Function of insulin in snail brain in associative learning
暂无分享,去创建一个
K. Lukowiak | M. Sakakibara | S. Kojima | E. Ito | K. Mita | H. Sunada
[1] D. Nässel,et al. Insulin/IGF signaling and its regulation in Drosophila. , 2015, General and comparative endocrinology.
[2] M. Carlsson,et al. Serotonin and insulin‐like peptides modulate leucokinin‐producing neurons that affect feeding and water homeostasis in Drosophila , 2015, The Journal of comparative neurology.
[3] K. Lukowiak,et al. Memory block: a consequence of conflict resolution , 2015, The Journal of Experimental Biology.
[4] L. Hernadi,et al. The activity of isolated neurons and the modulatory state of an isolated nervous system represent a recent behavioural state , 2015, The Journal of Experimental Biology.
[5] Mark Harding,et al. Insulin signaling is acutely required for long-term memory in Drosophila , 2015, Front. Neural Circuits.
[6] L. Hernadi,et al. The activity of isolated snail neurons controlling locomotion is affected by glucose , 2015, Biophysics.
[7] K. Lukowiak,et al. The Yerkes–Dodson law and appropriate stimuli for conditioned taste aversion in Lymnaea , 2015, Journal of Experimental Biology.
[8] A. Gonçalves,et al. MODULATION OF INSULIN-LIKE RECEPTOR GENE (MdIR) IN RESPONSE TO FEEDING IN THE SURF CLAM MESODESMA DONACIUM (LAMARCK, 1818) , 2015 .
[9] E. Ito,et al. Effects of serotonin on the heartbeat of pond snails in a hunger state , 2015, Biophysics.
[10] M. Sakakibara,et al. Electrophysiological characteristics of feeding-related neurons after taste avoidance Pavlovian conditioning in Lymnaea stagnalis , 2014, Biophysics.
[11] Y. Fujito,et al. An increase in insulin is important for the acquisition conditioned taste aversion in Lymnaea , 2014, Neurobiology of Learning and Memory.
[12] S. Watabe,et al. Ultrasensitive enzyme-linked immunosorbent assay (ELISA) of proteins by combination with the thio-NAD cycling method , 2014, Biophysics.
[13] T. Rőszer,et al. FMRF-amide is a glucose-lowering hormone in the snail Helix aspersa , 2014, Cell and Tissue Research.
[14] D. Nässel,et al. Drosophila Insulin-Producing Cells Are Differentially Modulated by Serotonin and Octopamine Receptors and Affect Social Behavior , 2014, PloS one.
[15] I. Kemenes,et al. Reversal of Age-Related Learning Deficiency by the Vertebrate PACAP and IGF-1 in a Novel Invertebrate Model of Aging: The Pond Snail (Lymnaea stagnalis) , 2014, The journals of gerontology. Series A, Biological sciences and medical sciences.
[16] D. Alkon,et al. Protein kinase C mediates memory consolidation of taste avoidance conditioning in Lymnaea stagnalis , 2014, Neurobiology of Learning and Memory.
[17] Y. Fujito,et al. What are the elements of motivation for acquisition of conditioned taste aversion? , 2014, Neurobiology of Learning and Memory.
[18] M. Sakakibara,et al. Spaced taste avoidance conditioning in Lymnaea , 2014, Neurobiology of Learning and Memory.
[19] K. Lukowiak,et al. Increase in cyclic AMP concentration in a cerebral giant interneuron mimics part of a memory trace for conditioned taste aversion of the pond snail , 2013, Biophysics.
[20] M. Sakakibara,et al. High voltage with little current as an unconditional stimulus for taste avoidance conditioning in Lymnaea stagnalis , 2013, Neuroscience Letters.
[21] M. Sakakibara,et al. Critical Period of Memory Enhancement during Taste Avoidance Conditioning in Lymnaea stagnalis , 2013, PloS one.
[22] Zhichun Chen,et al. Decoding Alzheimer's disease from perturbed cerebral glucose metabolism: Implications for diagnostic and therapeutic strategies , 2013, Progress in Neurobiology.
[23] M. Saitoe,et al. Hunger and memory; CRTC coordinates long-term memory with the physiological state, hunger , 2013, Communicative & integrative biology.
[24] K. Lukowiak,et al. Paired pulse ratio analysis of insulin-induced synaptic plasticity in the snail brain , 2013, Journal of Experimental Biology.
