Regulation of Circadian Genes by the MAPK Pathway: Implications for Rapid Antidepressant Action
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[1] S. Honma. The mammalian circadian system: a hierarchical multi-oscillator structure for generating circadian rhythm , 2018, The Journal of Physiological Sciences.
[2] Xiaotao Li,et al. The Antidepressant Effect of Light Therapy from Retinal Projections , 2018, Neuroscience Bulletin.
[3] K. Hashimoto,et al. Mechanistic Target of Rapamycin–Independent Antidepressant Effects of (R)-Ketamine in a Social Defeat Stress Model , 2018, Biological Psychiatry.
[4] S. Birnbaum,et al. TrkB dependent adult hippocampal progenitor differentiation mediates sustained ketamine antidepressant response , 2017, Nature Communications.
[5] G. Nowak,et al. Involvement of extracellular signal-regulated kinase (ERK) in the short and long-lasting antidepressant-like activity of NMDA receptor antagonists (zinc and Ro 25-6981) in the forced swim test in rats , 2017, Neuropharmacology.
[6] M. Barrot,et al. Cingulate Overexpression of Mitogen-Activated Protein Kinase Phosphatase-1 as a Key Factor for Depression , 2017, Biological Psychiatry.
[7] E. Ballard,et al. Motor-Activity Markers of Circadian Timekeeping Are Related to Ketamine’s Rapid Antidepressant Properties , 2017, Biological Psychiatry.
[8] W. Bunney,et al. A Circadian Genomic Signature Common to Ketamine and Sleep Deprivation in the Anterior Cingulate Cortex , 2017, Biological Psychiatry.
[9] Zachary S. Lorsch,et al. Sex-specific transcriptional signatures in human depression , 2017, Nature Medicine.
[10] G. Prusky,et al. Mood, the Circadian System, and Melanopsin Retinal Ganglion Cells. , 2017, Annual review of neuroscience.
[11] R. Heumann,et al. Ras Activity Tunes the Period and Modulates the Entrainment of the Suprachiasmatic Clock , 2017, Front. Neurol..
[12] U. Albrecht. Molecular Mechanisms in Mood Regulation Involving the Circadian Clock , 2017, Front. Neurol..
[13] R. Heumann,et al. Ras Activity Oscillates in the Mouse Suprachiasmatic Nucleus and Modulates Circadian Clock Dynamics , 2016, Molecular Neurobiology.
[14] R. Heumann,et al. Signaling pathways regulating Homer1a expression: implications for antidepressant therapy , 2016, Biological chemistry.
[15] Andrea G. Gillman,et al. Chronic Stress Induces Brain Region-Specific Alterations of Molecular Rhythms that Correlate with Depression-like Behavior in Mice , 2015, Biological Psychiatry.
[16] C. Normann,et al. Increased Signaling via Adenosine A1 Receptors, Sleep Deprivation, Imipramine, and Ketamine Inhibit Depressive-like Behavior via Induction of Homer1a , 2015, Neuron.
[17] S. Ceccatelli,et al. Alterations in circadian entrainment precede the onset of depression-like behavior that does not respond to fluoxetine , 2015, Translational Psychiatry.
[18] K. Hashimoto,et al. Alterations of the daily rhythms of HPT axis induced by chronic unpredicted mild stress in rats , 2015, Endocrine.
[19] R. Myers,et al. Circadian dysregulation of clock genes: clues to rapid treatments in major depressive disorder , 2014, Molecular Psychiatry.
[20] H. Abelaira,et al. MAPK signaling correlates with the antidepressant effects of ketamine. , 2014, Journal of psychiatric research.
[21] Samer Hattar,et al. Light as a central modulator of circadian rhythms, sleep and affect , 2014, Nature Reviews Neuroscience.
[22] Ulf Leser,et al. Ras-Mediated Deregulation of the Circadian Clock in Cancer , 2014, PLoS genetics.
[23] Lin Lu,et al. Diurnal alterations in circadian genes and peptides in major depressive disorder before and after escitalopram treatment , 2013, Psychoneuroendocrinology.
[24] C. McClung,et al. How Might Circadian Rhythms Control Mood? Let Me Count the Ways... , 2013, Biological Psychiatry.
[25] M. Nayeem,et al. Adenosine A1 Receptors Link to Smooth Muscle Contraction Via CYP4a, protein kinase C-&agr;, and ERK1/2 , 2013, Journal of cardiovascular pharmacology.
