78]  P. Greengard,et al.  Neuronal phosphoproteins: physiological and clinical implications. , 1984, Science.

[79]  P. Greengard,et al.  DARPP-32, a dopamine- and adenosine 3':5'-monophosphate-regulated phosphoprotein enriched in dopamine-innervated brain regions. I. Regional and cellular distribution in the rat brain , 1984, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[80]  J. Bouyer,et al.  Chemical and structural analysis of the relation between cortical inputs and tyrosine hydroxylase-containing terminals in rat neostriatum , 1984, Brain Research.

[81]  A. Matus,et al.  Light and electron microscopic studies of the distribution of microtubule‐associated protein 2 in rat brain: A difference between dendritic and axonal cytoskeletons , 1984, The Journal of comparative neurology.

[82]  J. Thibault,et al.  Ultrastructural morphology of dopaminergic nerve terminals and synapses in the striatum of the rat using tyrosine hydroxylase immunocytochemistry: A topographical study , 1984, Brain Research Bulletin.

[83]  H. Schulman Phosphorylation of microtubule-associated proteins by a Ca2+/calmodulin- dependent protein kinase , 1984, The Journal of cell biology.

[84]  P. Camilli,et al.  Distribution of microtubule-associated protein 2 in the nervous system of the rat studied by immunofluorescence , 1984, Neuroscience.

[85]  T. F. Freund,et al.  Tyrosine hydroxylase-immunoreactive boutons in synaptic contact with identified striatonigral neurons, with particular reference to dendritic spines , 1984, Neuroscience.

[86]  P. Kelly,et al.  Identification of protein phosphatase 1 in synaptic junctions: dephosphorylation of endogenous calmodulin-dependent kinase II and synapse-enriched phosphoproteins , 1985, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[87]  C. Cotman,et al.  Distribution of N-methyl-D-aspartate-sensitive L-[3H]glutamate-binding sites in rat brain , 1985, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[88]  M. Olianas,et al.  Characterization of dopamine receptors mediating inhibition of adenylate cyclase activity in rat striatum. , 1985, Molecular pharmacology.

[89]  A. Luini,et al.  Hormone secretagogues increase cytosolic calcium by increasing cAMP in corticotropin-secreting cells. , 1985, Proceedings of the National Academy of Sciences of the United States of America.

[90]  G. Levi,et al.  Dopamine decreases cell excitability in rat striatal neurons by pre- and postsynaptic mechanisms , 1985, Brain Research.

[91]  P. Greengard,et al.  Protein Phosphorylation and Neuronal Function , 1985, Journal of neurochemistry.

[92]  P. Herrling Pharmacology of the corticocaudate excitatory postsynaptic potential in the cat: Evidence for its mediation by quisqualateor kainate-receptors , 1985, Neuroscience.

[93]  D. Storm,et al.  P-57 is a neural specific calmodulin-binding protein. , 1985, The Journal of biological chemistry.

[94]  Larry Stein,et al.  Reinforcement delay of one second severely impairs acquisition of brain self-stimulation , 1985, Brain Research.

[95]  J. Goldenring,et al.  Phosphorylation of Microtubule‐Associated Protein 2 at Distinct Sites by Calmodulin‐Dependent and Cyclic‐AMP‐Dependent Kinases , 1985, Journal of neurochemistry.

[96]  J. Bockaert,et al.  D2-dopamine receptor-mediated inhibition of cyclic AMP formation in striatal neurons in primary culture. , 1985, Molecular pharmacology.

[97]  J. S. Schneider,et al.  A consideration of sensory factors involved in motor functions of the basal ganglia , 1985, Brain Research Reviews.

[98]  K. Fukunaga,et al.  Dephosphorylation of Microtubule‐Associated Protein 2, τ Factor, and Tubulin by Calcineurin , 1985, Journal of neurochemistry.

[99]  Y. Miyata,et al.  Purified protein kinase C phosphorylates microtubule-associated protein 2. , 1986, The Journal of biological chemistry.

[100]  I. Ho,et al.  Regional and Subcellular Calmodulin Content of Rat Brain , 1986, Journal of neurochemistry.

