The genomics of yeast responses to environmental stress and starvation
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[1] P. Brown,et al. New components of a system for phosphate accumulation and polyphosphate metabolism in Saccharomyces cerevisiae revealed by genomic expression analysis. , 2000, Molecular biology of the cell.
[2] Patrick O. Brown,et al. Global and Specific Translational Regulation in the Genomic Response of Saccharomyces cerevisiae to a Rapid Transfer from a Fermentable to a Nonfermentable Carbon Source , 2001, Molecular and Cellular Biology.
[3] W. H. Mager,et al. The control of intracellular glycerol in Saccharomyces cerevisiae influences osmotic stress response and resistance to increased temperature , 2000, Molecular microbiology.
[4] J. Gancedo,et al. Pseudohyphal growth is induced in Saccharomyces cerevisiae by a combination of stress and cAMP signalling , 2000, Antonie van Leeuwenhoek.
[5] J. D. de Winde,et al. Novel sensing mechanisms and targets for the cAMP–protein kinase A pathway in the yeast Saccharomyces cerevisiae , 1999, Molecular microbiology.
[6] Shangtian Yang,et al. Dynamics and modeling of temperature‐regulated gene product expression in recombinant yeast fermentation , 1996, Biotechnology and bioengineering.
[7] Gary D Bader,et al. Systematic Genetic Analysis with Ordered Arrays of Yeast Deletion Mutants , 2001, Science.
[8] H. Bohnert,et al. Transcript Expression in Saccharomyces cerevisiae at High Salinity* 210 , 2001, The Journal of Biological Chemistry.
[9] P J Cullen,et al. Glucose depletion causes haploid invasive growth in yeast. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[10] A. Blomberg,et al. The level of cAMP‐dependent protein kinase A activity strongly affects osmotolerance andosmo‐instigated gene expression changes in Saccharomyces cerevisiae , 2000, Yeast.
[11] J. Lewis,et al. Induction of heat, freezing and salt tolerance by heat and salt shock in Saccharomyces cerevisiae. , 1995, Microbiology.
[12] G. Church,et al. Computational identification of cis-regulatory elements associated with groups of functionally related genes in Saccharomyces cerevisiae. , 2000, Journal of molecular biology.
[13] D. Thiele,et al. Novel stress-responsive genes EMG1 and NOP14 encode conserved, interacting proteins required for 40S ribosome biogenesis. , 2001, Molecular biology of the cell.
[14] Ronald W. Davis,et al. The core meiotic transcriptome in budding yeasts , 2000, Nature Genetics.
[15] M. Snyder,et al. Carbon source induces growth of stationary phase yeast cells, independent of carbon source metabolism , 1993, Yeast.
[16] D. Botstein,et al. The transcriptional program of sporulation in budding yeast. , 1998, Science.
[17] John J. Wyrick,et al. Genome-wide location and function of DNA binding proteins. , 2000, Science.
[18] R. Mitchel,et al. Heat-shock induction of ionizing radiation resistance in Saccharomyces cerevisiae, and correlation with stationary growth phase. , 1982, Radiation research.
[19] J. Thevelein,et al. Osmotic Stress-Induced Gene Expression in Saccharomyces cerevisiae Requires Msn1p and the Novel Nuclear Factor Hot1p , 1999, Molecular and Cellular Biology.
[20] K. Sakaguchi,et al. Proteome mapping by two-dimensional polyacrylamide gel electrophoresis in combination with mass spectrometric protein sequence analysis. , 2000, EXS.
[21] P. Brown,et al. Exploring the metabolic and genetic control of gene expression on a genomic scale. , 1997, Science.
[22] Audrey P. Gasch,et al. The environmental stress response: a common yeast response to diverse environmental stresses , 2003 .
[23] I. Dawes,et al. Saccharomyces cerevisiae has an inducible response to menadione which differs from that to hydrogen peroxide. , 1993, Journal of general microbiology.
[24] I. Stansfield,et al. An MBoC Favorite: TOR controls translation initiation and early G1 progression in yeast , 2012, Molecular biology of the cell.
