The synaptic pharmacology underlying sensory processing in the superior colliculus
暂无分享,去创建一个
[1] J. Neale,et al. Interactions Between N‐Acetylaspartylglutamate and AMPA, Kainate, and NMDA Binding Sites , 1994, Journal of neurochemistry.
[2] R. Mize,et al. The neurons of the substantia nigra and zona incerta which project to the cat superior colliculus are GABA immunoreactive: A double-label study using GABA immunocytochemistry and lectin retrograde transport , 1989, Neuroscience.
[3] Glutamate-like immunoreactivity in the cat superior colliculus and visual cortex: further evidence that glutamate is the neurotransmitter of the corticocollicular pathway. , 1997, Visual neuroscience.
[4] J. Changeux,et al. Role of Ca2+ Ions in Nicotinic Facilitation of GABA Release in Mouse Thalamus , 1997, The Journal of Neuroscience.
[5] R. Mooney,et al. Synaptic organization of the serotoninergic input to the superficial gray layer of the hamster's superior colliculus , 1992, Synapse.
[6] B E Stein,et al. Two visual corticotectal systems in cat. , 1984, Journal of neurophysiology.
[7] P. Heggelund,et al. Effects of area 17 ablation on neurotransmitter parameters in efferents to area 18, the lateral geniculate body, pulvinar and superior colliculus in the cat , 1984, Neuroscience Letters.
[8] H. Lux,et al. Glutamate-induced ionic currents in cultured neurons from the rat superior colliculus , 1987, Brain Research.
[9] T. Salt,et al. Excitatory Amino Acid Receptors Participate in Synaptic Transmission of Visual Responses in the Superficial Layers of the Cat Superior Colliculus , 1994, The European journal of neuroscience.
[10] G. Krauthamer,et al. Putative cholinergic neurons of the pedunculopontine tegmental nucleus projecting to the superior colliculus consist of sensory responsive and unresponsive populations which are functionally distinct from other mesopontine neurons , 1995, Neuroscience.
[11] H. Wheal,et al. Excitatory amino acids and synaptic transmission , 1995 .
[12] L. Sivilotti,et al. Pharmacology of a novel effect of γ-aminobutyric acid on the frog optic tectum in vitro , 1989 .
[13] J. Coyle,et al. Selective release ofN-acetylaspartylglutamate from rat optic nerve terminals in vivo , 1990, Brain Research.
[14] B. Stein,et al. The Merging of the Senses , 1993 .
[15] T. Isa,et al. The Visuo-Motor Pathway in the Local Circuit of the Rat Superior Colliculus , 1998, The Journal of Neuroscience.
[16] T. Salt,et al. Gamma-aminobutyric acid and afferent inhibition in the cat and rat ventrobasal thalamus , 1989, Neuroscience.
[17] B. Bloch,et al. Expression of GABA Receptor ρ Subunits in Rat Brain , 1998 .
[18] R. Dykes,et al. Receptive field size for certain neurons in primary somatosensory cortex is determined by GABA-mediated intracortical inhibition , 1983, Brain Research.
[19] M. Schmidt. Mediation of visual responses in the nucleus of the optic tract in cats and rats by excitatory amino acid receptors , 1991, Neuroscience Research.
[20] D. Irvine,et al. Auditory response properties of neurons in the anterior ectosylvian sulcus of the cat , 1986, Brain Research.
[21] J. Nakajima,et al. Monoamine oxidase-A-positive retinal ganglion cells projecting to the superior colliculus and dorsolateral geniculate nucleus of the rat brain. , 1998, Experimental eye research.
[22] J. Deniau,et al. Disinhibition as a basic process in the expression of striatal functions. II. The striato-nigral influence on thalamocortical cells of the ventromedial thalamic nucleus , 1985, Brain Research.
[23] A. Sillito. GABA mediated inhibitory processes in the function of the geniculo-striate system. , 1992, Progress in brain research.
[24] C. Cotman,et al. Distribution of [3H]AMPA binding sites in rat brain as determined by quantitative autoradiography , 1984, Brain Research.
[25] Tadaharu Tsumoto,et al. Excitatory amino acid transmitters and their receptors in neural circuits of the cerebral neocortex , 1990, Neuroscience Research.