[101]  J. Girault,et al.  In Vivo Release of Endogenous Amino Acids from the Rat Striatum: Further Evidence for a Role of Glutamate and Aspartate in Corticostriatal Neurotransmission , 1986, Journal of neurochemistry.

[102]  M. Lazdunski,et al.  Phosphorylation and dephosphorylation of dihydropyridine-sensitive voltage-dependent Ca2+ channel in skeletal muscle membranes by cAMP- and Ca2+-dependent processes. , 1986, Proceedings of the National Academy of Sciences of the United States of America.

[103]  E. Ross,et al.  Catecholamine-stimulated GTPase cycle. Multiple sites of regulation by beta-adrenergic receptor and Mg2+ studied in reconstituted receptor-Gs vesicles. , 1986, The Journal of biological chemistry.

[104]  Theodore W. Berger,et al.  Interactions between dopamine and amino acid-induced excitation and inhibition in the striatum , 1986, Brain Research.

[105]  P. Greengard,et al.  Chapter 13 DARPP-32, a dopamine-regulated phosphoprotein , 1986 .

[106]  Philip M. Groves,et al.  Frontal cortex stimulation evoked neostriatal potentials in rats: Intracellular and extracellular analysis , 1986, Brain Research Bulletin.

[107]  L. Descarries,et al.  Quantification of the dopamine innervation in adult rat neostriatum , 1986, Neuroscience.

[108]  M. Memo,et al.  D2 dopamine receptors associated with inhibition of dopamine release from rat neostriatum are independent of cyclic AMP , 1986, Neuroscience Letters.

[109]  A. Matus,et al.  Microtubule-associated protein 2 and tubulin are differently distributed in the dendrites of developing neurons , 1986, Neuroscience.

[110]  P. Voorn,et al.  The dopaminergic innervation of the ventral striatum in the rat: A light‐ and electron‐microscopical study with antibodies against dopamine , 1986, The Journal of comparative neurology.

[111]  E. Miyamoto,et al.  The distribution of calcineurin in rat brain by light and electron microscopic immunohistochemistry and enzyme-immunoassay , 1986, Brain Research.

[112]  D. Cooper,et al.  Dopamine, acting through D-2 receptors, inhibits rat striatal adenylate cyclase by a GTP-dependent process. , 1986, Molecular pharmacology.

[113]  J. Saint-Cyr,et al.  Frontal lobe dysfunction in Parkinson's disease. The cortical focus of neostriatal outflow. , 1986, Brain : a journal of neurology.

[114]  Y. Nishizuka Studies and perspectives of protein kinase C. , 1986, Science.

[115]  Daly Jw,et al.  Forskolin: its biological and chemical properties. , 1986, Advances in cyclic nucleotide and protein phosphorylation research.

[116]  A. Gilman,et al.  The influence of bound GDP on the kinetics of guanine nucleotide binding to G proteins. , 1986, The Journal of biological chemistry.

[117]  P. Greengard,et al.  DARPP-32, a dopamine- and adenosine 3':5'-monophosphate-regulated phosphoprotein: regional, tissue, and phylogenetic distribution , 1986, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[118]  J. Kornhuber,et al.  Presynaptic dopaminergic modulation of cortical input to the striatum. , 1986, Life sciences.

[119]  I. Hanbauer,et al.  Evidence for a Selective Localization of Voltage‐Sensitive Ca2+ Channels in Nerve Cell Bodies of Corpus Striatum , 1986, Journal of neurochemistry.

[120]  J. Donoghue,et al.  Neostriatal projections from individual cortical fields conform to histochemically distinct striatal compartments in the rat , 1986, Brain Research.

[121]  P. Cohen,et al.  Phosphorylation of the glycogen-binding subunit of protein phosphatase-1G by cyclic-AMP-dependent protein kinase promotes translocation of the phosphatase from glycogen to cytosol in rabbit skeletal muscle. , 1986, European journal of biochemistry.

[122]  R. Sharma,et al.  Calmodulin and Ca2+-dependent phosphorylation and dephosphorylation of 63-kDa subunit-containing bovine brain calmodulin-stimulated cyclic nucleotide phosphodiesterase isozyme. , 1986, The Journal of biological chemistry.

