Reward Learning Requires Activity of Matrix Metalloproteinase-9 in the Central Amygdala
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Ewelina Knapska | Mayank Chaturvedi | Gabriela Mochol | Grzegorz M. Wilczynski | Marcin Balcerzyk | Anna Kiryk | Leszek Kaczmarek | L. Kaczmarek | M. Balcerzyk | G. Wilczynski | D. Wójcik | Gabriela Mochol | P. Michaluk | E. Knapska | M. Chaturvedi | Tomasz Górkiewicz | Maciej Gawlak | V. Lioudyno | A. Kiryk | M. Mikosz | T. Górkiewicz | M. Gawlak | Victoria Lioudyno | Piotr Michaluk | Marta Mikosz | Daniel K. Wojcik
[1] Deborah C. Mash,et al. Gene Expression in Human Hippocampus from Cocaine Abusers Identifies Genes which Regulate Extracellular Matrix Remodeling , 2007, PloS one.
[2] A. Vyssotski,et al. A comparison of wild-caught wood mice and bank voles in the Intellicage: assessing exploration, daily activity patterns and place learning paradigms , 2005, Behavioural Brain Research.
[3] L. Kaczmarek,et al. β-Dystroglycan as a Target for MMP-9, in Response to Enhanced Neuronal Activity* , 2007, Journal of Biological Chemistry.
[4] L. Lénárd,et al. Positive reinforcing effects of substance P in the rat central nucleus of amygdala , 2009, Behavioural Brain Research.
[5] L. Kaczmarek,et al. JunB is a repressor of MMP-9 transcription in depolarized rat brain neurons , 2009, Molecular and Cellular Neuroscience.
[6] L. Lénárd,et al. The role of neurotensin in positive reinforcement in the rat central nucleus of amygdala , 2010, Behavioural Brain Research.
[7] K. Deisseroth,et al. Optogenetic stimulation of a hippocampal engram activates fear memory recall , 2012, Nature.
[8] Trevor W Robbins,et al. Appetitive Behavior , 2003, Annals of the New York Academy of Sciences.
[9] J. Power,et al. The amygdaloid complex: anatomy and physiology. , 2003, Physiological reviews.
[10] R. Dai,et al. IL‐6 Modulates Hyperglycemia‐Induced Changes of Na+ Channel Beta‐3 Subunit Expression by Schwann Cells , 2003, Annals of the New York Academy of Sciences.
[11] K. W. Young,et al. Neuropsin cleaves EphB2 in the amygdala to control anxiety , 2011, Nature.
[12] J. Bossert,et al. Targeted disruption of cocaine-activated accumbens neurons prevents context-specific sensitization , 2009, Nature Neuroscience.
[13] L. Kaczmarek. Molecular biology of vertebrate learning: Is c‐fos a new beginning? , 1993, Journal of neuroscience research.
[14] Y. Shaham,et al. Ventral medial prefrontal cortex neuronal ensembles mediate context-induced relapse to heroin , 2011, Nature Neuroscience.
[15] L. Kaczmarek,et al. Brain-Derived Neurotrophic Factor Induces Matrix Metalloproteinase 9 Expression in Neurons via the Serum Response Factor/c-Fos Pathway , 2013, Molecular and Cellular Biology.
[16] T. Jay,et al. TIMP-1 Abolishes MMP-9-Dependent Long-lasting Long-term Potentiation in the Prefrontal Cortex , 2007, Biological Psychiatry.
[17] G. Schoenbaum,et al. Orbitofrontal cortex and basolateral amygdala encode expected outcomes during learning , 1998, Nature Neuroscience.
[18] L. Kaczmarek,et al. Matrix metalloproteinases in the adult brain physiology: a link between c‐Fos, AP‐1 and remodeling of neuronal connections? , 2002, The EMBO journal.
[19] L. Kaczmarek,et al. High resolution in situ zymography reveals matrix metalloproteinase activity at glutamatergic synapses , 2009, Neuroscience.
[20] Ewelina Knapska,et al. Differential involvement of the central amygdala in appetitive versus aversive learning. , 2006, Learning & memory.
[21] J. Johnston. Further contributions to the study of the evolution of the forebrain , 1923 .
[22] D. Clapham,et al. Essential Role for TRPC5 in Amygdala Function and Fear-Related Behavior , 2009, Cell.
[23] L. Kaczmarek,et al. Matrix Metalloproteinase-9 Gene and Bipolar Mood Disorder , 2009, NeuroMolecular Medicine.
[24] L. Kaczmarek,et al. Defensive conditioning-related functional heterogeneity among nuclei of the rat amygdala revealed by c-Fos mapping , 1999, Neuroscience.
[25] James L Olds,et al. AMYGDALOID STIMULATION AND OPERANT REINFORCEMENT IN THE RAT. , 1963, Journal of comparative and physiological psychology.
[26] Ewelina Knapska,et al. Functional internal complexity of amygdala: focus on gene activity mapping after behavioral training and drugs of abuse. , 2007, Physiological reviews.
[27] Mikel L. Olson,et al. Effects of extracellular matrix‐degrading proteases matrix metalloproteinases 3 and 9 on spatial learning and synaptic plasticity , 2006, Journal of neurochemistry.
[28] B. McEwen,et al. Tissue plasminogen activator in the amygdala is critical for stress-induced anxiety-like behavior , 2003, Nature Neuroscience.
[29] L. Kaczmarek,et al. Functional polymorphism of the matrix metalloproteinase-9 (MMP-9) gene in schizophrenia , 2009, Schizophrenia Research.
