Long-term potentiation and long-term depression in the neocortex
暂无分享,去创建一个
[1] C. Woody,et al. Long-term changes in excitability of cortical neurons after Pavlovian conditioning and extinction. , 1980, Journal of neurophysiology.
[2] Richard F. Thompson. The neurobiology of learning and memory. , 1986, Science.
[3] Y. Komatsu. Development of cortical inhibition in kitten striate cortex investigated by a slice preparation , 1983 .
[4] R. Nicoll,et al. Mechanisms underlying potentiation of synaptic transmission in rat anterior cingulate cortex in vitro. , 1991, The Journal of physiology.
[5] K. Toyama,et al. Long-term potentiation investigated in a slice preparation of striate cortex of young kittens , 1981, Neuroscience Letters.
[6] C. Woody,et al. Properties of associative long-lasting potentiation induced by cellular conditioning in the motor cortex of conscious cats , 1991, Neuroscience.
[7] Timothy J. Teyler,et al. Induction of LTP in rat primary visual cortex: tetanus parameters , 1989, Brain Research.
[8] R. Nicoll,et al. An essential role for postsynaptic calmodulin and protein kinase activity in long-term potentiation , 1989, Nature.
[9] C. Woody. Understanding the cellular basis of memory and learning. , 1986, Annual review of psychology.
[10] H. Sugiyama,et al. Glutamate receptor subtypes may be classified into two major categories: A study on Xenopus oocytes injected with rat brain mRNA , 1989, Neuron.
[11] T. Teyler,et al. A critical period for long-term potentiation in the developing rat visual cortex , 1988, Brain Research.
[12] D. Hubel,et al. SINGLE-CELL RESPONSES IN STRIATE CORTEX OF KITTENS DEPRIVED OF VISION IN ONE EYE. , 1963, Journal of neurophysiology.
[13] L. Nowak,et al. Magnesium gates glutamate-activated channels in mouse central neurones , 1984, Nature.
[14] R. Tsien,et al. Presynaptic enhancement shown by whole-cell recordings of long-term potentiation in hippocampal slices , 1990, Nature.
[15] T. Sejnowski,et al. Associative long-term depression in the hippocampus induced by hebbian covariance , 1989, Nature.
[16] G. Stent. A physiological mechanism for Hebb's postulate of learning. , 1973, Proceedings of the National Academy of Sciences of the United States of America.
[17] C. Woody,et al. Activation of protein kinase C induces long-term changes of postsynaptic currents in neocortical neurons , 1988, Brain Research.
[18] W. Singer,et al. Different voltage-dependent thresholds for inducing long-term depression and long-term potentiation in slices of rat visual cortex , 1990, Nature.
[19] T. Sejnowski. Statistical constraints on synaptic plasticity. , 1977, Journal of theoretical biology.
[20] T. Tsumoto,et al. Immunohistochemical localization of a membrane‐associated, 4.1‐like protein in the rat visual cortex during postnatal development , 1988, The Journal of comparative neurology.
[21] G. Lynch,et al. Intracellular injections of EGTA block induction of hippocampal long-term potentiation , 1983, Nature.
[22] T. Sejnowski,et al. Storing covariance with nonlinearly interacting neurons , 1977, Journal of mathematical biology.
[23] Tadaharu Tsumoto,et al. Excitatory amino acid transmitters and their receptors in neural circuits of the cerebral neocortex , 1990, Neuroscience Research.
[24] A. Ganong,et al. Excitatory amino acid neurotransmission: NMDA receptors and Hebb-type synaptic plasticity. , 1988, Annual review of neuroscience.
[25] Y. Yoshimura,et al. Long‐term depression is induced in Ca2+/calmodulin kinase‐inhibited visual cortex neurons , 1992, Neuroreport.
[26] W. Levy,et al. Temporal contiguity requirements for long-term associative potentiation/depression in the hippocampus , 1983, Neuroscience.