[123]  T. Dawson,et al.  Dopamine D-2 auto- and postsynaptic receptors in the nigrostriatal system of the rat brain: localization by quantitative autoradiography with [3H]sulpiride. , 1987, European journal of pharmacology.

[124]  M. Mayer,et al.  Permeation and block of N‐methyl‐D‐aspartic acid receptor channels by divalent cations in mouse cultured central neurones. , 1987, The Journal of physiology.

[125]  P. Greengard,et al.  Dopaminergic regulation of protein phosphorylation in the striatum: DARPP-32 , 1987, Trends in Neurosciences.

[126]  D. Storm,et al.  Regulation of calmodulin binding to P-57. A neurospecific calmodulin binding protein. , 1987, The Journal of biological chemistry.

[127]  Y. Kubota,et al.  Dopaminergic axons directly make synapses with GABAergic neurons in the rat neostriatum , 1987, Brain Research.

[128]  M. Mayer,et al.  The physiology of excitatory amino acids in the vertebrate central nervous system , 1987, Progress in Neurobiology.

[129]  Takashi Sakamoto,et al.  Long-lasting potentiation of synaptic potentials in the motor cortex produced by stimulation of the sensory cortex in the cat: a basis of motor learning , 1987, Brain Research.

[130]  D. Storm,et al.  Immunological distinction between calmodulin-sensitive and calmodulin-insensitive adenylate cyclases. , 1987, The Journal of biological chemistry.

[131]  Samuel Thayer,et al.  The effects of excitatory amino acids on intracellular calcium in single mouse striatal neurons in vitro , 1987, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[132]  J. Joyce,et al.  Quantitative autoradiography of dopamine D2 sites in rat caudate-putamen: Localization to intrinsic neurons and not to neocortical afferents , 1987, Neuroscience.

[133]  R. Oades,et al.  Ventral tegmental (A10) system: neurobiology. 1. Anatomy and connectivity , 1987, Brain Research Reviews.

[134]  C. Balaban,et al.  Differential localization of calmodulin-dependent enzymes in rat brain: evidence for selective expression of cyclic nucleotide phosphodiesterase in specific neurons. , 1987, Proceedings of the National Academy of Sciences of the United States of America.

[135]  P. Seeman,et al.  Dopamine receptors in brain and periphery , 1987, Neurochemistry International.

[136]  L. Kaczmarek The role of protein kinase C in the regulation of ion channels and neurotransmitter release , 1987, Trends in Neurosciences.

[137]  C. Koch,et al.  The dynamics of free calcium in dendritic spines in response to repetitive synaptic input. , 1987, Science.

[138]  E. Miyamoto,et al.  Morphological characterization of the rat striatal neurons expressing calcineurin immunoreactivity , 1987, Neuroscience.

[139]  C. Stevens,et al.  Glutamate activates multiple single channel conductances in hippocampal neurons , 1987, Nature.

[140]  K. Fukunaga,et al.  Dephosphorylation of Microtubule Proteins by Brain Protein Phosphatases 1 and 2A, and Its Effect on Microtubule Assembly , 1988, Journal of neurochemistry.

[141]  C. Giambalvo Protein kinase C and dopamine release--II. Effect of dopamine acting drugs in vivo. , 1988, Biochemical pharmacology.

[142]  P. Greengard,et al.  DARPP‐32 and Phosphatase Inhibitor‐1, Two Structurally Related Inhibitors of Protein Phosphatase‐1, Are Both Present in Striatonigral Neurons , 1988, Journal of neurochemistry.

[143]  [5] cAMP turnover in intact cells , 1988 .

[144]  I. Levitan,et al.  Modulation of ion channels in neurons and other cells. , 1988, Annual review of neuroscience.

[145]  D. O. Hebb,et al.  The organization of behavior , 1988 .

[146]  J. Wickens Electrically coupled but chemically isolated synapses: Dendritic spines and calcium in a rule for synaptic modification , 1988, Progress in Neurobiology.