[25] David Botstein,et al. Promoter-specific binding of Rap1 revealed by genome-wide maps of protein–DNA association , 2001, Nature Genetics.
[26] G. Church,et al. Systematic determination of genetic network architecture , 1999, Nature Genetics.
[27] George M. Church,et al. Regulatory Networks Revealed by Transcriptional Profiling of Damaged Saccharomyces cerevisiae Cells: Rpn4 Links Base Excision Repair with Proteasomes , 2000, Molecular and Cellular Biology.
[28] W. H. Mager,et al. High-osmolarity signalling in Saccharomyces cerevisiae is modulated in a carbon-source-dependent fashion. , 1997, Microbiology.
[29] J. Heitman,et al. The G-Protein β Subunit GPB1 Is Required for Mating and Haploid Fruiting in Cryptococcus neoformans , 2000, Molecular and Cellular Biology.
[30] P. Brown,et al. Identification of the Copper Regulon in Saccharomyces cerevisiae by DNA Microarrays* , 2000, The Journal of Biological Chemistry.
[31] J. D. de Winde,et al. Nutrient-induced signal transduction through the protein kinase A pathway and its role in the control of metabolism, stress resistance, and growth in yeast. , 2000, Enzyme and microbial technology.
[32] A. Schmitt,et al. Transcriptional Factor Mutations Reveal Regulatory Complexities of Heat Shock and Newly Identified Stress Genes in Saccharomyces cerevisiae * , 1998, The Journal of Biological Chemistry.
[33] P. Brown,et al. Protein microarrays for highly parallel detection and quantitation of specific proteins and antibodies in complex solutions , 2001, Genome Biology.
[34] M. Werner-Washburne,et al. Yeast Hsp70 RNA levels vary in response to the physiological status of the cell , 1989, Journal of bacteriology.
[35] C. Saunders,et al. Fluctuation in polyadenylate size and content in exponential- and stationary-phase cells of Saccharomyces cerevisiae , 1980, Journal of bacteriology.
[36] G. Costanzo,et al. Cell Cycle Arrest Determines the Intensity of the Global Transcriptional Response of Saccharomyces cerevisiae to Ionizing Radiation , 2001, Radiation research.
[37] Attila Tóth,et al. A screen for genes required for meiosis and spore formation based on whole-genome expression , 2001, Current Biology.
[38] J. Boeke,et al. A DNA Microarray-Based Genetic Screen for Nonhomologous End-Joining Mutants in Saccharomyces cerevisiae , 2001, Science.
[39] Nicola J. Rinaldi,et al. Serial Regulation of Transcriptional Regulators in the Yeast Cell Cycle , 2001, Cell.
[40] D. Botstein,et al. Genomic expression programs in the response of yeast cells to environmental changes. , 2000, Molecular biology of the cell.
[41] M. Jacquet,et al. Hyperphosphorylation of Msn2p and Msn4p in response to heat shock and the diauxic shift is inhibited by cAMP in Saccharomyces cerevisiae. , 2000, Microbiology.
[42] M. Johnston,et al. A chemical genomics approach toward understanding the global functions of the target of rapamycin protein (TOR). , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[43] T. Powers,et al. Regulation of ribosome biogenesis by the rapamycin-sensitive TOR-signaling pathway in Saccharomyces cerevisiae. , 1999, Molecular biology of the cell.
[44] M. Werner-Washburne,et al. Stationary phase in Saccharomyces cerevisiae , 1996, Molecular microbiology.
[45] Michael N. Hall,et al. The TOR signalling pathway controls nuclear localization of nutrient-regulated transcription factors , 1999, Nature.
[46] Paul V. Attfield,et al. Stress tolerance: The key to effective strains of industrial baker's yeast , 1997, Nature Biotechnology.
[47] B Hamilton,et al. Nuclear localization of the C2H2 zinc finger protein Msn2p is regulated by stress and protein kinase A activity. , 1998, Genes & development.