[25] K. Lukowiak,et al. Consolidation of long-term memory by insulin in Lymnaea is not brought about by changing the number of insulin receptors , 2013, Communicative & integrative biology.
[26] M. Sakakibara,et al. From likes to dislikes: Conditioned taste aversion in the great pond snail (Lymnaea Stagnalis) , 2013 .
[27] S. Woods,et al. Interactions between the central nervous system and pancreatic islet secretions: a historical perspective. , 2013, Advances in Physiology Education.
[28] I. Mori,et al. Behavioral plasticity, learning, and memory in C. elegans , 2013, Current Opinion in Neurobiology.
[29] T. Miyashita,et al. Fasting Launches CRTC to Facilitate Long-Term Memory Formation in Drosophila , 2013, Science.
[30] T. Préat,et al. To Favor Survival Under Food Shortage, the Brain Disables Costly Memory , 2013, Science.
[31] K. Lukowiak,et al. Involvement of Insulin-Like Peptide in Long-Term Synaptic Plasticity and Long-Term Memory of the Pond Snail Lymnaea stagnalis , 2013, The Journal of Neuroscience.
[32] Hitoshi Aonuma,et al. Memory Trace in Feeding Neural Circuitry Underlying Conditioned Taste Aversion in Lymnaea , 2012, PloS one.
[33] D. Nässel,et al. Insulin-producing cells in the brain of adult Drosophila are regulated by the serotonin 5-HT1A receptor , 2012, Cellular and Molecular Life Sciences.
[34] T. Montine,et al. Intranasal Insulin Therapy for Alzheimer Disease and Amnestic Mild Cognitive Impairment A Pilot Clinical Trial , 2011 .
[35] Samantha J. Brooks,et al. Brain Insulin Signaling and Alzheimer's Disease: Current Evidence and Future Directions , 2011, Molecular Neurobiology.
[36] I. Mook‐Jung,et al. Insulin Resistance and Alzheimer’s Disease , 2011 .
[37] G. Collingridge,et al. PI3Kγ is required for NMDA receptor–dependent long-term depression and behavioral flexibility , 2011, Nature Neuroscience.
[38] Y. Fujito,et al. Multiple Subtypes of Serotonin Receptors in the Feeding Circuit of a Pond Snail , 2011, Zoological science.
[39] S. Krauss,et al. Insulin receptor substrate 2 is a negative regulator of memory formation. , 2011, Learning & memory.
[40] E. Ito,et al. Direct Observation of Dimerization between Different CREB1 Isoforms in a Living Cell , 2011, PloS one.
[41] S. Oda,et al. Neuronal plasticity regulated by the insulin-like signaling pathway underlies salt chemotaxis learning in Caenorhabditis elegans. , 2011, Journal of neurophysiology.
[42] M. Montminy,et al. CREB and the CRTC co-activators: sensors for hormonal and metabolic signals , 2011, Nature Reviews Molecular Cell Biology.
[43] Y. Fujito,et al. Does Conditioned Taste Aversion Learning in the Pond Snail Lymnaea stagnalis Produce Conditioned Fear? , 2011, The Biological Bulletin.
[44] J. Foster,et al. Glucose enhancement of human memory: A comprehensive research review of the glucose memory facilitation effect , 2011, Neuroscience & Biobehavioral Reviews.
[45] M. O'Shea,et al. Different circuit and monoamine mechanisms consolidate long‐term memory in aversive and reward classical conditioning , 2011, European Journal of Neuroscience.
[46] I. Kemenes,et al. A Homolog of the Vertebrate Pituitary Adenylate Cyclase-Activating Polypeptide Is Both Necessary and Instructive for the Rapid Formation of Associative Memory in an Invertebrate , 2010, The Journal of Neuroscience.
[47] Jianfeng Feng,et al. Role of tonic inhibition in associative reward conditioning in Lymnaea , 2022 .
[48] C. Murphy,et al. Insulin Signaling and Dietary Restriction Differentially Influence the Decline of Learning and Memory with Age , 2010, PLoS biology.
[49] R. Sherwin,et al. Hippocampal memory processes are modulated by insulin and high-fat-induced insulin resistance , 2010, Neurobiology of Learning and Memory.