[147]  H. Edwards,et al.  Quantitative subcellular localization of calmodulin-dependent phosphatase in chick forebrain , 1988, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[148]  Beavo Ja Multiple isozymes of cyclic nucleotide phosphodiesterase. , 1988 .

[149]  C. Hsu,et al.  Selective cortical infarction reduces [3H]sulpiride binding in rat caudate‐putamen: Autoradiographic evidence for presynaptic D2 receptors on corticostriate terminals , 1988, Synapse.

[150]  P. Cohen Review Lecture: Protein phosphorylation and hormone action , 1988, Proceedings of the Royal Society of London. Series B. Biological Sciences.

[151]  M. Gnegy,et al.  Differential Regulation by Calmodulin of Basal, GTP‐, and Dopamine‐Stimulated Adenylate Cyclase Activities in Bovine Striatum , 1988, Journal of neurochemistry.

[152]  P. Greengard,et al.  Protein phosphorylation in nerve terminals: comparison of calcium/calmodulin-dependent and calcium/diacylglycerol-dependent systems , 1988, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[153]  G. Lynch,et al.  Contributions of quisqualate and NMDA receptors to the induction and expression of LTP. , 1988, Science.

[154]  Thomas H. McNeill,et al.  Atrophy of medium spiny I striatal dendrites in advanced Parkinson's disease , 1988, Brain Research.

[155]  R. Nicoll,et al.  A persistent postsynaptic modification mediates long-term potentiation in the hippocampus , 1988, Neuron.

[156]  M. Vallano Identification and regional distribution of a type II calcium/calmodulin-dependent kinase in mouse brain. , 1988, Biochemical pharmacology.

[157]  J. Lehmann,et al.  Presynaptic Receptors on Catecholamine Neurones , 1988 .

[158]  G. Collingridge,et al.  Excitatory amino acid receptors in the vertebrate central nervous system. , 1989, Pharmacological reviews.

[159]  Berenbaum Mc What is synergy? , 1989, Pharmacological reviews.

[160]  L. Stein,et al.  Cellular investigations of behavioral reinforcement , 1989, Neuroscience & Biobehavioral Reviews.

[161]  T. Sejnowski,et al.  Associative long-term depression in the hippocampus induced by hebbian covariance , 1989, Nature.

[162]  Michael J. Berridge,et al.  Inositol phosphates and cell signalling , 1989, Nature.

[163]  W. Catterall,et al.  Phosphorylation of the alpha subunit of rat brain sodium channels by cAMP-dependent protein kinase at a new site containing Ser686 and Ser687. , 1989, The Journal of biological chemistry.

[164]  E. Fifková,et al.  Distribution of MAP2 in dendritic spines and its colocalization with actin. An immunogold electron-microscope study. , 1989, Cell and tissue research.

[165]  C. Cotman,et al.  The excitatory amino acid receptors: their classes, pharmacology, and distinct properties in the function of the central nervous system. , 1989, Annual review of pharmacology and toxicology.

[166]  M. Wolf,et al.  Stimulation of d2 dopamine receptors decreases intracellular calcium levels in rat anterior pituitary cells but not striatal synaptosomes: A flow cytometric study using indo‐1 , 1989, Synapse.

[167]  P. Greengard,et al.  Calcium/Diacylglycerol‐Dependent Protein Kinase and Its Major 87‐Kilodalton Protein Substrate Are Differentially Distributed in Rat Basal Ganglia , 1989, Journal of neurochemistry.

[168]  C. Wilson,et al.  Intracellular recording of identified neostriatal patch and matrix spiny cells in a slice preparation preserving cortical inputs. , 1989, Journal of neurophysiology.

[169]  S. Christakos,et al.  Ultrastructural localization of immunoreactive calbindin‐D28k in the rat and monkey basal ganglia, including subcellular distribution with colloidal gold labeling , 1989, The Journal of comparative neurology.

[170]  J. Skene Axonal growth-associated proteins. , 1989, Annual review of neuroscience.

[171]  C. Stevens,et al.  NMDA and non-NMDA receptors are co-localized at individual excitatory synapses in cultured rat hippocampus , 1989, Nature.