[26] T. Salt,et al. Excitatory amino acid receptors modulate habituation of the response to visual stimulation in the cat superior colliculus , 1995, Visual Neuroscience.
[27] R. Wenthold,et al. Light and electron microscope distribution of the NMDA receptor subunit NMDAR1 in the rat nervous system using a selective anti-peptide antibody , 1994, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[28] D D O'Leary,et al. Mechanisms and molecules controlling the development of retinal maps. , 1995, Perspectives on developmental neurobiology.
[29] D. Sparks,et al. Sensory and motor maps in the mammalian superior colliculus , 1987, Trends in Neurosciences.
[30] J. Watkins,et al. 2-Amino-5-phosphonovalerate (2APV), a potent and selective antagonist of amino acid-induced and synaptic excitation , 1981, Neuroscience Letters.
[31] A. Sillito,et al. Dependence of retinogeniculate transmission in cat on NMDA receptors. , 1990, Journal of neurophysiology.
[32] J. Saavedra,et al. Selective changes in angiotensin II AT1 and AT2 receptor subtypes in the rat superior colliculus following eye enucleation , 1994, Neuroscience.
[33] W. C. Hall,et al. Role of intrinsic synaptic circuitry in collicular sensorimotor integration. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[34] B. Payne,et al. Direction selectivity and physiological compensation in the superior colliculus following removal of areas 17 and 18 , 1993, Visual Neuroscience.
[35] P. Dean,et al. Organization of the crossed tecto-reticulo-spinal projection in rat—I. Anatomical evidence for separate output channels to the periabducens area and caudal medulla , 1990, Neuroscience.
[36] R. Mooney,et al. The projection from the superficial to the deep layers of the superior colliculus: an intracellular horseradish peroxidase injection study in the hamster , 1988, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[37] A. B. Bonds,et al. GABAB-receptor-mediated inhibition reduces the orientation selectivity of the sustained response of striate cortical neurons in cats , 1996, Visual Neuroscience.
[38] 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.
[39] J. Mcilwain,et al. Retinal Y-cell activation of deep-layer cells in superior colliculus of the cat. , 1982, Journal of neurophysiology.
[40] J. Deniau,et al. Disinhibition as a basic process in the expression of striatal functions. I. The striato-nigral influence on tecto-spinal/tecto-diencephalic neurons , 1985, Brain Research.
[41] M T Wallace,et al. Development of Multisensory Neurons and Multisensory Integration in Cat Superior Colliculus , 1997, The Journal of Neuroscience.
[42] L. Palmer,et al. Visual receptive field properties of cells of the superior colliculus after cortical lesions in the cat. , 1971, Experimental neurology.
[43] S. Nakanishi,et al. Distribution of the messenger RNA for a metabotropic glutamate receptor, mGluR2, in the central nervous system of the rat , 1993, Neuroscience.
[44] M. Santi,et al. N‐acetylaspartylglutamate activates cyclic AMP‐coupled metabotropic glutamate receptors in cerebellar astrocytes , 1998, Glia.
[45] R. Nicoll,et al. Pre- and postsynaptic GABAB receptors in the hippocampus have different pharmacological properties , 1988, Neuron.
[46] P. Redgrave,et al. Chapter 24 Functional anatomy of nociceptive neurones in rat superior colliculus , 1996 .
[47] R. Wurtz,et al. Fixation cells in monkey superior colliculus. II. Reversible activation and deactivation. , 1993, Journal of neurophysiology.
[48] J. A. Dani,et al. Nicotinic Stimulation Produces Multiple Forms of Increased Glutamatergic Synaptic Transmission , 1998, The Journal of Neuroscience.
[49] A. Leventhal,et al. Structural basis of orientation sensitivity of cat retinal ganglion cells , 1983, The Journal of comparative neurology.
[50] M. Mayer,et al. The action of N‐methyl‐D‐aspartic acid on mouse spinal neurones in culture. , 1985, The Journal of physiology.
[51] B E Stein,et al. Relationship between visual and tactile representations in cat superior colliculus. , 1976, Journal of neurophysiology.
[52] G. Westbrook,et al. Cloning and expression of rat metabotropic glutamate receptor 8 reveals a distinct pharmacological profile. , 1997, Molecular pharmacology.
[53] Bradley G. Klein,et al. Dendrites of deep layer, somatosensory superior collicular neurons extend into the superficial laminae , 1984, Brain Research.