[48] J. Heitman,et al. Cryptococcus neoformans mating and virulence are regulated by the G-protein alpha subunit GPA1 and cAMP. , 1997, Genes & development.
[49] M. Jia,et al. Global expression profiling of yeast treated with an inhibitor of amino acid biosynthesis, sulfometuron methyl. , 2000, Physiological genomics.
[50] F. Estruch. Stress-controlled transcription factors, stress-induced genes and stress tolerance in budding yeast. , 2000, FEMS microbiology reviews.
[51] J. François,et al. Reserve carbohydrates metabolism in the yeast Saccharomyces cerevisiae. , 2001, FEMS microbiology reviews.
[52] T. Hughes,et al. Signaling and circuitry of multiple MAPK pathways revealed by a matrix of global gene expression profiles. , 2000, Science.
[53] D. Botstein,et al. Genomic expression responses to DNA-damaging agents and the regulatory role of the yeast ATR homolog Mec1p. , 2001, Molecular biology of the cell.
[54] Michael Ruogu Zhang,et al. Comprehensive identification of cell cycle-regulated genes of the yeast Saccharomyces cerevisiae by microarray hybridization. , 1998, Molecular biology of the cell.
[55] F. Estruch,et al. Hsf1p and Msn2/4p cooperate in the expression of Saccharomyces cerevisiae genes HSP26 and HSP104 in a gene‐ and stress type‐dependent manner , 2001, Molecular microbiology.
[56] M. Snyder,et al. A genomic study of the bipolar bud site selection pattern in Saccharomyces cerevisiae. , 2001, Molecular biology of the cell.
[57] M. Snyder,et al. Protein arrays and microarrays. , 2001, Current opinion in chemical biology.
[58] P. Bork,et al. Functional organization of the yeast proteome by systematic analysis of protein complexes , 2002, Nature.
[59] U. Jung,et al. Genome‐wide analysis of gene expression regulated by the yeast cell wall integrity signalling pathway , 1999, Molecular microbiology.
[60] J. Warner,et al. The economics of ribosome biosynthesis in yeast. , 1999, Trends in biochemical sciences.
[61] M. Werner-Washburne,et al. A stationary-phase gene in Saccharomyces cerevisiae is a member of a novel, highly conserved gene family , 1996, Journal of bacteriology.
[62] S. Dequin,et al. Global gene expression during short‐term ethanol stress in Saccharomyces cerevisiae , 2001, FEBS letters.
[63] J. Heyman,et al. The Transcriptional Response of Yeast to Saline Stress* , 2000, The Journal of Biological Chemistry.
[64] J. Farber,et al. Roles for oxidative stress and poly(ADP-ribosyl)ation in the killing of cultured hepatocytes by methyl methanesulfonate. , 1993, Biochemical pharmacology.
[65] L. Gustafsson,et al. Microcalorimetric monitoring of growth of Saccharomyces cerevisiae: osmotolerance in relation to physiological state , 1988, Journal of bacteriology.
[66] J. Haber,et al. NEJ1 controls non-homologous end joining in Saccharomyces cerevisiae , 2001, Nature.
[67] L. Samson,et al. Global response of Saccharomyces cerevisiae to an alkylating agent. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[68] Kei-Hoi Cheung,et al. Large-scale analysis of the yeast genome by transposon tagging and gene disruption , 1999, Nature.
[69] Gary D Bader,et al. Systematic identification of protein complexes in Saccharomyces cerevisiae by mass spectrometry , 2002, Nature.
[70] M. Werner-Washburne,et al. The Highly Conserved, Coregulated SNOand SNZ Gene Families in Saccharomyces cerevisiaeRespond to Nutrient Limitation , 1998, Journal of bacteriology.
[71] M. Gerstein,et al. Global Analysis of Protein Activities Using Proteome Chips , 2001, Science.
[72] A. Blomberg,et al. Global changes in protein synthesis during adaptation of the yeast Saccharomyces cerevisiae to 0.7 M NaCl , 1995, Journal of bacteriology.
[73] M. Ashburner,et al. Gene Ontology: tool for the unification of biology , 2000, Nature Genetics.
