Withdrawal Effects Following Methionine Exposure in Adult Zebrafish
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A. Wyse | C. Bonan | S. Altenhofen | M. T. Wiprich | T. M. dos Santos | R. Zanandrea | Gabriel Rubensam | Angela T. S. Wyse
[1] Ricieri Mocelin,et al. A mixture of fipronil and fungicides induces alterations on behavioral and oxidative stress parameters in zebrafish , 2019, Ecotoxicology.
[2] Ricieri Mocelin,et al. Withdrawal effects following repeated ethanol exposure are prevented by N-acetylcysteine in zebrafish , 2019, Progress in Neuro-Psychopharmacology and Biological Psychiatry.
[3] A. Wyse,et al. Creatine as a Neuroprotector: an Actor that Can Play Many Parts , 2019, Neurotoxicity Research.
[4] I. Knerr,et al. Plasma methionine concentrations and incidence of hypermethioninemic encephalopathy during infancy in a large cohort of 36 patients with classical homocystinuria in the Republic of Ireland , 2019, JIMD reports.
[5] H. Harutyunyan,et al. A certain role of SOD/CAT imbalance in pathogenesis of autism spectrum disorders , 2018, Free radical biology & medicine.
[6] H. Chakraborty,et al. Insights into the aquaporin 4 of zebrafish ( Danio rerio ) through evolutionary analysis, molecular modeling and structural dynamics , 2018, Gene Reports.
[7] M. Barbieri,et al. Non‐pharmacological interventions during childbirth for pain relief, anxiety, and neuroendocrine stress parameters: A randomized controlled trial , 2018, International journal of nursing practice.
[8] M. Vianna,et al. Nickel exposure alters behavioral parameters in larval and adult zebrafish. , 2018, The Science of the total environment.
[9] R. Gainetdinov,et al. The Effects of Chronic Amitriptyline on Zebrafish Behavior and Monoamine Neurochemistry , 2018, Neurochemical Research.
[10] T. Silveira,et al. Cholinergic System and Oxidative Stress Changes in the Brain of a Zebrafish Model Chronically Exposed to Ethanol , 2018, Neurotoxicity Research.
[11] U. Lichter-Konecki,et al. Inborn Errors of Metabolism with Cognitive Impairment: Metabolism Defects of Phenylalanine, Homocysteine and Methionine, Purine and Pyrimidine, and Creatine. , 2018, Pediatric clinics of North America.
[12] Ž. Milićević,et al. Suppression of methionine-induced colon injury of young rats by cysteine and N-acetyl-l-cysteine , 2017, Molecular and Cellular Biochemistry.
[13] A. Piato,et al. Lithium prevents scopolamine-induced memory impairment in zebrafish , 2018, Neuroscience Letters.
[14] Yulong Yin,et al. The role of methionine on metabolism, oxidative stress, and diseases , 2017, Amino Acids.
[15] Warren A. Cheung,et al. Mutations in THAP11 cause an inborn error of cobalamin metabolism and developmental abnormalities , 2017, Human molecular genetics.
[16] M. Bogo,et al. Tebuconazole alters morphological, behavioral and neurochemical parameters in larvae and adult zebrafish (Danio rerio). , 2017, Chemosphere.
[17] M. Berger,et al. Adult classical homocystinuria requiring parenteral nutrition: Pitfalls and management. , 2017, Clinical nutrition.
[18] C. Ferreira,et al. Confirmation that MAT1A p.Ala259Val mutation causes autosomal dominant hypermethioninemia , 2017, Molecular genetics and metabolism reports.
[19] J. Saffi,et al. Acute administration of methionine and/or methionine sulfoxide impairs redox status and induces apoptosis in rat cerebral cortex , 2017, Metabolic Brain Disease.
[20] M. McKenna,et al. l-Carnitine and Acetyl-l-carnitine Roles and Neuroprotection in Developing Brain , 2017, Neurochemical Research.
[21] S. Salim,et al. Oxidative Stress and the Central Nervous System , 2017, The Journal of Pharmacology and Experimental Therapeutics.
[22] A. Wyse,et al. Mechanistic basis of hypermethioninemia , 2016, Amino Acids.
[23] R. Dennis. Adrenergic and noradrenergic regulation of poultry behavior and production. , 2016, Domestic animal endocrinology.
[24] U. Varshney,et al. Evolution of initiator tRNAs and selection of methionine as the initiating amino acid , 2016, RNA biology.
[25] A. Rodrigues,et al. Creatine affords protection against glutamate-induced nitrosative and oxidative stress , 2016, Neurochemistry International.
[26] Xinmin Liu,et al. Chronical sleep interruption-induced cognitive decline assessed by a metabolomics method , 2016, Behavioural Brain Research.
[27] Ozgur Akgul,et al. Possible relationship between amino acids, aggression and psychopathy , 2016, International journal of psychiatry in clinical practice.
[28] E. Coccaro,et al. Elevated Plasma Oxidative Stress Markers in Individuals With Intermittent Explosive Disorder and Correlation With Aggression in Humans , 2016, Biological Psychiatry.