[50] G. Kemenes,et al. Pituitary Adenylate Cyclase Activating Polypeptide (PACAP) and Its Receptors Are Present and Biochemically Active in the Central Nervous System of the Pond Snail Lymnaea stagnalis , 2010, Journal of Molecular Neuroscience.
[51] Y. Fujito,et al. Learning-Dependent Gene Expression of CREB1 Isoforms in the Molluscan Brain , 2010, Frontiers in behavioral neuroscience.
[52] S. Babri,et al. Intracerebroventricular insulin improves spatial learning and memory in male Wistar rats. , 2009, Behavioral neuroscience.
[53] K. Parker,et al. Synapse‐specific changes in serotonin signalling contribute to age‐related changes in the feeding behaviour of the pond snail, Lymnaea , 2008, Journal of neurochemistry.
[54] D L Alkon,et al. Intracellular calcium signals are enhanced for days after Pavlovian conditioning. , 2008, Journal of neurochemistry.
[55] Hollis T. Cline,et al. Insulin Receptor Signaling Regulates Synapse Number, Dendritic Plasticity, and Circuit Function In Vivo , 2008, Neuron.
[56] K. Gerozissis. Brain insulin, energy and glucose homeostasis; genes, environment and metabolic pathologies. , 2008, European journal of pharmacology.
[57] P. Mehta,et al. Intranasal insulin improves cognition and modulates β-amyloid in early AD , 2008, Neurology.
[58] Y. Fujito,et al. One-trial conditioned taste aversion in Lymnaea: good and poor performers in long-term memory acquisition , 2007, Journal of Experimental Biology.
[59] K. Parker,et al. Effects of age on feeding behavior and chemosensory processing in the pond snail, Lymnaea stagnalis , 2006, Neurobiology of Aging.
[60] K. Lukowiak,et al. Altered gene activity correlated with long‐term memory formation of conditioned taste aversion in Lymnaea , 2006, Journal of neuroscience research.
[61] Koutarou D. Kimura,et al. Insulin-like signaling and the neural circuit for integrative behavior in C. elegans. , 2006, Genes & development.
[62] H. Aonuma,et al. De Novo synthesis of CREB in a presynaptic neuron is required for synaptic enhancement involved in memory consolidation , 2006, Journal of neuroscience research.
[63] W. Schafer,et al. The Insulin/PI 3-Kinase Pathway Regulates Salt Chemotaxis Learning in Caenorhabditis elegans , 2006, Neuron.
[64] J. Byrne,et al. The 5-HT- and FMRFa-activated signaling pathways interact at the level of the Erk MAPK cascade: Potential inhibitory constraints on memory formation , 2006, Neuroscience Letters.
[65] K. Lukowiak,et al. Taste discrimination in conditioned taste aversion of the pond snail Lymnaea stagnalis , 2006, Journal of Experimental Biology.
[66] G. Schellenberg,et al. Effects of intranasal insulin on cognition in memory-impaired older adults: Modulation by APOE genotype , 2006, Neurobiology of Aging.
[67] G. Kemenes,et al. Requirement of new protein synthesis of a transcription factor for memory consolidation: paradoxical changes in mRNA and protein levels of C/EBP. , 2006, Journal of molecular biology.
[68] Shin Murakami,et al. Aging-Dependent and -Independent Modulation of Associative Learning Behavior by Insulin/Insulin-Like Growth Factor-1 Signal in Caenorhabditis elegans , 2005, The Journal of Neuroscience.
[69] D. Alkon,et al. Insulin receptor signaling in long-term memory consolidation following spatial learning. , 2005, Learning & memory.
[70] M. Adams,et al. Functional characterization of des-IGF-1 action at excitatory synapses in the CA1 region of rat hippocampus. , 2005, Journal of neurophysiology.
[71] K. Lukowiak,et al. Determination of the exact copy numbers of particular mRNAs in a single cell by quantitative real-time RT-PCR , 2005, Journal of Experimental Biology.
[72] Etsuro Ito,et al. Expression and distribution of transcription factor CCAAT/enhancer-binding protein in the central nervous system of Lymnaea stagnalis , 2004, Cell and Tissue Research.
[73] M. Sakakibara,et al. Conditioned taste aversion with sucrose and tactile stimuli in the pond snail Lymnaea stagnalis , 2004, Neurobiology of Learning and Memory.