[74] J. Broach,et al. Nutrient availability and the RAS/cyclic AMP pathway both induce expression of ribosomal protein genes in Saccharomyces cerevisiae but by different mechanisms , 1995, Molecular and cellular biology.
[75] P. Angel,et al. The level of intracellular glutathione is a key regulator for the induction of stress-activated signal transduction pathways including Jun N-terminal protein kinases and p38 kinase by alkylating agents , 1997, Molecular and cellular biology.
[76] J. Derisi,et al. Plasma membrane compartmentalization in yeast by messenger RNA transport and a septin diffusion barrier. , 2000, Science.
[77] Ronald W. Davis,et al. A genome-wide screen in Saccharomyces cerevisiae for genes affecting UV radiation sensitivity , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[78] D. Botstein,et al. Arrest, adaptation, and recovery following a chromosome double-strand break in Saccharomyces cerevisiae. , 2000, Cold Spring Harbor symposia on quantitative biology.
[79] A. Albig,et al. The target of rapamycin signaling pathway regulates mRNA turnover in the yeast Saccharomyces cerevisiae. , 2001, Molecular biology of the cell.
[80] K. Docherty,et al. Glucose Stimulates Translocation of the Homeodomain Transcription Factor PDX1 from the Cytoplasm to the Nucleus in Pancreatic β-Cells* , 1999, The Journal of Biological Chemistry.
[81] J. Heitman,et al. Signal transduction cascades regulating pseudohyphal differentiation of Saccharomyces cerevisiae. , 2000, Current opinion in microbiology.
[82] Yudong D. He,et al. Functional Discovery via a Compendium of Expression Profiles , 2000, Cell.
[83] J. Garin,et al. Yap1 and Skn7 Control Two Specialized Oxidative Stress Response Regulons in Yeast* , 1999, The Journal of Biological Chemistry.
[84] M. Bard,et al. A novel gene conserved from yeast to humans is involved in sterol biosynthesis. , 2001, Journal of lipid research.
[85] E. Lander,et al. Remodeling of yeast genome expression in response to environmental changes. , 2001, Molecular biology of the cell.
[86] Edward R Sumner,et al. Phenotypic heterogeneity: differential stress resistance among individual cells of the yeast Saccharomyces cerevisiae. , 2002, Microbiology.
[87] P. Magee,et al. Alkylation of protein by methyl methanesulfonate and 1-methyl-1-nitrosourea in vitro. , 1984, Cancer letters.
[88] C. Nierras,et al. Protein Kinase C Enables the Regulatory Circuit That Connects Membrane Synthesis to Ribosome Synthesis in Saccharomyces cerevisiae * , 1999, The Journal of Biological Chemistry.
[89] Peter Walter,et al. Functional and Genomic Analyses Reveal an Essential Coordination between the Unfolded Protein Response and ER-Associated Degradation , 2000, Cell.
[90] K. Kwast,et al. Genomic Analyses of Anaerobically Induced Genes in Saccharomyces cerevisiae: Functional Roles of Rox1 and Other Factors in Mediating the Anoxic Response , 2002, Journal of bacteriology.
[91] J. Thevelein,et al. The Transcriptional Response of Saccharomyces cerevisiae to Osmotic Shock , 2000, The Journal of Biological Chemistry.
[92] C. Ingles,et al. Interorganellar communication. Altered nuclear gene expression profiles in a yeast mitochondrial DNA mutant , 2004 .
[93] R. Metzenberg,et al. Sexual development genes of Neurospora crassa. , 1992, Genetics.
[94] Ronald W. Davis,et al. Functional characterization of the S. cerevisiae genome by gene deletion and parallel analysis. , 1999, Science.
[95] G. Adam,et al. A Saccharomyces cerevisiae UAS element controlled by protein kinase A activates transcription in response to a variety of stress conditions. , 1993, The EMBO journal.
[96] H. Iwahashi,et al. Bioassay of cadmium using a DNA microarray: Genome‐wide expression patterns of Saccharomyces cerevisiae response to cadmium , 2001, Environmental toxicology and chemistry.