[26] W. Bunney,et al. Mechanisms of Rapid Antidepressant Effects of Sleep Deprivation Therapy: Clock Genes and Circadian Rhythms , 2013, Biological Psychiatry.
[27] W. Marsden. Synaptic plasticity in depression: Molecular, cellular and functional correlates , 2013, Progress in Neuro-Psychopharmacology and Biological Psychiatry.
[28] I. Alhaider,et al. Regular exercise prevents sleep deprivation associated impairment of long-term memory and synaptic plasticity in the CA1 area of the hippocampus. , 2013, Sleep.
[29] B. D. Benedetto,et al. Acute antidepressant treatment differently modulates ERK/MAPK activation in neurons and astrocytes of the adult mouse prefrontal cortex , 2013, Neuroscience.
[30] T. Todo,et al. Circadian clock-controlled diurnal oscillation of Ras/ERK signaling in mouse liver , 2013, Proceedings of the Japan Academy. Series B, Physical and biological sciences.
[31] D. Hines,et al. Antidepressant effects of sleep deprivation require astrocyte-dependent adenosine mediated signaling , 2013, Translational Psychiatry.
[32] Jie Shi,et al. Hippocampal CLOCK protein participates in the persistence of depressive-like behavior induced by chronic unpredictable stress , 2012, Psychopharmacology.
[33] De-xiang Liu,et al. Curcumin produces antidepressant effects via activating MAPK/ERK-dependent brain-derived neurotrophic factor expression in the amygdala of mice , 2012, Behavioural Brain Research.
[34] Su-Xia Li,et al. Swimming exercise may not alleviate the depressive-like behaviors and circadian alterations of neuroendocrine induced by chronic unpredictable mild stress in rats , 2012 .
[35] J. Takahashi,et al. Central and peripheral circadian clocks in mammals. , 2012, Annual review of neuroscience.
[36] T. Partonen. Clock gene variants in mood and anxiety disorders , 2012, Journal of Neural Transmission.
[37] J. Sabourin,et al. Adenosine A1 receptor activation is arrhythmogenic in the developing heart through NADPH oxidase/ERK- and PLC/PKC-dependent mechanisms. , 2011, Journal of molecular and cellular cardiology.
[38] Samer Hattar,et al. Intrinsically photosensitive retinal ganglion cells: many subtypes, diverse functions , 2011, Trends in Neurosciences.
[39] G. Burnstock,et al. Purinergic signalling: From normal behaviour to pathological brain function , 2011, Progress in Neurobiology.
[40] C. McClung,et al. Circadian rhythms and mood regulation: Insights from pre-clinical models , 2011, European Neuropsychopharmacology.
[41] R. Seger,et al. The MAPK cascades: signaling components, nuclear roles and mechanisms of nuclear translocation. , 2011, Biochimica et biophysica acta.
[42] W. Bunney,et al. Ketamine Influences CLOCK:BMAL1 Function Leading to Altered Circadian Gene Expression , 2011, PloS one.
[43] Jie Shi,et al. Chronic unpredictable stress induces a reversible change of PER2 rhythm in the suprachiasmatic nucleus , 2011, Brain Research.
[44] G. Burnstock,et al. Electroconvulsive therapy: a novel hypothesis for the involvement of purinergic signalling , 2011, Purinergic Signalling.
[45] N. Zhang,et al. Possible antidepressant effects and mechanisms of memantine in behaviors and synaptic plasticity of a depression rat model , 2011, Neuroscience.
[46] Abraham Weizman,et al. The Effects of Fluoxetine Treatment in a Chronic Mild Stress Rat Model on Depression-Related Behavior, Brain Neurotrophins and ERK Expression , 2011, Journal of Molecular Neuroscience.
[47] Steve A. Kay,et al. Clocks not winding down: unravelling circadian networks , 2010, Nature Reviews Molecular Cell Biology.
[48] H. Schmidt,et al. A negative regulator of MAP kinase causes depressive behavior. , 2010, Nature medicine.
[49] H. Schmidt,et al. Negative Regulator of MAP Kinase is Increased in Depression and Is Necessary and Sufficient for Expression of Depressive Behavior , 2010, Nature Medicine.
[50] H. Manji,et al. Altered levels of extracellular signal-regulated kinase signaling proteins in postmortem frontal cortex of individuals with mood disorders and schizophrenia. , 2010, Journal of affective disorders.