[27] M. Bear,et al. Postnatal changes in glutamate stimulated phosphoinositide turnover in rat neocortical synaptoneurosomes. , 1989, Brain research. Developmental brain research.
[28] D. Hubel,et al. The period of susceptibility to the physiological effects of unilateral eye closure in kittens , 1970, The Journal of physiology.
[29] T. Tsumoto,et al. Postnatal development of immunohistochemically localized spectrin-like protein (calspectin or fodrin) in the rat visual cortex: Its excessive expression in developing cortical neurons , 1987, Journal of neurocytology.
[30] P. Schwartzkroin,et al. Long-lasting facilitation of a synaptic potential following tetanization in thein vitro hippocampal slice , 1975, Brain Research.
[31] A. Ganong,et al. Excitatory amino acid synaptic mechanisms and neurological function , 1986 .
[32] R. Lester,et al. Frequency‐dependent N‐methyl‐D‐aspartate receptor‐mediated synaptic transmission in rat hippocampus. , 1988, The Journal of physiology.
[33] M. Sanders. Handbook of Sensory Physiology , 1975 .
[34] T. Bliss. Maintenance is presynaptic , 1990, Nature.
[35] J. Bolz,et al. Non-Hebbian synapses in rat visual cortex. , 1990, Neuroreport.
[36] E. Kumamoto,et al. Long-term potentiations in vertebrate synapses: a variety of cascades with common subprocesses , 1990, Progress in Neurobiology.
[37] A. Thomson. A magnesium‐sensitive post‐synaptic potential in rat cerebral cortex resembles neuronal responses to N‐methylaspartate. , 1986, The Journal of physiology.
[38] H. Matthies,et al. In search of cellular mechanisms of memory , 1989, Progress in Neurobiology.
[39] W. Singer,et al. Postnatal Development of Protein Kinase C‐like Immunoreactivity in the Cat Visual Cortex , 1989, The European journal of neuroscience.
[40] G. V. Goddard,et al. Asymmetric relationships between homosynaptic long-term potentiation and heterosynaptic long-term depression , 1983, Nature.
[41] W. Singer,et al. The formation of cooperative cell assemblies in the visual cortex. , 1990, The Journal of experimental biology.
[42] Graham L. Collingridge,et al. Temporally distinct pre- and post-synaptic mechanisms maintain long-term potentiation , 1989, Nature.
[43] W. Singer,et al. Blockade of "NMDA" receptors disrupts experience-dependent plasticity of kitten striate cortex. , 1987, Science.
[44] L. Cooper,et al. A physiological basis for a theory of synapse modification. , 1987, Science.
[45] T. Bliss,et al. Arachidonic acid induces a long-term activity-dependent enhancement of synaptic transmission in the hippocampus , 1989, Nature.
[46] M. Bear,et al. Stimulation of Phosphoinositide Turnover by Excitatory Amino Acids , 1991, Annals of the New York Academy of Sciences.
[47] K. Stratford,et al. Quantal analysis of excitatory synaptic action and depression in hippocampal slices , 1991, Nature.
[48] Timothy J. Teyler,et al. Long-term potentiation as a candidate mnemonic device , 1984, Brain Research Reviews.
[49] G. Lynch,et al. Trifluoperazine inhibits hippocampal long-term potentiation and the phosphorylation of a 40,000 dalton protein , 1980, Neuroscience Letters.
[50] D. Wilson,et al. A comparison of the postnatal development of post-activation potentiation in the neocortex and dentate gyrus of the rat. , 1984, Brain research.
[51] K Toyama,et al. Long-term potentiation of synaptic transmission in kitten visual cortex. , 1988, Journal of neurophysiology.
[52] Stephen J. Smith,et al. NMDA-receptor activation increases cytoplasmic calcium concentration in cultured spinal cord neurones , 1986, Nature.