[172]  P. Greengard,et al.  Dopamine-regulated phosphorylation of synaptic vesicle-associated proteins in rat neostriatum and substantia nigra , 1989, Neuroscience.

[173]  P. Greengard,et al.  Phosphorylation of DARPP-32, a dopamine- and cAMP-regulated phosphoprotein, by casein kinase II. , 1989, The Journal of biological chemistry.

[174]  Kuo-ping Huang,et al.  The mechanism of protein kinase C activation , 1989, Trends in Neurosciences.

[175]  R. Miller,et al.  Regulation of Ca++ influx into striatal neurons by kainic acid. , 1989, The Journal of pharmacology and experimental therapeutics.

[176]  J. Lisman,et al.  A mechanism for the Hebb and the anti-Hebb processes underlying learning and memory. , 1989, Proceedings of the National Academy of Sciences of the United States of America.

[177]  D. Armstrong Calcium channel regulation by calcineurin, a Ca2+-activated phosphatase in mammalian brain , 1989, Trends in Neurosciences.

[178]  F. Bloom,et al.  Catecholamines and Behavior , 1989 .

[179]  A. Mcgeorge,et al.  The organization of the projection from the cerebral cortex to the striatum in the rat , 1989, Neuroscience.

[180]  P. Cohen,et al.  Identification of protein phosphatase 2A as the major tyrosine hydroxylase phosphatase in adrenal medulla and corpus striatum: evidence from the effects of okadaic acid , 1989, FEBS letters.

[181]  M. Celio,et al.  Calbindin D-28k and parvalbumin in the rat nervous system , 1990, Neuroscience.

[182]  Modulation of a single ion channel by several different protein kinases. , 1990, Advances in second messenger and phosphoprotein research.

[183]  P. Greengard,et al.  Distribution of DARPP-32 in the basal ganglia: an electron microscopic study , 1990, Journal of neurocytology.

[184]  D. Storm,et al.  Regulation of free calmodulin levels in neurons by neuromodulin: relationship to neuronal growth and regeneration. , 1990, Current topics in cellular regulation.

[185]  E. W. Kairiss,et al.  Hebbian synapses: biophysical mechanisms and algorithms. , 1990, Annual review of neuroscience.

[186]  P. Greengard,et al.  Synthetic peptide analogs of DARPP-32 (Mr 32,000 dopamine- and cAMP-regulated phosphoprotein), an inhibitor of protein phosphatase-1. Phosphorylation, dephosphorylation, and inhibitory activity. , 1990, The Journal of biological chemistry.

[187]  A. Gilman Regulation of adenylyl cyclase by G proteins. , 1990, Advances in second messenger and phosphoprotein research.

[188]  W. Levy,et al.  Insights into associative long-term potentiation from computational models of NMDA receptor-mediated calcium influx and intracellular calcium concentration changes. , 1990, Journal of neurophysiology.

[189]  William R. Holmes,et al.  Is the function of dendritic spines to concentrate calcium? , 1990, Brain Research.

[190]  M. DiFiglia,et al.  Immunoreactive GAP‐43 in the neuropil of adult rat neostriatum: Localization in unmyelinated fibers, axon terminals, and dendritic spines , 1990, The Journal of comparative neurology.

[191]  O. Manzoni,et al.  The glutamate receptor of the Qp-type activates protein kinase C and is regulated by protein kinase C , 1990, Neuroscience Letters.

[192]  J. Bockaert,et al.  Pharmacological and functional characteristics of metabotropic excitatory amino acid receptors. , 1990, Trends in pharmacological sciences.

[193]  A. D. Smith,et al.  The neural network of the basal ganglia as revealed by the study of synaptic connections of identified neurones , 1990, Trends in Neurosciences.

[194]  C. Gerfen,et al.  D1 and D2 dopamine receptor-regulated gene expression of striatonigral and striatopallidal neurons. , 1990, Science.

[195]  T. H. Brown,et al.  Biophysical model of a Hebbian synapse. , 1990, Proceedings of the National Academy of Sciences of the United States of America.