[51] Michael Hawrylycz,et al. Molecular and Anatomical Signatures of Sleep Deprivation in the Mouse Brain , 2010, Front. Neurosci..
[52] J. Dobson,et al. Myocardial adenosine A(1)-receptor-mediated adenoprotection involves phospholipase C, PKC-epsilon, and p38 MAPK, but not HSP27. , 2010, American journal of physiology. Heart and circulatory physiology.
[53] E. Nestler,et al. From synapse to nucleus: Novel targets for treating depression , 2010, Neuropharmacology.
[54] U. Schibler,et al. The mammalian circadian timing system: organization and coordination of central and peripheral clocks. , 2010, Annual review of physiology.
[55] Clement Hamani,et al. Antidepressant-Like Effects of Medial Prefrontal Cortex Deep Brain Stimulation in Rats , 2010, Biological Psychiatry.
[56] Weiwen Wang,et al. A role for the extracellular signal-regulated kinase signal pathway in depressive-like behavior , 2009, Behavioural Brain Research.
[57] R. McCarley,et al. Sleep deprivation increases A1 adenosine receptor density in the rat brain , 2009, Brain Research.
[58] Yogesh K. Dwivedi,et al. Neurotrophin Receptor Activation and Expression in Human Postmortem Brain: Effect of Suicide , 2009, Biological Psychiatry.
[59] T. Jay,et al. Antidepressants reverse the attenuation of the neurotrophic MEK/MAPK cascade in frontal cortex by elevated platform stress; reversal of effects on LTP is associated with GluA1 phosphorylation , 2009, Neuropharmacology.
[60] M. Antle,et al. Non‐photic phase shifting of the circadian clock: role of the extracellular signal‐responsive kinases I/II/mitogen‐activated protein kinase pathway , 2008, The European journal of neuroscience.
[61] M. Higashida,et al. Activation of adenosine A1 receptor–induced neural stem cell proliferation via MEK/ERK and Akt signaling pathways , 2008, Journal of neuroscience research.
[62] Sung Han,et al. Circadian oscillation of hippocampal MAPK activity and cAMP: implications for memory persistence , 2008, Nature Neuroscience.
[63] E. Lein,et al. Sleep Deprivation Effects on Circadian Clock Gene Expression in the Cerebral Cortex Parallel Electroencephalographic Differences among Mouse Strains , 2008, The Journal of Neuroscience.
[64] U. Albrecht,et al. The circadian clock and mood-related behavior , 2008, Communicative & integrative biology.
[65] T. Jay,et al. Protection of stress-induced impairment of hippocampal/prefrontal LTP through blockade of glucocorticoid receptors Implication of MEK signaling , 2008, Experimental Neurology.
[66] Gudrun Ahnert-Hilger,et al. Regulation of Monoamine Oxidase A by Circadian-Clock Components Implies Clock Influence on Mood , 2008, Current Biology.
[67] S. Pradervand,et al. Homer1a is a core brain molecular correlate of sleep loss , 2007, Proceedings of the National Academy of Sciences.
[68] R. McCarley,et al. Sleep deprivation upregulates A1 adenosine receptors in the rat basal forebrain , 2007, Neuroreport.
[69] C. McClung,et al. Circadian genes, rhythms and the biology of mood disorders. , 2007, Pharmacology & therapeutics.
[70] Kole T. Roybal,et al. Mania-like behavior induced by disruption of CLOCK , 2007, Proceedings of the National Academy of Sciences.
[71] Yogesh K. Dwivedi,et al. Aberrant Extracellular Signal-Regulated Kinase (ERK) 5 Signaling in Hippocampus of Suicide Subjects , 2007, Neuropsychopharmacology.
[72] R. Duman,et al. A Role for MAP Kinase Signaling in Behavioral Models of Depression and Antidepressant Treatment , 2007, Biological Psychiatry.
[73] H. Haas,et al. Sleep Deprivation Increases A1 Adenosine Receptor Binding in the Human Brain: A Positron Emission Tomography Study , 2007, The Journal of Neuroscience.
[74] Junfa Li,et al. The depressive-like behaviors are correlated with decreased phosphorylation of mitogen-activated protein kinases in rat brain following chronic forced swim stress , 2006, Behavioural Brain Research.
[75] S. Kay,et al. Second messenger and Ras/MAPK signalling pathways regulate CLOCK/CYCLE‐dependent transcription , 2006, Journal of neurochemistry.
