The Biochemistry and Pharmacology of Mesoamygdaloid Dopamine Neurons a
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R. Mailman | C. Kilts | T. Ely | C. Anderson
[1] CM Anderson,et al. Absence of synthesis-modulating nerve terminal autoreceptors on mesoamygdaloid and other mesolimbic dopamine neuronal populations , 1987, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[2] C. Kilts,et al. The simultaneous quantification of dopamine, norepinephrine and epinephrine in micropunched rat brain nuclei by on-line trace enrichment HPLC with electrochemical detection: Distribution of catecholamines in the limbic system , 1986, Neurochemistry International.
[3] P. Molinoff,et al. Quantitative autoradiographic localization of the D1 and D2 subtypes of dopamine receptors in rat brain , 1986, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[4] M. Savasta,et al. Autoradiographic distribution of the D1 agonist [3H]SKF 38393, in the rat brain and spinal cord. Comparison with the distribution of D2 dopamine receptors , 1986, Neuroscience.
[5] T. Dawson,et al. D-1 dopamine receptors in the rat brain: a quantitative autoradiographic analysis , 1986, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[6] M Linnoila,et al. Longitudinal measurement of plasma homovanillic acid levels in schizophrenic patients. Correlation with psychosis and response to neuroleptic treatment. , 1986, Archives of general psychiatry.
[7] R. Roth,et al. Regulation of dopamine synthesis in the medial prefrontal cortex is mediated by release modulating autoreceptors: studies in vivo. , 1986, The Journal of pharmacology and experimental therapeutics.
[8] J. Glowinski,et al. Presynaptic Dopamine Autoreceptors Control Tyrosine Hydroxylase Activation in Depolarized Striatal Dopaminergic Terminals , 1986, Journal of neurochemistry.
[9] S. Snyder,et al. Differential visualization of dopamine and norepinephrine uptake sites in rat brain using [3H]mazindol autoradiography , 1985, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[10] H. Sarau,et al. Binding of a novel dopaminergic agonist radioligand [3H]-fenoldopam (SKF 82526) to D-1 receptors in rat striatum. , 1985, Life sciences.
[11] M. Dubocovich,et al. Quantitative autoradiography of 3H-nomifensine binding sites in rat brain. , 1985, Life sciences.
[12] R. Mailman,et al. An Improved, Automated Adenylate Cyclase Assay Utilizing Preparative HPLC: Effects of Phosphodiesterase Inhibitors , 1984, Journal of neurochemistry.
[13] 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.
[14] 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.
[15] F. J. White,et al. Differential effects of classical and atypical antipsychotic drugs on A9 and A10 dopamine neurons. , 1983, Science.
[16] R. Roth,et al. Pharmacology of dopamine neurons innervating the prefrontal, cingulate and piriform cortices. , 1983, European journal of pharmacology.
[17] B. Bunney,et al. Typical and atypical neuroleptics: differential effects of chronic administration on the activity of A9 and A10 midbrain dopaminergic neurons , 1983, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[18] B. Guibert,et al. ‘In situ’ release of dopamine in the nucleus amygdaloideus centralis , 1983, Brain Research.
[19] H. Yokoo,et al. Differential effects of acute and chronic administration of haloperidol on homovanillic acid levels in discrete dopaminergic areas of rat brain. , 1983, European journal of pharmacology.
[20] K. E. Moore,et al. d-amphetamine and γ-butyrolactone alteration of dopamine synthesis in the terminals of nigrostriatal and mesolimbic neurons , 1983 .
[21] P. Gloor,et al. The role of the limbic system in experiential phenomena of temporal lobe epilepsy , 1982, Annals of neurology.
[22] R. Roth,et al. Unique response to antipsychotic drugs is due to absence of terminal autoreceptors in mesocortical dopamine neurones , 1982, Nature.
[23] T. Crow,et al. Distribution of neuropeptides in the limbic system of the rat: The amygdaloid complex , 1982, Neuroscience.
[24] 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.
[25] O. Ottersen. Afferent connections to the amygdaloid complex of the rat with some observations in the cat. III. Afferents from the lower brain stem , 1981, The Journal of comparative neurology.