[196]  G Bernardi,et al.  Synaptic and intrinsic control of membrane excitability of neostriatal neurons. I. An in vivo analysis. , 1990, Journal of neurophysiology.

[197]  M. A. Ariano,et al.  Activation of facilitation calcium channels in chromaffin cells by D1 dopamine receptors through a cAMP/protein kinase A-dependent mechanism , 1990, Nature.

[198]  P. Greengard,et al.  Localization of the MARCKS (87 kDa) protein, a major specific substrate for protein kinase C, in rat brain , 1990, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[199]  P. Greengard,et al.  Inhibition by dopamine of (Na+ + K+)ATPase activity in neostriatal neurons through D1 and D2 dopamine receptor synergism , 1990, Nature.

[200]  H. Hanai,et al.  Synergistic activation of brain adenylate cyclase by calmodulin, and either GTP or catecholamines including dopamine , 1990, Brain Research.

[201]  D. Tank,et al.  Postsynaptic NMDA receptor-mediated calcium accumulation in hippocampal CAl pyramidal cell dendrites , 1990, Nature.

[202]  P. Greengard,et al.  Activation of NMDA receptors induces dephosphorylation of DARPP-32 in rat striatal slices , 1990, Nature.

[203]  Synthetic Peptide Analogs of DARPP-32 (M, 32,000 Dopamine- and CAMP-regulated Phosphoprotein), an Inhibitor of Protein Phosphatase- 1 , 1990 .

[204]  M. Zigmond,et al.  In Vivo Stimulation of D1 Receptors Increases the Phosphorylation of Proteins in the Striatum , 1990, Journal of Neurochemistry.

[205]  M. Chesselet Presynaptic Regulation of Dopamine Release Implications for the Functional Organization of the Basal Ganglia , 1990, Annals of the New York Academy of Sciences.

[206]  J. Wickens,et al.  Dopamine D-1 and D-2 receptors in relation to reward and performance: A case for the D-1 receptor as a primary site of therapeutic action of neuroleptic drugs , 1990, Progress in Neurobiology.

[207]  Paul Greengard,et al.  Activation of NMDA receptors induces rapid dephosphorylation of the cytoskeletal protein MAP2 , 1990, Neuron.

[208]  C. Tanaka,et al.  Differential localization of four subspecies of protein kinase C in the rat striatum and substantia nigra , 1991, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[209]  R. Kincaid,et al.  Electron microscopic immunocytochemical evidence that the calmodulin-dependent cyclic nucleotide phosphodiesterase is localized predominantly at postsynaptic sites in the rat brain , 1991, Neuroscience.

[210]  H. Schulman,et al.  Activation of multifunctional Ca2+/calmodulin-dependent kinase in intact hippocampal slices , 1991, Neuron.

[211]  J. Zalewska-kaszubska,et al.  Cooperation between D1 and D2-dopamine receptors in the nucleus accumbens , 1991, Neuropharmacology.

[212]  J. Connor,et al.  Dendritic spines as individual neuronal compartments for synaptic Ca2+ responses , 1991, Nature.

[213]  A. Grace Phasic versus tonic dopamine release and the modulation of dopamine system responsivity: A hypothesis for the etiology of schizophrenia , 1991, Neuroscience.

[214]  夏苅 直己 Synergistic activation of brain adenylate cyclase by calmodulin, and either GTP or catecholamines including dopamine , 1991 .

[215]  J. Glowinski,et al.  Cyclic AMP Accumulation Induces a Rapid Desensitization of the Cyclic AMP‐Dependent Protein Kinase in Mouse Striatal Neurons , 1991, Journal of neurochemistry.

[216]  J. Wickens,et al.  Two dynamic modes of striatal function under dopaminergic‐cholinergic control: Simulation and analysis of a model , 1991, Synapse.

[217]  William B Levy,et al.  Refining the temporal definition of an association at the neuronal level using long-term potentiation and long-term depression in the dentate gyrus , 1991, Neuroscience Letters.

[218]  A. Nairn,et al.  Protein phosphatases: recent progress. , 1991, Advances in second messenger and phosphoprotein research.