[76] Yael Bromberg,et al. The Neuroprotective Adenosine-Activated Signal Transduction Pathway Involves Activation of Phospholipase C , 2006, Nucleosides, nucleotides & nucleic acids.
[77] Anna Wirz-Justice,et al. Biological rhythm disturbances in mood disorders , 2006, International clinical psychopharmacology.
[78] R. Heumann,et al. Constitutive Activation of Ras in Neurons: Implications for the Regulation of the Mammalian Circadian Clock , 2006, Chronobiology international.
[79] K. Biber,et al. The Role of Glial Adenosine Receptors in Neural Resilience and the Neurobiology of Mood Disorders , 2005, Neurochemical Research.
[80] D. Skene,et al. Nonphotic Entrainment in Humans? , 2005, Journal of biological rhythms.
[81] Kenneth P. Wright,et al. Entrainment of the Human Circadian System by Light , 2005, Journal of biological rhythms.
[82] A. Coogan,et al. Dark pulse suppression of P‐ERK and c‐Fos in the hamster suprachiasmatic nuclei , 2005, The European journal of neuroscience.
[83] Masamitsu Iino,et al. System-level identification of transcriptional circuits underlying mammalian circadian clocks , 2005, Nature Genetics.
[84] Qun He,et al. Regulation of the Neurospora circadian clock by an RNA helicase. , 2005, Genes & development.
[85] L. Miraglia,et al. A Functional Genomics Strategy Reveals Rora as a Component of the Mammalian Circadian Clock , 2004, Neuron.
[86] A. Coogan,et al. MAP kinases in the mammalian circadian system – key regulators of clock function , 2004, Journal of neurochemistry.
[87] J. Blenis,et al. ERK and p38 MAPK-Activated Protein Kinases: a Family of Protein Kinases with Diverse Biological Functions , 2004, Microbiology and Molecular Biology Reviews.
[88] Q. Tang,et al. Glutamate signaling to ras-MAPK in striatal neurons , 2004, Molecular Neurobiology.
[89] Boyoung Lee,et al. Light‐ and clock‐dependent regulation of ribosomal S6 kinase activity in the suprachiasmatic nucleus , 2004, The European journal of neuroscience.
[90] Boyoung Lee,et al. Temporal regulation of light-induced extracellular signal-regulated kinase activation in the suprachiasmatic nucleus. , 2003, Journal of neurophysiology.
[91] Greg Q. Butcher,et al. The ERK/MAP kinase pathway couples light to immediate‐early gene expression in the suprachiasmatic nucleus , 2003, The European journal of neuroscience.
[92] P. Franken,et al. A role for cryptochromes in sleep regulation , 2002, BMC Neuroscience.
[93] T. Kawamoto,et al. Dec1 and Dec2 are regulators of the mammalian molecular clock , 2002, Nature.
[94] Greg Q. Butcher,et al. The p42/44 Mitogen-activated Protein Kinase Pathway Couples Photic Input to Circadian Clock Entrainment* , 2002, The Journal of Biological Chemistry.
[95] C. Czeisler,et al. Absence of Circadian Phase Resetting in Response to Bright Light Behind the Knees , 2002, Science.
[96] Ueli Schibler,et al. The Orphan Nuclear Receptor REV-ERBα Controls Circadian Transcription within the Positive Limb of the Mammalian Circadian Oscillator , 2002, Cell.
[97] Paolo Sassone-Corsi,et al. Bimodal regulation of mPeriod promoters by CREB-dependent signaling and CLOCK/BMAL1 activity , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[98] Yogesh K. Dwivedi,et al. Reduced activation and expression of ERK1/2 MAP kinase in the post‐mortem brain of depressed suicide subjects , 2001, Journal of neurochemistry.
[99] Y. Fukada,et al. Circadian and photic regulation of MAP kinase by Ras‐ and protein phosphatase‐dependent pathways in the chick pineal gland , 2001, FEBS letters.
[100] R. Mistlberger,et al. Circadian Clock Resetting by Sleep Deprivation without Exercise in the Syrian Hamster , 2000, The Journal of Neuroscience.
[101] M. Gillette,et al. Differential cAMP Gating of Glutamatergic Signaling Regulates Long-Term State Changes in the Suprachiasmatic Circadian Clock , 2000, The Journal of Neuroscience.
[102] R. Kronauer,et al. Sensitivity of the human circadian pacemaker to nocturnal light: melatonin phase resetting and suppression , 2000, The Journal of physiology.