[53] E. Bienenstock,et al. Theory for the development of neuron selectivity: orientation specificity and binocular interaction in visual cortex , 1982, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[54] G. Edelman,et al. The NO hypothesis: possible effects of a short-lived, rapidly diffusible signal in the development and function of the nervous system. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[55] R. Tsien,et al. Inhibition of postsynaptic PKC or CaMKII blocks induction but not expression of LTP. , 1989, Science.
[56] E. W. Kairiss,et al. Hebbian synapses: biophysical mechanisms and algorithms. , 1990, Annual review of neuroscience.
[57] T. Bliss,et al. Long‐lasting potentiation of synaptic transmission in the dentate area of the anaesthetized rabbit following stimulation of the perforant path , 1973, The Journal of physiology.
[58] A. Keller,et al. Long-term potentiation of thalamic input to the motor cortex induced by coactivation of thalamocortical and corticocortical afferents. , 1991, Journal of neurophysiology.
[59] Y. Komatsu,et al. Postnatal development of neuronal connections in cat visual cortex studied by intracellular recording in slice preparation , 1991, Brain Research.
[60] A. Keller,et al. Long-term potentiation in the cat somatosensory cortex. , 1990, Neuroreport.
[61] M. Bear,et al. A biochemical correlate of the critical period for synaptic modification in the visual cortex. , 1989, Science.
[62] T. Teyler,et al. Long-term potentiation. , 1987, Annual review of neuroscience.
[63] H Asanuma,et al. Identification of neurons producing long‐term potentiation in the cat motor cortex: Intracellular recordings and labeling , 1990, The Journal of comparative neurology.
[64] C. Stevens,et al. Failure to reverse long-term potentiation by coupling sustained presynaptic activity and N-methyl-D-aspartate receptor blockade. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[65] I. Módy,et al. Blockade of tetanic- and calcium-induced long-term potentiation in the hippocampal slice preparation by neuroleptics , 1984, Neuropharmacology.
[66] W. Singer,et al. The Involvement of N‐Methyl‐D‐Aspartate Receptors in Induction and Maintenance of Long‐Term Potentiation in Rat Visual Cortex , 1990, The European journal of neuroscience.
[67] T. Bliss,et al. Induction but not maintenance of calcium-induced long-term potentiation in dentate gyrus and area CA1 of the hippocampal slice is blocked by nordihydroguaiaretic acid , 1988, Neuroscience Letters.
[68] Robert C. Malenka,et al. Potentiation of synaptic transmission in the hippocampus by phorbol esters , 1986, Nature.
[69] L. Bindman,et al. Postsynaptic control of the induction of long-term changes in efficacy of transmission at neocortical synapses in slices of rat brain. , 1988, Journal of neurophysiology.
[70] F. Edwards. LTP is a long term problem , 1991, Nature.
[71] Josef P. Rauschecker,et al. Ketamine—xylazine anaesthesia blocks consolidation of ocular dominance changes in kitten visual cortex , 1987, Nature.
[72] W Singer,et al. Disruption of experience-dependent synaptic modifications in striate cortex by infusion of an NMDA receptor antagonist , 1990, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[73] R S Zucker,et al. Postsynaptic calcium is sufficient for potentiation of hippocampal synaptic transmission. , 1988, Science.
[74] R. Racine,et al. The postnatal development of post-activation potentiation in the rat neocortex. , 1983, Brain research.
[75] Y. Yoshimura,et al. Input-specific induction of long-term depression in Ca(2+)-chelated visual cortex neurons. , 1991, Neuroreport.
[76] T. H. Brown,et al. Associative long-term potentiation in hippocampal slices. , 1983, Proceedings of the National Academy of Sciences of the United States of America.
[77] T. Tsumoto,et al. NMDA receptors in the visual cortex of young kittens are more effective than those of adult cats , 1987, Nature.
[78] P. Andersen,et al. Specific long-lasting potentiation of synaptic transmission in hippocampal slices , 1977, Nature.
