Antidepressant activity of zinc and magnesium in view of the current hypotheses of antidepressant action.
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G. Nowak | M. Siwek | D. Dudek | J. Czekaj | B. Szewczyk | Andrzej Pilc | M. Sowa-Kućma | E. Poleszak | M. Radziwoń-Zaleska | W. Opoka | B. Ryszewska-Pokraśniewicz
[1] G. Nowak,et al. D-serine, a selective glycine/N-methyl-D-aspartate receptor agonist, antagonizes the antidepressant-like effects of magnesium and zinc in mice. , 2008, Pharmacological reports : PR.
[2] P. Wlaź,et al. NMDA/glutamate mechanism of magnesium-induced anxiolytic-like behavior in mice. , 2008 .
[3] E. Poleszak. Benzodiazepine/GABA(A) receptors are involved in magnesium-induced anxiolytic-like behavior in mice. , 2008, Pharmacological reports : PR.
[4] J. Franco,et al. Involvement of glutathione, ERK1/2 phosphorylation and BDNF expression in the antidepressant-like effect of zinc in rats , 2008, Behavioural Brain Research.
[5] S. Chaki,et al. Mood disorders: regulation by metabotropic glutamate receptors. , 2008, Biochemical pharmacology.
[6] G. Nowak,et al. NMDA/glutamate mechanism of antidepressant-like action of magnesium in forced swim test in mice , 2007, Pharmacology Biochemistry and Behavior.
[7] G. Nowak,et al. Activation of the NMDA/glutamate receptor complex antagonizes the NMDA antagonist-induced antidepressant-like effects in the forced swim test. , 2007, Pharmacological reports : PR.
[8] W. Maret,et al. The zinc/thiolate redox biochemistry of metallothionein and the control of zinc ion fluctuations in cell signaling. , 2007, Archives of biochemistry and biophysics.
[9] E. Poleszak. Modulation of antidepressant-like activity of magnesium by serotonergic system , 2007, Journal of Neural Transmission.
[10] A. Mathie,et al. Zinc and copper: pharmacological probes and endogenous modulators of neuronal excitability. , 2006, Pharmacology & therapeutics.
[11] G. Nowak,et al. Medium supplementation with zinc enables detection of imipramine-induced adaptation in glycine/NMDA receptors labeled with [3H]L-689,560. , 2006, Pharmacological reports : PR.
[12] G. Nowak,et al. Immobility stress induces depression-like behavior in the forced swim test in mice: effect of magnesium and imipramine. , 2006, Pharmacological reports : PR.
[13] E. Florek,et al. Antepartum/postpartum depressive symptoms and serum zinc and magnesium levels. , 2006, Pharmacological reports : PR.
[14] G. Nowak,et al. Increase in synaptic hippocampal zinc concentration following chronic but not acute zinc treatment in rats , 2006, Brain Research.
[15] H. Anisman,et al. The pathogenesis of clinical depression: Stressor- and cytokine-induced alterations of neuroplasticity , 2005, Neuroscience.
[16] W. Maret,et al. Fluctuations of cellular, available zinc modulate insulin signaling via inhibition of protein tyrosine phosphatases. , 2005, Journal of trace elements in medicine and biology : organ of the Society for Minerals and Trace Elements.
[17] H. Manji,et al. Glycogen Synthase Kinase-3: a Putative Molecular Target for Lithium Mimetic Drugs , 2005, Neuropsychopharmacology.
[18] G. Nowak,et al. Enhancement of antidepressant-like activity by joint administration of imipramine and magnesium in the forced swim test: Behavioral and pharmacokinetic studies in mice , 2005, Pharmacology Biochemistry and Behavior.
[19] A. Bush,et al. The neurobiology of zinc in health and disease , 2005, Nature Reviews Neuroscience.
[20] R. Miledi,et al. Zinc modulation of serotonin uptake in the adult rat corpus callosum , 2005, Journal of neuroscience research.
[21] H. Anisman,et al. Cytokines as a precipitant of depressive illness: animal and human studies. , 2005, Current pharmaceutical design.
[22] H. Manji,et al. AR-A014418, a selective GSK-3 inhibitor, produces antidepressant-like effects in the forced swim test. , 2004, The international journal of neuropsychopharmacology.
[23] N. Singewald,et al. Magnesium-deficient diet alters depression- and anxiety-related behavior in mice—influence of desipramine and Hypericum perforatum extract , 2004, Neuropharmacology.
[24] Y. Sorokin,et al. Maternal hypoxia during pregnancy induces fetal neurodevelopmental brain damage: Partial protection by magnesium sulfate , 2004, Journal of neuroscience research.