[97] J. Buhler,et al. The H2O2 Stimulon in Saccharomyces cerevisiae * , 1998, The Journal of Biological Chemistry.
[98] Kara Dolinski,et al. Integrating functional genomic information into the Saccharomyces Genome Database , 2000, Nucleic Acids Res..
[99] R. Wickner,et al. 3' poly(A) is dispensable for translation. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[100] H. Ruis,et al. The HOG pathway controls osmotic regulation of transcription via the stress response element (STRE) of the Saccharomyces cerevisiae CTT1 gene. , 1994, The EMBO journal.
[101] H. Bussemaker,et al. Regulatory element detection using correlation with expression , 2001, Nature Genetics.
[102] M. Diehn. Large-scale identification of secreted and membrane-associated gene products using DNA microarrays , 1999, Nature Genetics.
[103] D. Botstein,et al. Genomic binding sites of the yeast cell-cycle transcription factors SBF and MBF , 2001, Nature.
[104] Gabriele H. Marchler,et al. Heat shock factor-independent heat control of transcription of the CTT1 gene encoding the cytosolic catalase T of Saccharomyces cerevisiae. , 1991, The Journal of biological chemistry.
[105] A. Blomberg,et al. Protein expression during exponential growth in 0.7 M NaCl medium of Saccharomyces cerevisiae. , 1996, FEMS microbiology letters.
[106] S. Blad,et al. Low external pH induces HOG1‐dependent changes in the organization of the Saccharomyces cerevisiae cell wall , 2001, Molecular microbiology.
[107] M. Werner-Washburne,et al. Protein synthesis in long-term stationary-phase cultures of Saccharomyces cerevisiae , 1994, Journal of bacteriology.
[108] James R. Knight,et al. A comprehensive analysis of protein–protein interactions in Saccharomyces cerevisiae , 2000, Nature.
[109] M. Johnston,et al. Feasting, fasting and fermenting. Glucose sensing in yeast and other cells. , 1999, Trends in genetics : TIG.
[110] M. Carlson,et al. Subcellular localization of the Snf1 kinase is regulated by specific beta subunits and a novel glucose signaling mechanism. , 2001, Genes & development.
[111] G. Carignani,et al. Large‐scale phenotypic analysis reveals identical contributions to cell functions of known and unknown yeast genes , 2001, Yeast.
[112] C. Kooperberg,et al. Widespread Collaboration of Isw2 and Sin3-Rpd3 Chromatin Remodeling Complexes in Transcriptional Repression , 2001, Molecular and Cellular Biology.
[113] Stefan Hohmann,et al. Yeast Stress Responses , 1997, Topics in Current Genetics.
[114] A. Sachs,et al. Glucose depletion rapidly inhibits translation initiation in yeast. , 2000, Molecular biology of the cell.
[115] S. Peltz,et al. Regulated ARE-mediated mRNA decay in Saccharomyces cerevisiae. , 2001, Molecular cell.
[116] J. Fostel,et al. Genome-Wide Expression Patterns inSaccharomyces cerevisiae: Comparison of Drug Treatments and Genetic Alterations Affecting Biosynthesis of Ergosterol , 2000, Antimicrobial Agents and Chemotherapy.
[117] D. Botstein,et al. Cluster analysis and display of genome-wide expression patterns. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[118] 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.
[119] R. Ozawa,et al. A comprehensive two-hybrid analysis to explore the yeast protein interactome , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[120] I. Willis,et al. Repression of Ribosome and tRNA Synthesis in Secretion-Defective Cells Is Signaled by a Novel Branch of the Cell Integrity Pathway , 2000, Molecular and Cellular Biology.
[121] M. Marton,et al. Transcriptional Profiling Shows that Gcn4p Is a Master Regulator of Gene Expression during Amino Acid Starvation in Yeast , 2001, Molecular and Cellular Biology.
[122] P. Brown,et al. Degradation of proteins from the ER of S. cerevisiae requires an intact unfolded protein response pathway. , 2000, Molecular cell.