Repression of Sulfate Assimilation Is an Adaptive Response of Yeast to the Oxidative Stress of Zinc Deficiency*
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D. Winge | D. Eide | S. Roje | F. J. Sandoval | Dennis R. Winge | A. Bird | Sanja Roje | Amanda J. Bird | Chang-Yi Wu | Francisco J. Sandoval | David J. Eide | Chang‐yi Wu
[1] D. Eide,et al. Zinc transporters that regulate vacuolar zinc storage in Saccharomyces cerevisiae , 2000, The EMBO journal.
[2] Derek Y. Chiang,et al. Flexible promoter architecture requirements for coactivator recruitment , 2006, BMC Molecular Biology.
[3] D. Botstein,et al. Plasmid construction by homologous recombination in yeast. , 1987, Gene.
[4] D. Winge,et al. Zap1 activation domain 1 and its role in controlling gene expression in response to cellular zinc status , 2005, Molecular microbiology.
[5] D. Winge,et al. Regulation of the Yeast TSA1 Peroxiredoxin by ZAP1 Is an Adaptive Response to the Oxidative Stress of Zinc Deficiency* , 2007, Journal of Biological Chemistry.
[6] M. Goebl,et al. The Abundance of Met30p Limits SCFMet30p Complex Activity and Is Regulated by Methionine Availability , 2000, Molecular and Cellular Biology.
[7] E. O’Shea,et al. Global analysis of protein localization in budding yeast , 2003, Nature.
[8] P. Kaiser,et al. The yeast ubiquitin ligase SCFMet30: connecting environmental and intracellular conditions to cell division , 2006, Cell Division.
[9] D. Winge,et al. Repression of ADH1 and ADH3 during zinc deficiency by Zap1‐induced intergenic RNA transcripts , 2006, The EMBO journal.
[10] Y. Surdin-Kerjan,et al. The study of methionine uptake in Saccharomyces cerevisiae reveals a new family of amino acid permeases. , 1996, Journal of molecular biology.
[11] D. Kinney,et al. Yeast shuttle and integrative vectors with multiple cloning sites suitable for construction of lacZ fusions. , 1986, Gene.
[12] D. Botstein,et al. Genome-wide characterization of the Zap1p zinc-responsive regulon in yeast. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[13] J. Pronk,et al. Physiological and Transcriptional Responses of Saccharomyces cerevisiae to Zinc Limitation in Chemostat Cultures † , 2007 .
[14] D. Skowyra,et al. Destabilization of binding to cofactors and SCFMet30 is the rate-limiting regulatory step in degradation of polyubiquitinated Met4. , 2006, Molecular cell.
[15] D. Winge,et al. Mapping the DNA Binding Domain of the Zap1 Zinc-responsive Transcriptional Activator* , 2000, The Journal of Biological Chemistry.
[16] M. Tyers,et al. Dual regulation of the met4 transcription factor by ubiquitin-dependent degradation and inhibition of promoter recruitment. , 2002, Molecular cell.
[17] D. Eide,et al. Zinc-induced Inactivation of the Yeast ZRT1 Zinc Transporter Occurs through Endocytosis and Vacuolar Degradation* , 1998, The Journal of Biological Chemistry.
[18] D. Eide,et al. The yeast ZRT1 gene encodes the zinc transporter protein of a high-affinity uptake system induced by zinc limitation. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[19] C. Fraga,et al. Zinc deficiency causes oxidative damage to proteins, lipids and DNA in rat testes. , 1995, The Journal of nutrition.
[20] S. Powell. The antioxidant properties of zinc. , 2000, The Journal of nutrition.
[21] L. Cai,et al. Essentiality, toxicology and chelation therapy of zinc and copper. , 2005, Current medicinal chemistry.
[22] C. Grant. Role of the glutathione/glutaredoxin and thioredoxin systems in yeast growth and response to stress conditions , 2001, Molecular microbiology.
[23] B. Ames,et al. Low intracellular zinc induces oxidative DNA damage, disrupts p53, NFκB, and AP1 DNA binding, and affects DNA repair in a rat glioma cell line , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[24] E. Ho. Zinc deficiency, DNA damage and cancer risk. , 2004, The Journal of nutritional biochemistry.
[25] S. Ho,et al. Site-directed mutagenesis by overlap extension using the polymerase chain reaction. , 1989, Gene.
[26] Peter Kaiser,et al. The yeast ubiquitin ligase SCFMet30 regulates heavy metal response. , 2005, Molecular biology of the cell.
[27] L. Guarente. Yeast promoters and lacZ fusions designed to study expression of cloned genes in yeast. , 1983, Methods in enzymology.
[28] D. Eide,et al. The ZRT2 Gene Encodes the Low Affinity Zinc Transporter in Saccharomyces cerevisiae* , 1996, The Journal of Biological Chemistry.
[29] B. Ames,et al. Zinc deficiency induces oxidative DNA damage and increases p53 expression in human lung fibroblasts. , 2003, The Journal of nutrition.
[30] Y. Gibon,et al. Cycling assay for nicotinamide adenine dinucleotides: NaCl precipitation and ethanol solubilization of the reduced tetrazolium. , 1997, Analytical biochemistry.
[31] S. Rhee,et al. Peroxiredoxins: a historical overview and speculative preview of novel mechanisms and emerging concepts in cell signaling. , 2005, Free radical biology & medicine.
[32] C. Vandeputte,et al. A microtiter plate assay for total glutathione and glutathione disulfide contents in cultured/isolated cells: performance study of a new miniaturized protocol , 1994, Cell Biology and Toxicology.