[30] M. Holahan,et al. Intra-amygdala muscimol injections impair freezing and place avoidance in aversive contextual conditioning. , 2004, Learning & memory.
[31] Joseph J. Paton,et al. Expectation Modulates Neural Responses to Pleasant and Aversive Stimuli in Primate Amygdala , 2007, Neuron.
[32] N. Tronson,et al. Fear conditioning and extinction: emotional states encoded by distinct signaling pathways , 2012, Trends in Neurosciences.
[33] E. Jolkkonen,et al. Anatomic heterogeneity of the rat amygdaloid complex. , 2000, Folia morphologica.
[34] Katherine E. Prater,et al. Disrupted amygdalar subregion functional connectivity and evidence of a compensatory network in generalized anxiety disorder. , 2009, Archives of general psychiatry.
[35] Edward T. Bullmore,et al. Plasma Protein Biomarkers for Depression and Schizophrenia by Multi Analyte Profiling of Case-Control Collections , 2010, PloS one.
[36] Joseph J. Paton,et al. The primate amygdala represents the positive and negative value of visual stimuli during learning , 2006, Nature.
[37] M. Zarrindast,et al. Functional interaction between morphine and central amygdala cannabinoid CB1 receptors in the acquisition and expression of conditioned place preference , 2011, Behavioural Brain Research.
[38] L. Kaczmarek,et al. Matrix Metalloproteinase (MMP) 9 Transcription in Mouse Brain Induced by Fear Learning* , 2013, The Journal of Biological Chemistry.
[39] Michael B. Stadler,et al. Encoding of conditioned fear in central amygdala inhibitory circuits , 2010, Nature.
[40] E. Murray. The amygdala, reward and emotion , 2007, Trends in Cognitive Sciences.
[41] P. Holland,et al. Amygdala–frontal interactions and reward expectancy , 2004, Current Opinion in Neurobiology.
[42] Andreas Lüthi,et al. Perineuronal Nets Protect Fear Memories from Erasure , 2009, Science.
[43] L. Kaczmarek,et al. Metzincin Proteases and Their Inhibitors: Foes or Friends in Nervous System Physiology? , 2010, The Journal of Neuroscience.
[44] Raymond P. Kesner,et al. Central but not basolateral amygdala mediates memory for positive affective experiences , 1989, Behavioural Brain Research.
[45] L. Kaczmarek,et al. Neuroprotection from Tissue Inhibitor of Metalloproteinase-1 and its nanoparticles , 2012, Neurochemistry International.
[46] Sara E. Morrison,et al. Re-valuing the amygdala , 2010, Current Opinion in Neurobiology.
[47] Jakub Wlodarczyk,et al. Influence of matrix metalloproteinase MMP-9 on dendritic spine morphology , 2011, Journal of Cell Science.
[48] L. Kaczmarek,et al. Important role of matrix metalloproteinase 9 in epileptogenesis , 2008, The Journal of cell biology.
[49] Michelle N. Ngo,et al. Minocycline promotes dendritic spine maturation and improves behavioural performance in the fragile X mouse model , 2008, Journal of Medical Genetics.
[50] Joseph E LeDoux,et al. Molecular Mechanisms of Fear Learning and Memory , 2011, Cell.
[51] K. Berridge,et al. Which Cue to “Want?” Central Amygdala Opioid Activation Enhances and Focuses Incentive Salience on a Prepotent Reward Cue , 2009, The Journal of Neuroscience.
[52] L. Kaczmarek,et al. Functional polymorphism of matrix metalloproteinase-9 (MMP-9) gene in alcohol dependence: Family and case control study , 2010, Brain Research.
[53] Qiang Zhou,et al. Extracellular proteolysis by matrix metalloproteinase-9 drives dendritic spine enlargement and long-term potentiation coordinately , 2008, Proceedings of the National Academy of Sciences.
[54] Patricia H. Janak,et al. Substantial similarity in amygdala neuronal activity during conditioned appetitive and aversive emotional arousal , 2009, Proceedings of the National Academy of Sciences.
[55] K. Deisseroth,et al. Input-specific control of reward and aversion in the ventral tegmental area , 2012, Nature.
[56] G. W. Huntley. Synaptic circuit remodelling by matrix metalloproteinases in health and disease , 2012, Nature Reviews Neuroscience.
[57] Alcino J. Silva,et al. Matrix Metalloproteinase-9 Is Required for Hippocampal Late-Phase Long-Term Potentiation and Memory , 2006, The Journal of Neuroscience.
[58] T. Humphrey. The telencephalon of the bat. I. The non‐cortical nuclear masses and certain pertinent fiber connections , 1936 .
[59] E. Kandel,et al. stathmin, a Gene Enriched in the Amygdala, Controls Both Learned and Innate Fear , 2005, Cell.
[60] T. Robbins,et al. Effects of selective excitotoxic lesions of the nucleus accumbens core, anterior cingulate cortex, and central nucleus of the amygdala on autoshaping performance in rats. , 2002, Behavioral neuroscience.
[61] L. Kaczmarek,et al. Neuronal Excitation-driven and AP-1-dependent Activation of Tissue Inhibitor of Metalloproteinases-1 Gene Expression in Rodent Hippocampus* , 1999, The Journal of Biological Chemistry.
[62] Lief E. Fenno,et al. Amygdala circuitry mediating reversible and bidirectional control of anxiety , 2011, Nature.