[74] K. Lukowiak,et al. CREB in the pond snail Lymnaea stagnalis: cloning, gene expression, and function in identifiable neurons of the central nervous system. , 2004, Journal of neurobiology.
[75] E. Ito,et al. The Early Snail Acquires the Learning. Comparison of Scores for Conditioned Taste Aversion Between Morning and Afternoon , 2004, Acta biologica Hungarica.
[76] I. Kemenes,et al. Cyclic AMP response element‐binding (CREB)‐like proteins in a molluscan brain: cellular localization and learning‐induced phosphorylation , 2003, The European journal of neuroscience.
[77] Dimitris Thanos,et al. Integration of Long-Term-Memory-Related Synaptic Plasticity Involves Bidirectional Regulation of Gene Expression and Chromatin Structure , 2002, Cell.
[78] F. Bloom,et al. Phosphatidylinositol 3-Kinase Is Required for the Expression But Not for the Induction or the Maintenance of Long-Term Potentiation in the Hippocampal CA1 Region , 2002, The Journal of Neuroscience.
[79] S Kojima,et al. Optical detection of neuromodulatory effects of conditioned taste aversion in the pond snail Lymnaea stagnalis. , 2001, Journal of neurobiology.
[80] Paul R. Benjamin,et al. Extrinsic Modulation and Motor Pattern Generation in a Feeding Network: a Cellular Study , 2001, The Journal of Neuroscience.
[81] K. Lukowiak,et al. The respiratory central pattern generator of Lymnaea: a model, measured and malleable. , 2000, Respiration physiology.
[82] I. Izquierdo,et al. Different hippocampal molecular requirements for short- and long-term retrieval of one-trial avoidance learning , 2000, Behavioural Brain Research.
[83] C. Elliott,et al. Comparative pharmacology of feeding in molluscs , 2000, Acta biologica Hungarica.
[84] K. Staras,et al. A systems approach to the cellular analysis of associative learning in the pond snail Lymnaea. , 2000, Learning & memory.
[85] D. Alkon,et al. Brain Insulin Receptors and Spatial Memory , 1999, The Journal of Biological Chemistry.
[86] K. Lukowiak,et al. Learning, memory and a respiratory central pattern generator. , 1999, Comparative biochemistry and physiology. Part A, Molecular & integrative physiology.
[87] S. Kojima,et al. Associative Learning in the Pond Snail, Lymnaea stagnalis , 1999 .
[88] Y. Fujito,et al. Physiological characterization of lip and tentacle nerves in Lymnaea stagnalis , 1999, Neuroscience Research.
[89] E. Ito,et al. Three-dimensional Reconstruction and Mapping of Serotonin-like Immunoreactive Neurons in the Central Nervous System of the Pond Snail, Lymnaea stagnalis, with the Confocal Laser Scanning Microscope , 1999 .
[90] Y. Fujito,et al. Histological characterization of lip and tentacle nerves in Lymnaea stagnalis , 1999, Neuroscience Research.
[91] S. Kojima,et al. Developmental Changes in Conditioned Taste Aversion in Lymnaea stagnalis , 1999 .
[92] C. Baratti,et al. Effects of Posttraining Administration of Insulin on Retention of a Habituation Response in Mice: Participation of a Central Cholinergic Mechanism , 1999, Neurobiology of Learning and Memory.
[93] Y. Fujito,et al. Sensory preconditioning for feeding response in the pond snail, Lymnaea stagnalis , 1998, Brain Research.
[94] Y. Fujito,et al. Operant Conditioning of Escape Behavior in the Pond Snail, Lymnaea stagnalis , 1998 .
[95] G. Biessels,et al. Water maze learning and hippocampal synaptic plasticity in streptozotocin-diabetic rats: effects of insulin treatment , 1998, Brain Research.
[96] A. Bulloch,et al. Developmental plasticity of respiratory behavior in Lymnaea. , 1998, Behavioral neuroscience.
[97] K. Staras,et al. Neurophysiological correlates of unconditioned and conditioned feeding behavior in the pond snail Lymnaea stagnalis. , 1998, Journal of neurophysiology.
[98] Shin Nagayama,et al. Enhancement of an inhibitory input to the feeding central pattern generator in Lymnaea stagnalis during conditioned taste-aversion learning , 1997, Neuroscience Letters.