[26] B. Scatton. Differential changes in DOPAC levels in the hippocampal formation, septum and striatum of the rat induced by acute and repeated neuroleptic treatment. , 1981, European journal of pharmacology.
[27] M. Gnegy,et al. Effect of calmodulin on dopamine-sensitive adenylate cyclase activity in rat striatal membranes. , 1981, Molecular pharmacology.
[28] R. Roth,et al. Mesocortical dopamine neurons. Lack of autoreceptors modulating dopamine synthesis. , 1981, Molecular pharmacology.
[29] O. Ottersen. Afferent connections to the amygdaloid complex of the rat and cat: II. Afferents from the hypothalamus and the basal telencephalon , 1980, The Journal of comparative neurology.
[30] J. Kebabian,et al. Multiple receptors for dopamine , 1979, Nature.
[31] J. Fallon,et al. Catecholamine innervation of the basal forebrain II. Amygdala, suprarhinal cortex and entorhinal cortex , 1978, The Journal of comparative neurology.
[32] H. Uchimura,et al. Monoamine oxidase activities for serotonin and tyramine in individual limbic and lower brain stem nuclei of the rat , 1978, Journal of neurochemistry.
[33] B. Scatton. Differential regional development of tolerance to increase in dopamine turnover upon repeated neuroleptic administration. , 1977, European journal of pharmacology.
[34] G. Robison,et al. Adenylate cyclase from various dopaminergic areas of the brain and the action of antipsychotic drugs. , 1977, Biochemical pharmacology.
[35] J. Saavedra,et al. Tyrosine hydroxylase and dopamine-β-hydroxylase: distribution in discrete areas of the rat limbic system , 1976, Brain Research.
[36] G. Racagni,et al. The anterior amygdala dopamine sensitive adenylate cyclase: point of action of antipsychotic drugs. , 1976, Pharmacological research communications.
[37] Y. Ben-Ari,et al. Dopamine evoked inhibition of single cells of the feline putamen and basolateral amygdala. , 1976, The Journal of physiology.
[38] K. E. Moore,et al. Regional distribution of tyrosine hydroxylase, norepinephrine and dopamine within the amygdaloid complex of the rat , 1975, Brain Research.
[39] M. Palkovits,et al. Norepinephrine and dopamine in the limbic system of the rat. , 1974, Brain research.
[40] G. Mogenson,et al. Cardiovascular responses to electrical stimulation of the amygdala in the rat. , 1973, Experimental neurology.
[41] U. Ungerstedt. Stereotaxic mapping of the monoamine pathways in the rat brain. , 1971, Acta physiologica Scandinavica. Supplementum.
[42] B. Brodie,et al. Application of steady state kinetics to the estimation of synthesis rate and turnover time of tissue catecholamines. , 1966, The Journal of pharmacology and experimental therapeutics.
[43] T. Di Paolo,et al. Participation of the central amygdaloid nucleus in the response of adrenocorticotropin secretion to immobilization stress: opposing roles of the noradrenergic and dopaminergic systems. , 1987, Neuroendocrinology.
[44] R. Mailman,et al. Multiple forms of the D1 dopamine receptor: its linkage to adenylate cyclase and psychopharmacological effects. , 1986, Psychopharmacology bulletin.
[45] Mortimer Mishkin,et al. Chapter 12 – THE AMYGDALA: SENSORY GATEWAY TO THE EMOTIONS , 1986 .
[46] K. E. Moore,et al. d-Amphetamine and gamma-butyrolactone alteration of dopamine synthesis in the terminals of nigrostriatal and mesolimbic neurons. Possible role of various autoreceptor sensitivities. , 1983, Biochemical pharmacology.
[47] J. Kebabian,et al. Endogenous guanyl nucleotides: components of the striatum which confer dopamine-sensitivity to adenylate cyclase. , 1979, Communications in psychopharmacology.
[48] R. Roth,et al. Dopaminergic neurons: Role of presynaptic receptors in the regulation of transmitter biosynthesis , 1978 .