[29] Ricieri Mocelin,et al. Fluoxetine and diazepam acutely modulate stress induced-behavior , 2016, Behavioural Brain Research.
[30] E. Puffenberger,et al. Liver transplantation for treatment of severe S-adenosylhomocysteine hydrolase deficiency. , 2015, Molecular genetics and metabolism.
[31] H. Blom,et al. Mudd’s disease (MAT I/III deficiency): a survey of data for MAT1A homozygotes and compound heterozygotes , 2015, Orphanet Journal of Rare Diseases.
[32] Matthew O. Parker,et al. The utility of zebrafish to study the mechanisms by which ethanol affects social behavior and anxiety during early brain development , 2014, Progress in Neuro-Psychopharmacology and Biological Psychiatry.
[33] E. P. Marques,et al. Creatine prevents the imbalance of redox homeostasis caused by homocysteine in skeletal muscle of rats. , 2014, Gene.
[34] C. Russell,et al. Modelling inborn errors of metabolism in zebrafish , 2014, Journal of Inherited Metabolic Disease.
[35] Michael G. Roper,et al. Measurement of DCF fluorescence as a measure of reactive oxygen species in murine islets of Langerhans. , 2014, Analytical methods : advancing methods and applications.
[36] G. Gross,et al. Antioxidants l-carnitine and d-methionine modulate neuronal activity through GABAergic inhibition , 2014, Journal of Neural Transmission.
[37] K. Bland,et al. L-Methionine inhibits growth of human pancreatic cancer cells , 2014, Anti-cancer drugs.
[38] D. Rosemberg,et al. Proline-induced changes in acetylcholinesterase activity and gene expression in zebrafish brain: Reversal by antipsychotic drugs , 2013, Neuroscience.
[39] Anton J. Enright,et al. The zebrafish reference genome sequence and its relationship to the human genome , 2013, Nature.
[40] Andrew H. Miller,et al. CYTOKINE TARGETS IN THE BRAIN: IMPACT ON NEUROTRANSMITTERS AND NEUROCIRCUITS , 2013, Depression and anxiety.
[41] M. Bogo,et al. Arginine exposure alters ectonucleotidase activities and morphology of zebrafish larvae (Danio rerio) , 2013, International Journal of Developmental Neuroscience.
[42] M. Ziegler,et al. Impaired conditioned fear response and startle reactivity in epinephrine-deficient mice , 2013, Behavioural pharmacology.
[43] P. E. Gold,et al. Epinephrine and glucose modulate training-related CREB phosphorylation in old rats: Relationships to age-related memory impairments , 2013, Experimental Gerontology.
[44] M. Kinoshita,et al. Methionine adenosyltransferase I/III deficiency: neurological manifestations and relevance of S-adenosylmethionine. , 2012, Molecular genetics and metabolism.
[45] M. Bogo,et al. Long-Term Methionine Exposure Induces Memory Impairment on Inhibitory Avoidance Task and Alters Acetylcholinesterase Activity and Expression in Zebrafish (Danio rerio) , 2012, Neurochemical Research.
[46] D. B. Rosemberg,et al. Zebrafish neurotransmitter systems as potential pharmacological and toxicological targets. , 2011, Neurotoxicology and teratology.
[47] J. Lundeberg,et al. Adenosine kinase deficiency disrupts the methionine cycle and causes hypermethioninemia, encephalopathy, and abnormal liver function. , 2011, American journal of human genetics.
[48] S. Mudd. Hypermethioninemias of genetic and non‐genetic origin: A review , 2011, American journal of medical genetics. Part C, Seminars in medical genetics.
[49] Siddharth Gaikwad,et al. Measuring behavioral and endocrine responses to novelty stress in adult zebrafish , 2010, Nature Protocols.
[50] A. Guidotti,et al. L-methionine decreases dendritic spine density in mouse frontal cortex , 2010, NeuroReport.
[51] Charles R. Yang,et al. Current perspectives of the roles of the central norepinephrine system in anxiety and depression , 2010, Depression and anxiety.
[52] Xiuping Chen,et al. 2′,7′-Dichlorodihydrofluorescein as a fluorescent probe for reactive oxygen species measurement: Forty years of application and controversy , 2010, Free radical research.
[53] M. Vianna,et al. A one-trial inhibitory avoidance task to zebrafish: Rapid acquisition of an NMDA-dependent long-term memory , 2009, Neurobiology of Learning and Memory.
[54] D. S. St. Clair,et al. Regulation of superoxide dismutase genes: implications in disease. , 2009, Free radical biology & medicine.
[55] Dong Hwan Lee,et al. Clinical, biochemical, and genetic analysis of a Korean neonate with hereditary tyrosinemia type 1 , 2009, Clinical chemistry and laboratory medicine.
[56] C. Matté,et al. Hypermethioninemia provokes oxidative damage and histological changes in liver of rats. , 2009, Biochimie.
[57] Alan L. Miller,et al. The methylation, neurotransmitter, and antioxidant connections between folate and depression. , 2008, Alternative medicine review : a journal of clinical therapeutic.
[58] M. Brosnan,et al. Methionine: A metabolically unique amino acid , 2007 .