[219]  P. Greengard,et al.  Enhancement of the glutamate response by cAMP-dependent protein kinase in hippocampal neurons , 1991, Science.

[220]  R. North,et al.  Membrane properties and synaptic responses of rat striatal neurones in vitro. , 1991, The Journal of physiology.

[221]  J J Jack,et al.  Electrophysiology of dopaminergic and non‐dopaminergic neurones of the guinea‐pig substantia nigra pars compacta in vitro. , 1991, The Journal of physiology.

[222]  Masao Ito The cellular basis of cerebellar plasticity , 1991, Current Opinion in Neurobiology.

[223]  Possible role for calmodulin and the Ca2+/calmodulin-dependent protein kinase II in postsynaptic neurotransmission. , 1991, Proceedings of the National Academy of Sciences of the United States of America.

[224]  F. Vaccarino,et al.  Modulation of Protein Kinase C Translocation by Excitatory and Inhibitory Amino Acids in Primary Cultures of Neurons , 1991, Journal of neurochemistry.

[225]  M. Salter,et al.  Regulation of kainate receptors by cAMP-dependent protein kinase and phosphatases , 1991, Science.

[226]  A. Reiner,et al.  Immunohistochemical localization of DARPP-32 in striatal projection neurons and striatal interneurons: implications for the localization of D1-like dopamine receptors on different types of striatal neurons , 1991, Brain Research.

[227]  J. Sutcliffe,et al.  Localization of the protein kinase C phosphorylation/calmodulin-binding substrate RC3 in dendritic spines of neostriatal neurons. , 1992, Proceedings of the National Academy of Sciences of the United States of America.

[228]  P. Calabresi,et al.  Long‐term Potentiation in the Striatum is Unmasked by Removing the Voltage‐dependent Magnesium Block of NMDA Receptor Channels , 1992, The European journal of neuroscience.

[229]  M E Wastney,et al.  Compartmental analysis of enzyme-catalyzed reactions. , 1992, Methods in enzymology.

[230]  D. Surmeier,et al.  Dopamine receptor subtypes colocalize in rat striatonigral neurons. , 1992, Proceedings of the National Academy of Sciences of the United States of America.

[231]  T. Lamb,et al.  G-protein cascades: gain and kinetics , 1992, Trends in Neurosciences.

[232]  C. Taylor Kinetics of inositol 1,4,5-trisphosphate-stimulated Ca2+ mobilization. , 1992, Advances in second messenger and phosphoprotein research.

[233]  A. Nairn,et al.  The role of protein phosphatases in synaptic transmission, plasticity and neuronal development , 1992, Current Opinion in Neurobiology.

[234]  R. Huganir,et al.  Phosphorylation of ligand‐gated ion channels: a possible mode of synaptic plasticity , 1992, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.

[235]  J. Morrison,et al.  Localization of multiple dopamine receptor subtype mRNAs in human and monkey motor cortex and striatum. , 1992, Brain research. Molecular brain research.

[236]  P. Greengard,et al.  Immunocytochemical localization of DARPP‐32, a dopamine and cyclic‐ AMP‐regulated phosphoprotein, in the primate brain , 1992, The Journal of comparative neurology.

[237]  Bertil Hille,et al.  G protein-coupled mechanisms and nervous signaling , 1992, Neuron.

[238]  C. Jahr,et al.  Synaptic excitation mediated by glutamate-gated ion channels , 1992, Current Opinion in Neurobiology.

[239]  W. Schultz,et al.  Responses of monkey dopamine neurons during learning of behavioral reactions. , 1992, Journal of neurophysiology.

[240]  T. Soderling,et al.  Serine/threonine protein kinases , 1992, Current Opinion in Neurobiology.

[241]  C. Giambalvo Protein kinase C and dopamine transport—2. Effects of amphetamine in vitro , 1992, Neuropharmacology.

[242]  Richard J. Miller Neuronal Ca2+: getting it up and keeping it up , 1992, Trends in Neurosciences.

[243]  J. Corbin,et al.  Partial mapping of cyclic nucleotide sites and studies of regulatory mechanisms of phosphodiesterases using cyclic nucleotide analogues. , 1992, Advances in second messenger and phosphoprotein research.

