The Role of Polyamines in the Mechanisms of Cognitive Impairment
暂无分享,去创建一个
[1] M. Marcoli,et al. Transgenic Mouse Overexpressing Spermine Oxidase in Cerebrocortical Neurons: Astrocyte Dysfunction and Susceptibility to Epileptic Seizures , 2022, Biomolecules.
[2] K. Soda. Overview of Polyamines as Nutrients for Human Healthy Long Life and Effect of Increased Polyamine Intake on DNA Methylation , 2022, Cells.
[3] S. Skatchkov,et al. Critical Role of Astrocytic Polyamine and GABA Metabolism in Epileptogenesis , 2022, Frontiers in Cellular Neuroscience.
[4] J. Steiner,et al. Polyamines and polyamine-metabolizing enzymes in schizophrenia: Current knowledge and concepts of therapy , 2021, World journal of psychiatry.
[5] J. Cleveland,et al. Polyamine Homeostasis in Development and Disease , 2021, Medical sciences.
[6] H. Tilg,et al. Dietary spermidine improves cognitive function. , 2021, Cell reports.
[7] A. Sickmann,et al. eIF5A hypusination, boosted by dietary spermidine, protects from premature brain aging and mitochondrial dysfunction. , 2021, Cell reports.
[8] S. Rajasekaran,et al. Emerging Role of ODC1 in Neurodevelopmental Disorders and Brain Development , 2021, Genes.
[9] B. Polis,et al. Alzheimer’s disease as a chronic maladaptive polyamine stress response , 2021, Aging.
[10] A. Wirth,et al. Novel aspects of age-protection by spermidine supplementation are associated with preserved telomere length , 2021, GeroScience.
[11] V. Baekelandt,et al. ATP13A2-mediated endo-lysosomal polyamine export counters mitochondrial oxidative stress , 2020, Proceedings of the National Academy of Sciences.
[12] Alexandra Kremer,et al. The positive effect of spermidine in older adults suffering from dementia , 2020, Wiener klinische Wochenschrift.
[13] D. Bredt,et al. Polyamine regulation of ion channel assembly and implications for nicotinic acetylcholine receptor pharmacology , 2020, Nature Communications.
[14] Qi Wang,et al. Epileptiform Neuronal Discharges Impair Astrocyte Syncytial Isopotentiality in Acute Hippocampal Slices , 2020, Brain sciences.
[15] Alexandra Kremer,et al. Spermidine in dementia , 2019, Wiener klinische Wochenschrift.
[16] C. F. Mello,et al. Spermidine, a positive modulator of the NMDA receptor, facilitates extinction and prevents the reinstatement of morphine-induced conditioned place preference in mice , 2019, Psychopharmacology.
[17] S. Aoki,et al. A metabolic profile of polyamines in parkinson disease: A promising biomarker , 2019, Annals of neurology.
[18] E. Weeber,et al. Spermidine/spermine-N1-acetyltransferase ablation impacts tauopathy-induced polyamine stress response , 2019, Alzheimer's Research & Therapy.
[19] Miranka Wirth,et al. Effects of spermidine supplementation on cognition and biomarkers in older adults with subjective cognitive decline (SmartAge)—study protocol for a randomized controlled trial , 2019, Alzheimer's Research & Therapy.
[20] S. Illarioshkin,et al. Polyamines in Parkinson’s Disease: Their Role in Oxidative Stress Induction and Protein Aggregation , 2019, Journal of Neurology Research.
[21] F. Tinahones,et al. Dietary and Gut Microbiota Polyamines in Obesity- and Age-Related Diseases , 2019, Front. Nutr..
[22] Miranka Wirth,et al. The effect of spermidine on memory performance in older adults at risk for dementia: A randomized controlled trial , 2018, Cortex.
[23] Puneet Kumar,et al. Neuroprotective potential of spermidine against rotenone induced Parkinson's disease in rats , 2018, Neurochemistry International.
[24] A. Mattoo,et al. Polyamines: Bio-Molecules with Diverse Functions in Plant and Human Health and Disease , 2018, Front. Chem..
[25] D. Jindal,et al. Potential effect of spermidine on GABA, dopamine, acetylcholinesterase, oxidative stress and proinflammatory cytokines to diminish ketamine-induced psychotic symptoms in rats. , 2018, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[26] G. Sukhikh,et al. THE ROLE OF POLYAMINES IN FUNCTIONING OF REPRODUCTIVE SYSTEM CELLS , 2018 .
[27] Xiaoling Chen,et al. New insights into the role of spermine in enhancing the antioxidant capacity of rat spleen and liver under oxidative stress , 2016, Animal nutrition.