[59] C. Matté,et al. Hypermethioninemia Increases Cerebral Acetylcholinesterase Activity and Impairs Memory in Rats , 2007, Neurochemical Research.
[60] A. Wyse,et al. Effect of hypermethioninemia on some parameters of oxidative stress and on Na+,K+-ATPase activity in hippocampus of rats , 2007, Metabolic brain disease.
[61] S. Knecht,et al. High impact running improves learning , 2007, Neurobiology of Learning and Memory.
[62] M. Wajner,et al. Chemically induced model of hypermethioninemia in rats , 2007, Journal of Neuroscience Methods.
[63] P. Garlick. Toxicity of methionine in humans. , 2006, The Journal of nutrition.
[64] R. Issels,et al. The cystine/cysteine cycle: a redox cycle regulating susceptibility versus resistance to cell death , 2006, Oncogene.
[65] I. Weaver,et al. Reversal of Maternal Programming of Stress Responses in Adult Offspring through Methyl Supplementation: Altering Epigenetic Marking Later in Life , 2005, The Journal of Neuroscience.
[66] S. Lentz. Mechanisms of homocysteine‐induced atherothrombosis , 2005, Journal of thrombosis and haemostasis : JTH.
[67] J. Van Camp,et al. Creatine supplementation decreases homocysteine in an animal model of uremia. , 2003, Kidney international.
[68] T. Saheki,et al. A novel inborn error of metabolism detected by elevated methionine and/or galactose in newborn screening: neonatal intrahepatic cholestasis caused by citrin deficiency , 2003, European Journal of Pediatrics.
[69] S. Oliet,et al. Control of Glutamate Clearance and Synaptic Efficacy by Glial Coverage of Neurons , 2001, Science.
[70] R. Gerlai,et al. Drinks like a fish: zebra fish (Danio rerio) as a behavior genetic model to study alcohol effects , 2000, Pharmacology Biochemistry and Behavior.
[71] H. Schägger,et al. Analysis of molecular masses and oligomeric states of protein complexes by blue native electrophoresis and isolation of membrane protein complexes by two-dimensional native electrophoresis. , 1994, Analytical biochemistry.
[72] G. Bennett. Lowry's handbook of right-to-know emergency planning : by G.G. Lowry and R.C. Lowry, Lewis Publishers, Chelsea, MI, 1988, ISBN 0-87371-112-2, 421 pp., $ 85.00. , 1992 .
[73] M. Mckee,et al. Organometal-induced increases in oxygen reactive species: the potential of 2',7'-dichlorofluorescin diacetate as an index of neurotoxic damage. , 1990, Toxicology and applied pharmacology.
[74] S. Tannenbaum,et al. Analysis of nitrate, nitrite, and [15N]nitrate in biological fluids. , 1982, Analytical biochemistry.
[75] K. Yagi,et al. Assay for lipid peroxides in animal tissues by thiobarbituric acid reaction. , 1979, Analytical biochemistry.
[76] M. M. Bradford. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. , 1976, Analytical biochemistry.
[77] S. Marklund,et al. Involvement of the superoxide anion radical in the autoxidation of pyrogallol and a convenient assay for superoxide dismutase. , 1974, European journal of biochemistry.
[78] C. L. Dolman,et al. HYPERMETHIONINEMIA: A METABOLIC DISORDER ASSOCIATED WITH CIRRHOSIS, ISLET CELL HYPERPLASIA, AND RENAL TUBULAR DEGENERATION. , 1965, Pediatrics.
[79] G. Ellman,et al. Tissue sulfhydryl groups. , 1959, Archives of biochemistry and biophysics.
[80] Oliver H. Lowry,et al. Protein measurement with the Folin phenol reagent. , 1951, The Journal of biological chemistry.
[81] V. Vigneaud,et al. THE ORIGIN OF THE METHYL GROUP OF EPINEPHRINE , 1950 .
[82] M. Vianna,et al. Manganese(II) chloride alters behavioral and neurochemical parameters in larvae and adult zebrafish. , 2017, Aquatic toxicology.
[83] H. Blom,et al. Glycine N-Methyltransferase Deficiency: A Member of Dysmethylating Liver Disorders? , 2017, JIMD reports.
[84] M. Bogo,et al. Methionine Exposure Alters Glutamate Uptake and Adenine Nucleotide Hydrolysis in the Zebrafish Brain , 2014, Molecular Neurobiology.
[85] R. Reilmann,et al. Creatine supplementation lowers brain glutamate levels in Huntington’s disease , 2005, Journal of Neurology.
[86] M. Stipanuk. Role of the Liver in Regulation of Body Cysteine and Taurine Levels: A Brief Review , 2004, Neurochemical Research.
[87] M. Westerfield. The zebrafish book : a guide for the laboratory use of zebrafish (Danio rerio) , 1995 .
[88] L. Packer. Oxygen radicals in biological systems. , 1984, Methods in enzymology.
[89] I. Kopin. Avenues of investigation for the role of catecholamines in anxiety. , 1984, Psychopathology.
[90] H. Aebi,et al. Catalase in vitro. , 1984, Methods in enzymology.