[79] T. Wiesel. Postnatal development of the visual cortex and the influence of environment , 1982, Nature.
[80] A. Routtenberg,et al. Characterization of protein F1 (47 kDa, 4.5 pI): A kinase C substrate directly related to neural plasticity , 1985, Experimental Neurology.
[81] J. Hablitz,et al. Long-term potentiation in frontal cortex: Role of NMDA-modulated polysynaptic excitatory pathways , 1989, Neuroscience Letters.
[82] Kevin S. Lee. Sustained enhancement of evoked potentials following brief, high-frequency stimulation of the cerebral cortex in vitro , 1982, Brain Research.
[83] T. Teyler. Comparative aspects of hippocampal and neocortical long-term potentiation , 1989, Journal of Neuroscience Methods.
[84] J. Garthwaite,et al. Endothelium-derived relaxing factor release on activation of NMDA receptors suggests role as intercellular messenger in the brain , 1988, Nature.
[85] C. Blakemore,et al. Reversal of the physiological effects of monocular deprivation in kittens: further evidence for a sensitive period , 1974, The Journal of physiology.
[86] M. Ito,et al. Long-term depression. , 1989, Annual review of neuroscience.
[87] A. Baranyi,et al. Long-term facilitation of excitatory synaptic transmission in single motor cortical neurones of the cat produced by repetitive pairing of synaptic potentials and action potentials following intracellular stimulation , 1981, Neuroscience Letters.
[88] M. Cynader,et al. Protein kinase C immunoreactivity in kitten visual cortex is developmentally regulated and input-dependent. , 1990, Brain research. Developmental brain research.
[89] M. Kennedy,et al. Regulation of brain Type II Ca 2+ calmodulin -dependent protein kinase by autophosphorylation: A Ca2+-triggered molecular switch , 1986, Cell.
[90] Y. Yoshimura,et al. Long-term depression but not potentiation is induced in Ca(2+)-chelated visual cortex neurons. , 1990, Neuroreport.
[91] Marc G. Weisskopf,et al. Horizontal long-term potentiation of responses in rat somatosensory cortex , 1991, Brain Research.
[92] T. Tsumoto,et al. Excitatory amino acid transmitters in neuronal circuits of the cat visual cortex. , 1986, Journal of neurophysiology.
[93] F. Crépel,et al. Use‐dependent changes in synaptic efficacy in rat prefrontal neurons in vitro. , 1990, The Journal of physiology.
[94] W. Levy,et al. Synapses as associative memory elements in the hippocampal formation , 1979, Brain Research.
[95] G. Lynch,et al. Heterosynaptic depression: a postsynaptic correlate of long-term potentiation , 1977, Nature.
[96] C. Stevens,et al. Presynaptic mechanism for long-term potentiation in the hippocampus , 1990, Nature.
[97] C. Woody,et al. Intracellular injection of phorbol ester increases the excitability of neurons of the motor cortex of awake cats , 1987, Brain Research.
[98] W. Singer,et al. Long-term potentiation and NMDA receptors in rat visual cortex , 1987, Nature.
[99] H. Hidaka,et al. Effects of KN-62, a specific inhibitor of calcium/calmodulin-dependent protein kinase II, on long-term potentiation in the rat hippocampus , 1991, Neuroscience Letters.
[100] O. Lippold,et al. Long-term potentiation and depression in hippocampal slices , 1986, Experimental Neurology.
[101] P. Andersen,et al. Protein kinase C injection into hippocampal pyramidal cells elicits features of long term potentiation , 1987, Nature.
[102] L. Voronin,et al. Long-term potentiation in the hippocampus , 1983, Neuroscience.
[103] Masato Higashima,et al. Quantal analysis of potentiating action of phorbol ester on synaptic transmission in the hippocampus , 1987, Neuroscience Research.