[28] Stephan J Sigrist,et al. Cardioprotection and lifespan extension by the natural polyamine spermidine , 2016, Nature Medicine.
[29] C. F. Mello,et al. Modulation of learning and memory by natural polyamines. , 2016, Pharmacological research.
[30] M. Vawter,et al. Targets of polyamine dysregulation in major depression and suicide: Activity-dependent feedback, excitability, and neurotransmission , 2016, Neuroscience & Biobehavioral Reviews.
[31] D. Pastré,et al. Polyamine signal through gap junctions: A key regulator of proliferation and gap‐junction organization in mammalian tissues? , 2016, BioEssays : news and reviews in molecular, cellular and developmental biology.
[32] K. Kashiwagi,et al. Toxic acrolein production due to Ca(2+) influx by the NMDA receptor during stroke. , 2016, Atherosclerosis.
[33] A. Aharoni,et al. Circadian Clock Control by Polyamine Levels through a Mechanism that Declines with Age. , 2015, Cell metabolism.
[34] Nektarios Tavernarakis,et al. Spermidine protects against α-synuclein neurotoxicity , 2014, Cell cycle.
[35] C. F. Mello,et al. Spermidine improves fear memory persistence. , 2014, European journal of pharmacology.
[36] L. Cynober,et al. Aliphatic polyamines in physiology and diseases. , 2014, Clinical nutrition.
[37] A. Pegg. Toxicity of polyamines and their metabolic products. , 2013, Chemical research in toxicology.
[38] Kazuei Igarashi,et al. Polyamines and Their Metabolites as Diagnostic Markers of Human Diseases , 2013, Biomolecules & therapeutics.
[39] K. Kashiwagi,et al. Protein-conjugated acrolein as a biochemical marker of brain infarction. , 2011, Molecular nutrition & food research.
[40] G. Turecki,et al. Epigenetic regulation of spermidine/spermine N1-acetyltransferase (SAT1) in suicide. , 2011, Journal of psychiatric research.
[41] Laetitia Mony,et al. Molecular basis of positive allosteric modulation of GluN2B NMDA receptors by polyamines , 2011, The EMBO journal.
[42] F. Madeo,et al. Polyamines in aging and disease , 2011, Aging.
[43] A. Gratton,et al. Evidence of Altered Polyamine Concentrations in Cerebral Cortex of Suicide Completers , 2010, Neuropsychopharmacology.
[44] C. F. Mello,et al. Spermine improves recognition memory deficit in a rodent model of Huntington’s disease , 2009, Neurobiology of Learning and Memory.
[45] Frank Sinner,et al. Induction of autophagy by spermidine promotes longevity , 2009, Nature Cell Biology.
[46] P. Liu,et al. Age-related changes in polyamines in memory-associated brain structures in rats , 2008, Neuroscience.
[47] M. Sabater-Molina,et al. Biological significance of dietary polyamines. , 2007, Nutrition.
[48] J. Gemel,et al. N-terminal residues in Cx43 and Cx40 determine physiological properties of gap junction channels, but do not influence heteromeric assembly with each other or with Cx26 , 2006, Journal of Cell Science.
[49] K. Kashiwagi,et al. Decrease in polyamines with aging and their ingestion from food and drink. , 2006, Journal of biochemistry.
[50] C. Moinard,et al. Polyamines: metabolism and implications in human diseases. , 2005, Clinical nutrition.
[51] J. Gemel,et al. Amino terminal glutamate residues confer spermine sensitivity and affect voltage gating and channel conductance of rat connexin40 gap junctions , 2004, The Journal of physiology.
[52] A. Randi,et al. Hexachlorobenzene-induced early changes in ornithine decarboxylase and protein tyrosine kinase activities, polyamines and c-Myc, c-Fos and c-Jun proto-oncogenes in rat liver. , 2003, Toxicological sciences : an official journal of the Society of Toxicology.
[53] K. Williams. Interactions of polyamines with ion channels. , 1997, The Biochemical journal.
[54] M. Mayer,et al. Inward rectification of both AMPA and kainate subtype glutamate receptors generated by polyamine-mediated ion channel block , 1995, Neuron.
[55] Anatoli N. Lopatin,et al. Potassium channel block by cytoplasmic polyamines as the mechanism of intrinsic rectification , 1994, Nature.
[56] M. Mayer,et al. Multiple effects of spermine on N‐methyl‐D‐aspartic acid receptor responses of rat cultured hippocampal neurones. , 1993, The Journal of physiology.
[57] K. Williams,et al. Characterization of polyamines having agonist, antagonist, and inverse agonist effects at the polyamine recognition site of the NMDA receptor , 1990, Neuron.
[58] Joseph B. Martin. Huntington's disease , 1984, Neurology.