[25] N. Singewald,et al. Magnesium-deficient diet alters depression and anxiety-related behavior in mice – Influence of desipramine and hypericum extract , 2004 .
[26] M. Papp,et al. Zinc treatment induces cortical brain-derived neurotrophic factor gene expression. , 2004, European journal of pharmacology.
[27] G. Nowak,et al. Antidepressant- and anxiolytic-like activity of magnesium in mice , 2004, Pharmacology Biochemistry and Behavior.
[28] Abraham Weizman,et al. Rapid antidepressive-like activity of specific glycogen synthase kinase-3 inhibitor and its effect on β-catenin in mouse hippocampus , 2004, Biological Psychiatry.
[29] Marcin Siwek,et al. Effect of zinc supplementation on antidepressant therapy in unipolar depression: a preliminary placebo-controlled study. , 2003, Polish journal of pharmacology.
[30] A. Rodrigues,et al. Involvement of NMDA receptors and l-arginine-nitric oxide pathway in the antidepressant-like effects of zinc in mice , 2003, Behavioural Brain Research.
[31] G. Nowak,et al. Antidepressant-like effects of acute and chronic treatment with zinc in forced swim test and olfactory bulbectomy model in rats , 2003, Brain Research Bulletin.
[32] E. Florek,et al. Reduced potency of zinc to interact with NMDA receptors in hippocampal tissue of suicide victims. , 2003, Polish journal of pharmacology.
[33] K. Muir. Magnesium in stroke treatment , 2002, Postgraduate medical journal.
[34] G. Nowak,et al. Interaction of zinc with antidepressants in the forced swimming test in mice. , 2002, Polish journal of pharmacology.
[35] R. Vink,et al. Novel therapies in development for the treatment of traumatic brain injury , 2002, Expert opinion on investigational drugs.
[36] D. Gurwitz,et al. Inhibition of glycogen synthase kinase-3beta by bivalent zinc ions: insight into the insulin-mimetic action of zinc. , 2002, Biochemical and biophysical research communications.
[37] G. Ossowska,et al. Repeated treatment with selective serotonin reuptake inhibitors but not anxiolytics prevents the stress-induced deficit of fighting behavior. , 2002, Polish journal of pharmacology.
[38] G. Danscher,et al. Inhibitory zinc-enriched terminals in the mouse cerebellum: double-immunohistochemistry for zinc transporter 3 and glutamate decarboxylase , 2002, Neuroscience Letters.
[39] H. Murck. Magnesium and Affective Disorders , 2002, Nutritional neuroscience.
[40] G. Nowak,et al. Rise in zinc affinity for the NMDA receptor evoked by chronic imipramine is species-specific. , 2001, Polish journal of pharmacology.
[41] J. Sarvey,et al. Induction of Mossy Fiber→CA3 Long-Term Potentiation Requires Translocation of Synaptically Released Zn2+ , 2001, The Journal of Neuroscience.
[42] A. Bush,et al. Synaptically released zinc: Physiological functions and pathological effects , 2001, Biometals.
[43] S. Iannello,et al. Hypomagnesemia. A review of pathophysiological, clinical and therapeutical aspects. , 2001, Panminerva medica.
[44] T. Parks,et al. Zinc Inhibition of Group I mGluR-Mediated Calcium Homeostasis in Auditory Neurons , 2001, Journal of the Association for Research in Otolaryngology.
[45] G. Nowak,et al. Antidepressant-like properties of zinc in rodent forced swim test , 2001, Brain Research Bulletin.
[46] F. Bymaster,et al. Current perspectives on the development of non-biogenic amine-based antidepressants. , 2001, Pharmacological research.
[47] C. Stewart,et al. Repeated electroconvulsive stimulation, but not antidepressant drugs, induces mossy fibre sprouting in the rat hippocampus , 2001, Brain Research.
[48] A. Kersting,et al. Inflammatory markers in major depression and melancholia. , 2001, Journal of affective disorders.
[49] W. Maret,et al. Enzyme regulation by reversible zinc inhibition: glycerol phosphate dehydrogenase as an example. , 2001, Chemico-biological interactions.
[50] A. Harwood,et al. Lithium inhibits glycogen synthase kinase-3 by competition for magnesium. , 2001, Biochemical and biophysical research communications.
[51] Atsushi Takeda,et al. Movement of zinc and its functional significance in the brain , 2000, Brain Research Reviews.
[52] G. Nowak,et al. Serum trace elements in animal models and human depression: Part III. Magnesium. Relationship with copper , 2000, Human psychopharmacology.
[53] G. Nowak,et al. Zinc exhibits an antidepressant-like effect in the forced swimming test in mice. , 2000, Polish journal of pharmacology.