[99] Y. Fujito,et al. Differential Neuroethological Effects of Aversive and Appetitive Reinforcing Stimuli on Associative Learning in Lymnaea stagnalis , 1996 .
[100] C. Mccrohan,et al. FOOD-RELATED CONDITIONING AND NEURONAL CORRELATES IN THE FRESHWATER SNAIL LYMNAEA STAGNALIS , 1996 .
[101] C. Baratti,et al. Effects of Posttraining Administration of Glucose on Retention of a Habituation Response in Mice: Participation of a Central Cholinergic Mechanism , 1996, Neurobiology of Learning and Memory.
[102] L. Kaczmarek,et al. Insulin receptor in Aplysia neurons: characterization, molecular cloning, and modulation of ion currents , 1996, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[103] C. Baratti,et al. Memory Modulation by Post-training Glucose or Insulin Remains Evident at Long Retention Intervals , 1996, Neurobiology of Learning and Memory.
[104] E. Ringseis,et al. Operant conditioning of aerial respiratory behaviour in Lymnaea stagnalis , 1996, The Journal of experimental biology.
[105] D. Johnston,et al. Changes in paired-pulse facilitation suggest presynaptic involvement in long-term potentiation , 1994, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[106] G. Kemenes,et al. Training in a novel environment improves the appetitive learning performance of the snail, Lymnaea stagnalis. , 1994, Behavioral and neural biology.
[107] D. Beju,et al. Immunohistochemical and in situ hybridization study of an insulin-like substance in fetal neuron cell cultures , 1994, Brain Research.
[108] M. Raizada,et al. The cellular and physiological actions of insulin in the central nervous system , 1993, Neurochemistry International.
[109] A. Bulloch,et al. Transplantation and functional integration of an identified respiratory interneuron in lymnaea stagnalis , 1992, Neuron.
[110] A. Bulloch,et al. In vitro reconstruction of the respiratory central pattern generator of the mollusk Lymnaea. , 1990, Science.
[111] P. Benjamin,et al. Appetitive learning in snails shows characteristics of conditioning in vertebrates , 1989, Brain Research.
[112] G. Kemenes,et al. A comparison of four techniques for mapping the distribution of serotonin and serotonin-containing neurons in fixed and living ganglia of the snail,Lymnaea , 1989, Journal of neurocytology.
[113] H. Bernstein,et al. Intracerebroventricular administration of insulin attenuates retrieval of a passive avoidance response in rats , 1989, Neuropeptides.
[114] A. Smit,et al. Growth-controlling molluscan neurons produce the precursor of an insulin-related peptide , 1988, Nature.
[115] A. Thorpe,et al. Insulin found at last? , 1988, Nature.
[116] W. Geraerts,et al. The brain of Lymnaea contains a family of FMRFamide-like peptides , 1987, Peptides.
[117] K. Siddle,et al. Insulin-like and insulin-inhibitory effects of monoclonal antibodies for different epitopes on the human insulin receptor. , 1987, The Biochemical journal.
[118] K. Siddle,et al. Monoclonal antibodies reacting with multiple epitopes on the human insulin receptor. , 1986, The Biochemical journal.
[119] C. Mccrohan,et al. Synaptic relationships of the cerebral giant cells with motoneurones in the feeding system of Lymnaea stagnalis. , 1980, The Journal of experimental biology.
[120] C. Mccrohan,et al. Patterns of activity and axonal projections of the cerebral giant cells of the snail, Lymnaea stagnalis. , 1980, The Journal of experimental biology.
[121] A. Gelperin. Rapid food-aversion learning by a terrestrial mollusk. , 1975, Science.
[122] D. Alkon. Associative Training of Hermissenda , 1974, The Journal of general physiology.
[123] L. Tauc,et al. Habituation at the Synaptic Level in Aplysia , 1966, Nature.
[124] A. Teleman. Molecular mechanisms of metabolic regulation by insulin in Drosophila. , 2009, The Biochemical journal.
[125] M. Reger,et al. Intranasal insulin improves cognition and modulates beta-amyloid in early AD. , 2008, Neurology.
[126] P. Gean,et al. Involvement of Mitogen-Activated Protein Kinase in Hippocampal Long-Term Potentiation , 1999, Journal of Biomedical Science.
[127] A. Thorpe,et al. Invertebrate neuroendocrinology. Insulin found at last? , 1988, Nature.