[244]  P. Calabresi,et al.  Long-term synaptic depression in the striatum: physiological and pharmacological characterization , 1992, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[245]  A. Aderem,et al.  Signal transduction and the actin cytoskeleton: the roles of MARCKS and profilin. , 1992, Trends in biochemical sciences.

[246]  R. Huganir,et al.  Cellular localization of a metabotropic glutamate receptor in rat brain , 1992, Neuron.

[247]  George J. Augustine,et al.  Neuronal Ca2+ signalling takes the local route , 1992, Current Opinion in Neurobiology.

[248]  T. Abrams,et al.  Temporal asymmetry in activation of Aplysia adenylyl cyclase by calcium and transmitter may explain temporal requirements of conditioning. , 1992, Proceedings of the National Academy of Sciences of the United States of America.

[249]  J. Gusella,et al.  Immunohistochemical localization of the D1 dopamine receptor in rat brain reveals its axonal transport, pre- and postsynaptic localization, and prevalence in the basal ganglia, limbic system, and thalamic reticular nucleus. , 1992, Proceedings of the National Academy of Sciences of the United States of America.

[250]  J. Rogers,et al.  Calretinin in rat brain: An immunohistochemical study , 1992, Neuroscience.

[251]  R. Malenka,et al.  Temporal limits on the rise in postsynaptic calcium required for the induction of long-term potentiation , 1992, Neuron.

[252]  P. Garris,et al.  Regulation of transient dopamine concentration gradients in the microenvironment surrounding nerve terminals in the rat striatum , 1992, Neuroscience.

[253]  D. Tank,et al.  Calcium concentration dynamics produced by synaptic activation of CA1 hippocampal pyramidal cells , 1992, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[254]  [17] Practical aspects of kinetic analysis , 1992 .

[255]  R. Wiley,et al.  Changes in D2 but not D1 receptor binding in the striatum following a selective lesion of striatopallidal neurons , 1992, Brain Research.

[256]  Y. Nishizuka Signal transduction: crosstalk. , 1992, Trends in biochemical sciences.

[257]  R. Huganir,et al.  AMPA glutamate receptor subunits are differentially distributed in rat brain , 1993, Neuroscience.

[258]  Bruce R. Conklin,et al.  Structural elements of Gα subunits that interact with Gβγ, receptors, and effectors , 1993, Cell.

[259]  K. Jhamandas,et al.  Excitatory amino acid action on the release of brain neurotransmitters and neuromodulators: Biochemical studies , 1993, Progress in Neurobiology.

[260]  M. Caron,et al.  Recent advances in the molecular biology of dopamine receptors. , 1993, Annual review of neuroscience.

[261]  B. MacVicar,et al.  Multiple types of calcium channels in acutely isolated rat neostriatal neurons , 1993, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[262]  W. Schultz,et al.  Responses of monkey dopamine neurons to reward and conditioned stimuli during successive steps of learning a delayed response task , 1993, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[263]  M. Berridge Inositol trisphosphate and calcium signalling , 1993, Nature.

[264]  E R Kandel,et al.  Spatially resolved dynamics of cAMP and protein kinase A subunits in Aplysia sensory neurons. , 1993, Science.

[265]  R. Malenka,et al.  An essential role for protein phosphatases in hippocampal long-term depression. , 1993, Science.

[266]  P. Goldman-Rakic,et al.  In vivo assessment of basal and drug‐induced dopamine release in cortical and subcortical regions of the anesthetized primate , 1993, Synapse.

[267]  J. López-Barneo,et al.  N-methyl-d-aspartate stimulates the dephosphorylation of the microtubule-associated protein 2 and potentiates excitatory synaptic pathways in the rat hippocampus , 1993, Neuroscience.

[268]  Henry R. Bourne,et al.  Molecular machines integrate coincident synaptic signals , 1993, Cell.

[269]  D. Surmeier,et al.  Are neostriatal dopamine receptors co-localized? , 1993, Trends in Neurosciences.

[270]  J. Wickens,et al.  Cellular models of reinforcement. , 1995 .