[54] A Scarpa,et al. Regulation of cellular magnesium. , 2000, Frontiers in bioscience : a journal and virtual library.
[55] E. Murphy. Mysteries of magnesium homeostasis. , 2000, Circulation research.
[56] O. Presslich,et al. Treatment of severe mania with intravenous magnesium sulphate as a supplementary therapy , 1999, Psychiatry Research.
[57] H. Neels,et al. Lower serum zinc in major depression in relation to changes in serum acute phase proteins. , 1999, Journal of affective disorders.
[58] G. Nowak,et al. Serum trace elements in animal models and human depression. Part II. Copper , 1999 .
[59] W. Fawcett,et al. Magnesium: physiology and pharmacology. , 1999, British journal of anaesthesia.
[60] W. Maret,et al. Inhibitory sites in enzymes: zinc removal and reactivation by thionein. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[61] J. Siuciak,et al. Hippocampal mossy fiber sprouting induced by chronic electroconvulsive seizures , 1999, Neuroscience.
[62] G. Nowak,et al. Serum trace elements in animal models and human depression. Part I. Zinc , 1999 .
[63] E. Bosmans,et al. Increased serum IL-6 and IL-1 receptor antagonist concentrations in major depression and treatment resistant depression. , 1997, Cytokine.
[64] H. Meltzer,et al. Lower serum zinc in major depression is a sensitive marker of treatment resistance and of the immune/inflammatory response in that illness , 1997, Biological Psychiatry.
[65] M. Seman,et al. NMDA Receptor Complex Blockade by Oral Administration of Magnesium: Comparison with MK-801 , 1997, Pharmacology Biochemistry and Behavior.
[66] H. Francès,et al. Mice Selected for Low and High Blood Magnesium Levels: A New Model for Stress Studies , 1997, Physiology & Behavior.
[67] M. Omata,et al. Extracellular Mg2+ inhibits receptor-mediated Ca(2+)-permeable non-selective cation currents in aortic smooth muscle cells. , 1997, European journal of pharmacology.
[68] H. Neels,et al. Lower total serum protein, albumin, and beta- and gamma-globulin in major and treatment-resistant depression: Effects of antidepressant treatments , 1996, Psychiatry Research.
[69] R. Duman,et al. Regulation of BDNF and trkB mRNA in rat brain by chronic electroconvulsive seizure and antidepressant drug treatments , 1995, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[70] J. Gaillard,et al. Relationship between erythrocyte magnesium, plasma electrolytes and cortisol, and intensity of symptoms in major depressed patients. , 1995, Journal of affective disorders.
[71] C. Parsons,et al. Different binding affinities of NMDA receptor channel blockers in various brain regions—Indication of NMDA receptor heterogeneity , 1995, Neuropharmacology.
[72] R. Kancheva,et al. The relationship between magnesium and calciotropic hormones. , 1995, Magnesium research.
[73] B. Altura,et al. Ionized serum magnesium and potassium levels in pregnant women with preeclampsia and eclampsia. , 1995, The Journal of reproductive medicine.
[74] R. Elin. Magnesium: the fifth but forgotten electrolyte. , 1994, American journal of clinical pathology.
[75] N. Harrison,et al. Zn2+: an endogenous modulator of ligand- and voltage-gated ion channels , 1994, Neuropharmacology.
[76] M. D. de Broe,et al. Hypozincemia in depression. , 1994, Journal of affective disorders.
[77] T. Smart,et al. Modulation of inhibitory and excitatory amino acid receptor ion channels by zinc , 1994, Progress in Neurobiology.
[78] J. Warsh,et al. The interface between thyroid activity, magnesium, and depression: A pilot study , 1993, Biological Psychiatry.
[79] M. Morris. Brain and CSF magnesium concentrations during magnesium deficit in animals and humans: neurological symptoms. , 1992, Magnesium research.
[80] Michael F Ryan,et al. The Role of Magnesium in Clinical Biochemistry: An Overview , 1991, Annals of clinical biochemistry.
[81] L. Beauclair,et al. A pilot study of magnesium aspartate hydrochloride (Magnesiocard®) as a mood stabilizer for rapid cycling bipolar affective disorder patients , 1990, Progress in Neuro-Psychopharmacology and Biological Psychiatry.
[82] I. McLoughlin,et al. Zinc in depressive disorder , 1990, Acta psychiatrica Scandinavica.
[83] A. van Miert,et al. Fever and changes in plasma zinc and iron concentrations in the goat. The effects of interferon inducers and recombinant IFN-alpha 2a. , 1990, Journal of comparative pathology.
[84] P. Glue,et al. Overexcitement and Disinhibition , 1990, British Journal of Psychiatry.