[54] A. N. van den Pol,et al. Distribution of metabotropic glutamate receptor mGluR5 immunoreactivity in rat brain , 1995, The Journal of comparative neurology.
[55] R. Rhoades,et al. Ultrastructural organization of the noradrenergic innervation of the superficial gray layer of the hamster's superior colliculus , 1994, Synapse.
[56] H. Vanegas,et al. Comparative neurology of the optic tectum , 1984 .
[57] S G Lomber,et al. Removal of two halves restores the whole: Reversal of visual hemineglect during bilateral cortical or collicular inactivation in the cat , 1996, Visual Neuroscience.
[58] D. Gehlert,et al. Autoradiographic localization of subtypes of angiotensin II antagonist binding in the rat brain , 1991, Neuroscience.
[59] F. Fonnum,et al. Localization of neurotransmitters, particularly glutamate, in hippocampus, septum, nucleus accumbens and superior colliculus. , 1979, Progress in brain research.
[60] Y. Okada,et al. Selective reduction of glutamate in the rat superior colliculus and dorsal lateral geniculate nucleus after contralateral enucleation , 1992, Brain Research.
[61] Sillito Am,et al. The action of the putative neurotransmitters N-acetylaspartylglutamate and L-homocysteate in cat dorsal lateral geniculate nucleus. , 1992 .
[62] John T. Schmidt,et al. A Cholinergic Circuit Intrinsic to Optic Tectum Modulates Retinotectal Transmission via Presynaptic Nicotinic Receptors a , 1991, Annals of the New York Academy of Sciences.
[63] R. Mize,et al. Neurochemical microcircuitry underlying visual and oculomotor function in the cat superior colliculus. , 1996, Progress in brain research.
[64] P. Dean,et al. Opposing Excitatory and Inhibitory Influences from the Cerebellum and Basal Ganglia Converge on the Superior Colliculus: an Electrophysiological Investigation in the Rat , 1994, The European journal of neuroscience.
[65] S. Sherman,et al. Ultrastructural Localization Suggests that Retinal and Cortical Inputs Access Different Metabotropic Glutamate Receptors in the Lateral Geniculate Nucleus , 1996, The Journal of Neuroscience.
[66] W. C. Hall,et al. Reciprocal connections between the zona incerta and the pretectum and superior colliculus of the cat , 1997, Neuroscience.
[67] Peter Redgrave,et al. Cardiovascular and respiratory changes elicited by stimulation of rat superior colliculus , 1988, Brain Research Bulletin.
[68] P. Herrling,et al. CPP, a new potent and selective NMDA antagonist. Depression of central neuron responses, affinity for [3H]d-AP5 binding sites on brain membranes and anticonvulsant activity , 1986, Brain Research.
[69] R. Mize. Variations in the retinal synapses of the cat superior colliculus revealed using quantitative electron microscope autoradiography , 1983, Brain Research.
[70] P. Dean,et al. Event or emergency? Two response systems in the mammalian superior colliculus , 1989, Trends in Neurosciences.
[71] Adam M. Sillito,et al. The influence of GABAergic inhibitory processes on the receptive field structure of X and Y cells in cat dorsal lateral geniculate nucleus (dLGN) , 1983, Brain Research.
[72] K. Kaila,et al. Distribution of GABA receptor ρ subunit transcripts in the rat brain , 1998, The European journal of neuroscience.
[73] J. Sprague,et al. Interaction of Cortex and Superior Colliculus in Mediation of Visually Guided Behavior in the Cat , 1966, Science.
[74] B. Stein,et al. Postnatal development of acetylcholinesterase in, and cholinergic projections to, the cat superior colliculus , 1991, The Journal of comparative neurology.
[75] R. Wurtz,et al. Saccade-related activity in monkey superior colliculus. II. Spread of activity during saccades. , 1995, Journal of neurophysiology.
[76] P Redgrave,et al. Organisation of efferent projections from superior colliculus to brainstem in rat: evidence for functional output channels. , 1988, Progress in brain research.
[77] C. Cotman,et al. Autoradiography of d-2-[3H]amino-5-phosphonopentanoate binding sites in rat brain , 1984, Neuroscience Letters.