[33] J. Pinkham,et al. Tightly regulated, beta-estradiol dose-dependent expression system for yeast. , 2000, BioTechniques.
[34] Y. Surdin-Kerjan,et al. Transport of Sulfonium Compounds , 1999, The Journal of Biological Chemistry.
[35] S. Reed,et al. Regulation of Transcription by Ubiquitination without Proteolysis Cdc34/SCFMet30-Mediated Inactivation of the Transcription Factor Met4 , 2000, Cell.
[36] B. Halliwell,et al. Measuring reactive species and oxidative damage in vivo and in cell culture: how should you do it and what do the results mean? , 2004, British journal of pharmacology.
[37] M. Tyers,et al. Inducible dissociation of SCFMet30 ubiquitin ligase mediates a rapid transcriptional response to cadmium , 2005, The EMBO journal.
[38] D. Yuan. Zinc-regulated genes in Saccharomyces cerevisiae revealed by transposon tagging. , 2000, Genetics.
[39] V. Higgins,et al. Application of Genome-Wide Expression Analysis To Identify Molecular Markers Useful in Monitoring Industrial Fermentations , 2003, Applied and Environmental Microbiology.
[40] D. Eide,et al. Combinatorial Control of Yeast FET4 Gene Expression by Iron, Zinc, and Oxygen* , 2002, The Journal of Biological Chemistry.
[41] J. Yates,et al. Proteolysis-independent regulation of the transcription factor Met4 by a single Lys 48-linked ubiquitin chain , 2004, Nature Cell Biology.
[42] G. Carman,et al. Regulation of phospholipid synthesis in Saccharomyces cerevisiae by zinc depletion. , 2007, Biochimica et biophysica acta.
[43] Antonio Rosato,et al. Counting the zinc-proteins encoded in the human genome. , 2006, Journal of proteome research.
[44] D. Eide,et al. Zap1p, a metalloregulatory protein involved in zinc-responsive transcriptional regulation in Saccharomyces cerevisiae , 1997, Molecular and cellular biology.
[45] Lisa Joss,et al. Evidence that feedback inhibition of NAD kinase controls responses to oxidative stress , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[46] M. Newton,et al. Differential control of Zap1-regulated genes in response to zinc deficiency in Saccharomyces cerevisiae , 2008, BMC Genomics.
[47] M. Tyers,et al. SCFMet30‐mediated control of the transcriptional activator Met4 is required for the G1–S transition , 2000 .
[48] M. Leid,et al. Fzf1p of Saccharomyces cerevisiae is a positive regulator of SSU1 transcription and its first zinc finger region is required for DNA binding , 1999, Yeast.
[49] J. Bähler,et al. Response of Schizosaccharomyces pombe to Zinc Deficiency , 2008, Eukaryotic Cell.
[50] M. Tyers,et al. Feedback‐regulated degradation of the transcriptional activator Met4 is triggered by the SCFMet30 complex , 2000, The EMBO journal.
[51] D. Eide,et al. Regulation of Zinc Homeostasis in Yeast by Binding of the ZAP1 Transcriptional Activator to Zinc-responsive Promoter Elements* , 1998, The Journal of Biological Chemistry.
[52] D. Kosman,et al. The Yeast Copper/Zinc Superoxide Dismutase and the Pentose Phosphate Pathway Play Overlapping Roles in Oxidative Stress Protection* , 1996, The Journal of Biological Chemistry.
[53] P. Blaiseau,et al. Met30p, a yeast transcriptional inhibitor that responds to S-adenosylmethionine, is an essential protein with WD40 repeats , 1995, Molecular and cellular biology.
[54] R. Matthews,et al. Identification of the zinc ligands in cobalamin-independent methionine synthase (MetE) from Escherichia coli. , 1999, Biochemistry.
[55] B. Ames,et al. Are vitamin and mineral deficiencies a major cancer risk? , 2002, Nature Reviews Cancer.
[56] H. Jakubowski,et al. Mechanisms of homocysteine toxicity in humans , 2007, Amino Acids.
[57] J. Burke,et al. Effect of a Zinc-Deficient Diet on Lipid Peroxidation in Liver and Tumor Subcellular Membranes , 1985, Proceedings of the Society for Experimental Biology and Medicine. Society for Experimental Biology and Medicine.
[58] M H Saier,et al. Unified inventory of established and putative transporters encoded within the complete genome of Saccharomyces cerevisiae , 1998, FEBS letters.
[59] A. Guranowski,et al. Protective Mechanisms against Homocysteine Toxicity , 2006, Journal of Biological Chemistry.
[60] F. Dietrich,et al. Mapping of transcription start sites in Saccharomyces cerevisiae using 5′ SAGE , 2005, Nucleic acids research.
[61] M. Hambidge,et al. Human zinc deficiency. , 2000, The Journal of nutrition.
[62] S. Udaka,et al. MUP1, High Affinity Methionine Permease, is Involved in Cysteine Uptake by Saccharomyces cerevisiae , 2001, Bioscience, biotechnology, and biochemistry.
[63] D. Stillman,et al. The Zap1 transcriptional activator also acts as a repressor by binding downstream of the TATA box in ZRT2 , 2004, The EMBO journal.
[64] S. Dorland,et al. Parallel pathways of gene regulation: homologous regulators SWI5 and ACE2 differentially control transcription of HO and chitinase. , 1992, Genes & development.
[65] Jacques van Helden,et al. Regulatory Sequence Analysis Tools , 2003, Nucleic Acids Res..