[85] N. Hashizume,et al. An analysis of hypermagnesemia and hypomagnesemia. , 1990, Japanese journal of medicine.
[86] P. Lory,et al. Zinc has opposite effects on NMDA and Non-NMDA receptors expressed in xenopus oocytes , 1990, Neuron.
[87] P. Mortensen,et al. Depression and Magnesium Deficiency , 1990, International journal of psychiatry in medicine.
[88] L. Wetterberg,et al. Calcium and magnesium concentrations in affective disorder: difference between plasma and serum in relation to symptoms , 1989, Acta psychiatrica Scandinavica.
[89] M. Bara,et al. Analysis of magnesium membraneous effects: binding and screening. , 1988, Magnesium research.
[90] R. Elin,et al. Magnesium metabolism in health and disease. , 1988, Disease-a-month : DM.
[91] K. Kantak. Magnesium deficiency alters aggressive behavior and catecholamine function. , 1988, Behavioral neuroscience.
[92] M. Aratô,et al. Cerebrospinal fluid magnesium and calcium related to amine metabolites, diagnosis, and suicide attempts , 1985, Biological Psychiatry.
[93] J. French,et al. Magnesium: nature's physiologic calcium blocker. , 1984, American heart journal.
[94] M. Mayer,et al. Voltage-dependent block by Mg2+ of NMDA responses in spinal cord neurones , 1984, Nature.
[95] C. Bowden,et al. Plasma and erythrocyte electrolytes in affective disorders. , 1983, Journal of affective disorders.
[96] L. Deftos,et al. Magnesium in affective disorders. , 1979, Biological psychiatry.
[97] A. Coppen,et al. Plasma Magnesium and Calcium in Depression , 1969, British Journal of Psychiatry.
[98] M. Peacock. Calcium metabolism in health and disease. , 2010, Clinical journal of the American Society of Nephrology : CJASN.
[99] G. Nowak,et al. Alterations in serum and brain trace element levels after antidepressant treatment , 2007, Biological Trace Element Research.
[100] G. Nowak,et al. Alterations in serum and brain trace element levels after antidepressant treatment. Part II. Copper , 2007, Biological Trace Element Research.
[101] K. Cieslik,et al. Influence of zinc supplementation on imipramine effect in a chronic unpredictable stress (CUS) model in rats. , 2007, Pharmacological reports : PR.
[102] G. Eby,et al. Rapid recovery from major depression using magnesium treatment. , 2006, Medical hypotheses.
[103] D. Nutt. Dynamic Neurotransmitter Interactions in Alcohol Withdrawal , 2006 .
[104] G. Nowak,et al. Effect of Depression and of Antidepressant Therapy on Serum Zinc Levels , 2002 .
[105] P. Elwood,et al. Magnesium and Cardiovascular Disease: A Review of Epidemiological Evidence , 2002 .
[106] A. Bush,et al. Synaptically released zinc: physiological functions and pathological effects. , 2001 .
[107] M. Irwin,et al. Immune correlates of depression. , 1999, Advances in experimental medicine and biology.
[108] M. Maes,et al. Major depression and activation of the inflammatory response system. , 1999, Advances in experimental medicine and biology.
[109] R. Joffe,et al. Serum Mg2+ and Ca2+/Mg2+ ratio in major depressive disorder. , 1996, Neuropsychobiology.
[110] H. Wang,et al. Mg2+ enhances high affinity [3H]8-hydroxy-2-(di-n-propylamino) tetralin binding and guanine nucleotide modulation of serotonin-1a receptors. , 1995, Journal of receptor and signal transduction research.
[111] R. McLean. Magnesium and its therapeutic uses: a review. , 1994, The American journal of medicine.
[112] G. Kirov,et al. Plasma magnesium levels in a population of psychiatric patients: correlations with symptoms. , 1994, Neuropsychobiology.
[113] J. Gaillard,et al. Evolution of blood magnesium, sodium and potassium in depressed patients followed for three months. , 1992, Neuropsychobiology.
[114] M. Maguire,et al. Magnesium as a regulatory cation: criteria and evaluation. , 1987, Magnesium.
[115] J. Sheehan,et al. Interactions of magnesium and potassium in the pathogenesis of cardiovascular disease. , 1984, Magnesium.
[116] S. Massry,et al. Hypomagnesemia and Hypermagnesemia , 1984 .
[117] S. Massry,et al. The hormonal and non-hormonal control of renal excretion of calcium and magnesium. , 1973, Nephron.
[118] G. Nowak,et al. Effects of acute and chronic treatment with magnesium in the forced swim test in rats. , 2005, Pharmacological reports : PR.