[104] A. Baranyi,et al. Long-lasting potentiation of synaptic transmission requires postnaptic modifications in the neocortex , 1987, Brain Research.
[105] K. Toyama,et al. Induction of long-term potentiation without participation of N-methyl-D-aspartate receptors in kitten visual cortex. , 1991, Journal of neurophysiology.
[106] C. Blakemore. Maturation and Modification in the Developing Visual System , 1978 .
[107] C. Yamamoto,et al. Long-term potentiation in thin hippocampal sections studied by intracellular and extracellular recordings , 1978, Experimental Neurology.
[108] J. W. Goh,et al. A pertussis toxin-sensitive G protein in hippocampal long-term potentiation. , 1989, Science.
[109] G. Lynch,et al. The biochemistry of memory: a new and specific hypothesis. , 1984, Science.
[110] M. Cynader,et al. Development of phorbol ester (protein kinase C) binding sites in cat visual cortex. , 1988, Brain research.
[111] 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.
[112] T. Tsumoto,et al. A role of NMDA receptors and Ca2+ influx in synaptic plasticity in the developing visual cortex. , 1990, Advances in experimental medicine and biology.
[113] K. Sobue,et al. Purification of a 240 000 M r calmodulin‐binding protein from a microsomal fraction of brain , 1981, FEBS letters.
[114] S. Sherman,et al. Organization of visual pathways in normal and visually deprived cats. , 1982, Physiological reviews.
[115] M K Smith,et al. Calcium/calmodulin-dependent protein kinase II. , 1989, The Biochemical journal.
[116] I. Zagon,et al. Identification and location of brain protein 4.1. , 1984, Science.
[117] T. Sejnowski,et al. 2-Amino-3-phosphonopropionic acid, an inhibitor of glutamate-stimulated phosphoinositide turnover, blocks induction of homosynaptic long-term depression, but not potentiation, in rat hippocampus , 1991, Neuroscience Letters.
[118] J. Levine,et al. Fodrin: axonally transported polypeptides associated with the internal periphery of many cells , 1981, The Journal of cell biology.
[119] Karrie R. Jones,et al. NMDA- and non-NMDA-receptor components of excitatory synaptic potentials recorded from cells in layer V of rat visual cortex , 1988, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[120] D. Purpura,et al. Properties of synaptic activities and spike potentials of neurons in immature neocortex. , 1965, Journal of neurophysiology.
[121] W. Singer,et al. Developmental changes in the susceptibility to long-term potentiation of neurones in rat visual cortex slices. , 1991, Brain research. Developmental brain research.
[122] J. Levine,et al. Redistribution of fodrin (a component of the cortical cytoplasm) accompanying capping of cell surface molecules. , 1983, Proceedings of the National Academy of Sciences of the United States of America.
[123] H. Sugiyama,et al. Roles of glutamate receptors in long-term potentiation at hippocampal mossy fiber synapses. , 1991, Neuroreport.
[124] D. Okada,et al. Pertussis toxin suppresses long-term potentiation of hippocampal mossy fiber synapses , 1988, Neuroscience Letters.
[125] G. Collingridge,et al. Excitatory amino acids in synaptic transmission in the Schaffer collateral‐commissural pathway of the rat hippocampus. , 1983, The Journal of physiology.
[126] T. Teyler,et al. The role of NMDA receptors in long-term potentiation (LTP) and depression (LTD) in rat visual cortex , 1991, Brain Research.
[127] A. Keller,et al. Long-term potentiation in the motor cortex. , 1989, Science.
[128] M. Kennedy,et al. Immunoreactivity for a calmodulin-dependent protein kinase is selectively increased in macaque striate cortex after monocular deprivation. , 1986, Proceedings of the National Academy of Sciences of the United States of America.
[129] Y. Miyashita. Neuronal correlate of visual associative long-term memory in the primate temporal cortex , 1988, Nature.
[130] Charles D. Woody,et al. Memory, Learning, and Higher Function: A Cellular View , 1984 .