[78] S. Nakanishi,et al. Distribution of the mRNA for a metabotropic glutamate receptor (mGluR3) in the rat brain: An in situ hybridization study , 1993, The Journal of comparative neurology.
[79] B E Stein,et al. Effects of cooling somatosensory cortex on response properties of tactile cells in the superior colliculus. , 1986, Journal of neurophysiology.
[80] G. Kovacs,et al. Peptidergic modulation of learning and memory processes. , 1994, Pharmacological reviews.
[81] Jian-Zhong Guo,et al. Glutamate and GABA Release Are Enhanced by Different Subtypes of Presynaptic Nicotinic Receptors in the Lateral Geniculate Nucleus , 1998, The Journal of Neuroscience.
[82] P. Calabresi,et al. Endogenous GABA mediates presynaptic inhibition of spontaneous and evoked excitatory synaptic potentials in the rat neostriatum , 1990, Neuroscience Letters.
[83] B E Stein,et al. Reptiles and mammals use similar sensory organizations in the midbrain. , 1979, Science.
[84] B. Stein,et al. Visual, auditory, and somatosensory convergence on cells in superior colliculus results in multisensory integration. , 1986, Journal of neurophysiology.
[85] T. Warner,et al. Regulation of blood pressure by L-arginine-nitric oxide pathway within the superior colliculus of rats. , 1997, European journal of pharmacology.
[86] R. Grantyn,et al. Separation of quisqualate- and kainate-selective glutamate receptors in cultured neurons from the rat superior colliculus , 1989, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[87] M. Masu,et al. Signal transduction, pharmacological properties, and expression patterns of two rat metabotropic glutamate receptors, mGluR3 and mGluR4 , 1993, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[88] Y. Okada,et al. Reduction of glutamate content in rat superior colliculus after retino-tectal denervation , 1990, Neuroscience Letters.
[89] Shigetada Nakanishi,et al. Immunohistochemical localization of a metabotropic glutamate receptor, mGluR5, in the rat brain , 1993, Neuroscience Letters.
[90] P. Mcgeer,et al. Presumptive γ-aminobutyric acid pathways from the midbrain to the superior colliculus studied by a combined horseradish peroxidase-γ-aminobutyric acid transaminase pharmacohistochemical method , 1984, Neuroscience.
[91] L. Chalupa,et al. Responses of visual, somatosensory, and auditory neurones in the golden hamster's superior colliculus , 1977, The Journal of physiology.
[92] K. Starke,et al. Release and modulation of release of serotonin in rabbit superior colliculus , 1989, Neuroscience.
[93] A. Sillito,et al. The contribution of thenon-N-methyl-d-aspartate group of excitatory amino acid receptors to retinogeniculate transmission in the cat , 1990, Neuroscience.
[94] RW Rhoades,et al. Functional influence of interlaminar connections in the hamster's superior colliculus , 1992, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[95] K. Grove,et al. Discrimination of angiotensin II receptor subtype distribution in the rat brain using non-peptidic receptor antagonists , 1991, Regulatory Peptides.
[96] D. Hubel,et al. Topography of visual and somatosensory projections to mouse superior colliculus. , 1976, Journal of neurophysiology.
[97] M. Cynader,et al. Receptive fields in cat superior colliculus after visual cortex lesions. , 1975, Journal of Physiology.
[98] R. Pourcho,et al. GABA-immunoreactivity in ganglion cells of the rat retina , 1989, Brain Research.
[99] T. Salt,et al. Corticofugal influences on visual responses in cat superior colliculus: The role of NMDA receptors , 1996, Visual Neuroscience.
[100] B. Stein,et al. Spatial determinants of multisensory integration in cat superior colliculus neurons. , 1996, Journal of neurophysiology.
[101] T. Salt,et al. Developmental changes in NMDA receptor-mediated visual activity in the rat superior colliculus, and the effect of dark rearing , 1998, Experimental Brain Research.
[102] J. Mcculloch,et al. Selective alterations in glutamate receptor subtypes after unilateral orbital enucleation , 1991, Brain Research.
[103] N. Bowery. GABAB receptor pharmacology. , 1993, Annual review of pharmacology and toxicology.
[104] N. Bowery,et al. GABAA and GABAB receptor site distribution in the rat central nervous system , 1987, Neuroscience.
[105] A J King,et al. The development of topographically-aligned maps of visual and auditory space in the superior colliculus. , 1996, Progress in brain research.