[103] K Kume,et al. Interacting molecular loops in the mammalian circadian clock. , 2000, Science.
[104] W. Bunney,et al. Molecular Clock Genes in Man and Lower Animals: Possible Implications for Circadian Abnormalities in Depression , 2000, Neuropsychopharmacology.
[105] E. Nishida,et al. Involvement of the MAP kinase cascade in resetting of the mammalian circadian clock. , 2000, Genes & development.
[106] S. Honma,et al. Circadian oscillation of BMAL1, a partner of a mammalian clock gene Clock, in rat suprachiasmatic nucleus. , 1998, Biochemical and biophysical research communications.
[107] U. Schibler,et al. A Serum Shock Induces Circadian Gene Expression in Mammalian Tissue Culture Cells , 1998, Cell.
[108] R. Kronauer,et al. Photopic transduction implicated in human circadian entrainment , 1997, Neuroscience Letters.
[109] Knut Biber,et al. Adenosine A1 Receptor-Mediated Activation of Phospholipase C in Cultured Astrocytes Depends on the Level of Receptor Expression , 1997, The Journal of Neuroscience.
[110] N. Mrosovsky. LOCOMOTOR ACTIVITY AND NON‐PHOTIC INFLUENCES ON CIRCADIAN CLOCKS , 1996, Biological reviews of the Cambridge Philosophical Society.
[111] R. Mistlberger,et al. Morphine phase-shifts circadian rhythms in mice: role of behavioural activation , 1995, Neuroreport.
[112] Anirvan Ghosh,et al. Calcium activation of Ras mediated by neuronal exchange factor Ras-GRF , 1995, Nature.
[113] M. Gillette,et al. Resetting the biological clock: mediation of nocturnal circadian shifts by glutamate and NO. , 1994, Science.
[114] B. Rusak,et al. Physiological mechanisms regulating photic induction of Fos-like protein in hamster suprachiasmatic nucleus , 1994, Neuroscience & Biobehavioral Reviews.
[115] F. Turek,et al. Phase-shifting effects of acute increases in activity on circadian locomotor rhythms in hamsters. , 1991, The American journal of physiology.
[116] J. Kornhauser,et al. Photic and circadian regulation of c-fos gene expression in the hamster suprachiasmatic nucleus , 1990, Neuron.
[117] F. Turek,et al. Stimulated activity mediates phase shifts in the hamster circadian clock induced by dark pulses or benzodiazepines , 1989, Nature.
[118] N. Mrosovsky,et al. Effects of Induced Wheel Running on the Circadian Activity Rhythms of Syrian Hamsters: Entrainment and Phase Response Curve , 1989, Journal of biological rhythms.
[119] D. Kupfer,et al. Social zeitgebers and biological rhythms. A unified approach to understanding the etiology of depression. , 1988, Archives of general psychiatry.
[120] L. Eiden,et al. PACAP signaling in stress: insights from the chromaffin cell , 2017, Pflügers Archiv - European Journal of Physiology.
[121] D. Bell-Pedersen,et al. Diverse roles for MAPK signaling in circadian clocks. , 2013, Advances in genetics.
[122] Takahiro Takano,et al. Adenosine is crucial for deep brain stimulation–mediated attenuation of tremor , 2008, Nature Medicine.
[123] Yogesh K. Dwivedi,et al. ERK MAP kinase signaling in post-mortem brain of suicide subjects: differential regulation of upstream Raf kinases Raf-1 and B-Raf , 2006, Molecular Psychiatry.
[124] N. Mrosovsky. Phase response curves for social entrainment , 2005, Journal of Comparative Physiology A.
[125] M. Gillette,et al. Response Element-binding Protein ( CREB )-dependent Activation of Per 1 Is Required for Light-induced Signaling in the Suprachiasmatic Nucleus Circadian Clock , 2002 .
[126] S. Reppert,et al. Molecular analysis of mammalian circadian rhythms. , 2001, Annual review of physiology.
[127] N. Mrosovsky. A non-photic gateway to the circadian clock of hamsters. , 1995, Ciba Foundation symposium.
[128] N. Mrosovsky,et al. Triazolam and phase-shifting acceleration re-evaluated. , 1990, Chronobiology international.
[129] B. Pflug,et al. Disturbance of the 24-hour rhythm in endogenous depression and the treatment of endogenous depression by sleep deprivation. , 1971, International pharmacopsychiatry.