[131] R. Dingledine. N‐methyl aspartate activates voltage‐dependent calcium conductance in rat hippocampal pyramidal cells. , 1983, The Journal of physiology.
[132] T. Tsumoto,et al. Long‐term potentiation and N‐methyl‐D‐aspartate receptors in the visual cortex of young rats. , 1989, The Journal of physiology.
[133] L. Squire. Mechanisms of memory. , 1986, Lancet.
[134] T. Hicks,et al. Amino acids as transmitters of synaptic excitation in neocortical sensory processes. , 1991, Canadian journal of physiology and pharmacology.
[135] H. Sugiyama,et al. A new type of glutamate receptor linked to inositol phospholipid metabolism , 1987, Nature.
[136] M. Mayer,et al. The physiology of excitatory amino acids in the vertebrate central nervous system , 1987, Progress in Neurobiology.
[137] I. Zagon,et al. Brain spectrin: A review , 1984, Brain Research Bulletin.
[138] A. Baranyi,et al. Synaptic facilitation requires paired activation of convergent pathways in the neocortex , 1981, Nature.
[139] E. Kandel,et al. Learning-related synaptic plasticity: LTP and LTD , 1991, Current Opinion in Neurobiology.
[140] T. Bliss,et al. Long-term potentiation of the perforant path in vivo is associated with increased glutamate release , 1982, Nature.
[141] B. Gähwiler,et al. Activity-dependent disinhibition. I. Repetitive stimulation reduces IPSP driving force and conductance in the hippocampus in vitro. , 1989, Journal of neurophysiology.
[142] J. Bockaert,et al. A new mechanism for glutamate receptor action: phosphoinositide hydrolysis , 1988, Trends in Neurosciences.
[143] D. O. Hebb,et al. The organization of behavior , 1988 .
[144] D. Willshaw,et al. Must what goes up come down? , 1989, Nature.
[145] J. Rauschecker,et al. Mechanisms of visual plasticity: Hebb synapses, NMDA receptors, and beyond. , 1991, Physiological reviews.
[146] W. Scoville,et al. LOSS OF RECENT MEMORY AFTER BILATERAL HIPPOCAMPAL LESIONS , 1957, Journal of neurology, neurosurgery, and psychiatry.
[147] T. Tsumoto. Long-term potentiation and depression in the cerebral neocortex. , 1990, The Japanese journal of physiology.
[148] Peter Dayan,et al. Optimal Plasticity from Matrix Memories: What Goes Up Must Come Down , 1990, Neural Computation.
[149] R. Nicoll,et al. Mechanisms underlying long-term potentiation of synaptic transmission. , 1991, Annual review of neuroscience.
[150] M. Mishkin. A memory system in the monkey. , 1982, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[151] 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.
[152] Masao Ito,et al. Climbing fibre induced depression of both mossy fibre responsiveness and glutamate sensitivity of cerebellar Purkinje cells , 1982, The Journal of physiology.
[153] H Asanuma,et al. Neuronal mechanisms of motor learning in mammals. , 1991, Neuroreport.
[154] T. Tsumoto,et al. Cross-depression: an electrophysiological manifestation of binocular competition in the developing visual cortex , 1979, Brain Research.
[155] V. Bennett. The membrane skeleton of human erythrocytes and its implications for more complex cells. , 1985, Annual review of biochemistry.
[156] R. Nicoll,et al. The current excitement in long term potentiation , 1988, Neuron.
[157] D. Schoepp,et al. Inhibition of Excitatory Amino Acid‐Stimulated Phosphoinositide Hydrolysis in the Neonatal Rat Hippocampus by 2‐Amino‐3‐Phosphonopropionate , 1989, Journal of neurochemistry.
[158] J. Reynolds,et al. NMDA depolarizations and long-term potentiation are reduced in the aged rat neocortex , 1990, Brain Research.