[106] G. Fagg,et al. CGP 35348: a centrally active blocker of GABAB receptors. , 1990, European journal of pharmacology.
[107] J. Moffett,et al. Selective distribution of N-acetylasparthlglutamate immunoreactivity in the extrapyramidal system of the rat , 1989, Brain Research.
[108] J. Nakajima,et al. Morphologic analysis of rat retinocollicular neuron terminals containing monoamine oxidase , 1996, Brain Research Bulletin.
[109] B. Platt,et al. Paired-pulse depression in the superficial layers of the guinea-pig superior colliculus. , 1997, Brain research.
[110] Y. Okada,et al. Excitatory and inhibitory action of GABA on synaptic transmission in slices of guinea pig superior colliculus. , 1988, European journal of pharmacology.
[111] W. C. Hall,et al. Superior Colliculus of the Tree Shrew: A Structural and Functional Subdivision into Superficial and Deep Layers , 1972, Science.
[112] J. Neale,et al. N‐Acetylaspartylglutamate Stimulates Metabotropic Glutamate Receptor 3 to Regulate Expression of the GABAAα6 Subunit in Cerebellar Granule Cells , 1997, Journal of neurochemistry.
[113] M T Wallace,et al. Cross-modal synthesis in the midbrain depends on input from cortex. , 1994, Journal of neurophysiology.
[114] Y. Okada,et al. Endogenous adenosine facilitates neurotransmission via A2A adenosine receptors in the rat superior colliculus in vivo , 1997, Brain Research.
[115] R. Wurtz,et al. Saccade-related activity in monkey superior colliculus. I. Characteristics of burst and buildup cells. , 1995, Journal of neurophysiology.
[116] M. Cynader,et al. [3H]nicotine binding sites are associated with mammalian optic nerve terminals , 1988, Visual Neuroscience.
[117] T. Warner,et al. Role of AT2 receptors in the cardiovascular events following microinjection of angiotensin II into the superior colliculus of anaesthetised rats , 1998, Naunyn-Schmiedeberg's Archives of Pharmacology.
[118] S. Tieman,et al. Effect of eye removal on N-acetylaspartylglutamate immunoreactivity in retinal targets of the cat , 1991, Brain Research.
[119] A. S. Ramoa,et al. Intrinsic circuitry of the superior colliculus: pharmacophysiological identification of horizontally oriented inhibitory interneurons. , 1998, Journal of neurophysiology.
[120] A. Rees,et al. Sensory maps: Aligning maps of visual and auditory space , 1996, Current Biology.
[121] T. Hicks,et al. GABAB‐related activity involved in synaptic processing of somatosensory information in S1 cortex of the anaesthetized cat , 1990, British journal of pharmacology.
[122] G. Johnston. Chapter 8 GABAc receptors , 1994 .
[123] E. Murphy,et al. Alterations in receptive field properties of superior colliculus cells produced by visual cortex ablation in infant and adult cats , 1976, The Journal of comparative neurology.
[124] H. R. Clemo,et al. Auditory cortical projection from the anterior ectosylvian sulcus (Field AES) to the superior colliculus in the cat: an anatomical and electrophysiological study. , 1989, The Journal of comparative neurology.
[125] J G Malpeli,et al. Cat area 17. IV. Two types of corticotectal cells defined by controlling geniculate inputs. , 1986, Journal of neurophysiology.
[126] I. Fujita,et al. The role of GABAergic inhibition in processing of interaural time difference in the owl's auditory system , 1991, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[127] R. Wurtz,et al. Fixation cells in monkey superior colliculus. I. Characteristics of cell discharge. , 1993, Journal of neurophysiology.
[128] J. Neale,et al. N‐Acetylaspartylglutamate Selectively Activates mGluR3 Receptors in Transfected Cells , 1997, Journal of neurochemistry.
[129] C. Cotman,et al. The distribution of [3H]kainic acid binding sites in rat CNS as determined by autoradiography , 1982, Brain Research.
[130] W. Levick,et al. Analysis of orientation bias in cat retina , 1982, The Journal of physiology.
[131] P. Sterling,et al. Effect on the Superior Colliculus of Cortical Removal in Visually Deprived Cats , 1969, Nature.
[132] R. Mize,et al. Postembedding immunocytochemistry demonstrates directly that both retinal and cortical terminals in the cat superior colliculus are glutamate immunoreactive , 1996, The Journal of comparative neurology.
[133] Y. Okada,et al. Adenosine facilitates glutamate release in a protein kinase-dependent manner in superior colliculus slices. , 1994, European journal of pharmacology.
[134] R. Mize,et al. Immunocytochemical localization of gamma‐aminobutyric acid (GABA) in the cat superior colliculus , 1988, The Journal of comparative neurology.
[135] C. Olson,et al. Ectosylvian visual area of the cat: Location, retinotopic organization, and connections , 1987, The Journal of comparative neurology.
[136] T. Salt,et al. Different roles for GABAA and GABAB receptors in visual processing in the rat superior colliculus , 1997, The Journal of physiology.
[137] F. Fonnum,et al. Evidence for glutamate as a neurotransmitter in the corticofugal fibres to the dorsal lateral geniculate body and the superior colliculus in rats , 1978, Brain Research.
[138] T. Salt,et al. Functions of ionotropic and metabotropic glutamate receptors in sensory transmission in the mammalian thalamus , 1996, Progress in Neurobiology.
[139] R. Petralia,et al. Light and electron immunocytochemical localization of AMPA‐selective glutamate receptors in the rat brain , 1992, The Journal of comparative neurology.
[140] R. Mize,et al. The organization of GABAergic neurons in the mammalian superior colliculus. , 1992, Progress in brain research.
[141] B. Stein,et al. Determinants of multisensory integration in superior colliculus neurons. I. Temporal factors , 1987, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[142] K. Fuxe,et al. Mapping out of catecholamine and 5-hydroxytryptamine neurons innervating the telencephalon and diencephalon. , 1965, Life sciences.
[143] K. Fuxe,et al. The brain renin-angiotensin system: localization and general significance. , 1992, Journal of cardiovascular pharmacology.
[144] S. Nakanishi,et al. Presynaptic localization of a metabotropic glutamate receptor, mGluR7, in the primary afferent neurons: an immunohistochemical study in the rat , 1995, Neuroscience Letters.
[145] M. Behan,et al. Sources of subcortical GABAergic projections to the superior colliculus in the cat , 1990, The Journal of comparative neurology.
[146] P. O. Bishop,et al. Discrimination of orientation and position disparities by binocularly activated neurons in cat straite cortex. , 1977, Journal of neurophysiology.
[147] N. Bowery,et al. The location of GABAB receptor binding sites in mammalian spinal cord , 1987, Synapse.
[148] R. Petralia,et al. The metabotropic glutamate receptors, MGLUR2 and MGLUR3, show unique postsynaptic, presynaptic and glial localizations , 1996, Neuroscience.
[150] R. Mooney,et al. Serotonin modulates retinotectal and corticotectal convergence in the superior colliculus. , 1996, Progress in brain research.
[151] C. Casanova,et al. Dose-dependent inhibitory effects of angiotensin II on visual responses of the rat superior colliculus: AT1 and AT2 receptor contributions , 1997, Neuropeptides.
[152] I. Soltesz,et al. On the properties and origin of the GABAB inhibitory postsynaptic potential recorded in morphologically identified projection cells of the cat dorsal lateral geniculate nucleus , 1989, Neuroscience.
[153] K. Moriyoshi,et al. Molecular characterization of the family of the N-methyl-D-aspartate receptor subunits. , 1993, The Journal of biological chemistry.
[154] C. W. Oyster,et al. Responses of rabbit superior colliculus neurons to repeated visual stimuli. , 1975, Journal of neurophysiology.
[155] B. Platt,et al. Response habituation in the superficial layers of the guinea-pig superior colliculus in vitro , 1997, Neuroscience Letters.
[156] S N Davies,et al. Quinoxalinediones: potent competitive non-NMDA glutamate receptor antagonists. , 1988, Science.
[157] H. Wässle,et al. Actions of excitatory amino acids on brisk ganglion cells in the cat retina. , 1990, Journal of neurophysiology.
[158] S. Nakanishi,et al. Distribution of the mRNA for a metabotropic glutamate receptor (mGluR1) in the central nervous system: An in situ hybridization study in adult and developing rat , 1992, The Journal of comparative neurology.