Experimental Evolution of Yeast for High-Temperature Tolerance
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[1] Jianzhi Zhang,et al. Deciphering the Genic Basis of Yeast Fitness Variation by Simultaneous Forward and Reverse Genetics , 2017, Molecular biology and evolution.
[2] I. Sanchez,et al. A set of nutrient limitations trigger yeast cell death in a nitrogen-dependent manner during wine alcoholic fermentation , 2017, PloS one.
[3] A. Long,et al. Elucidating the molecular architecture of adaptation via evolve and resequence experiments , 2015, Nature Reviews Genetics.
[4] Vihandha O. Wickramasinghe,et al. Control of mammalian gene expression by selective mRNA export , 2015, Nature Reviews Molecular Cell Biology.
[5] Amir Feizi,et al. Altered sterol composition renders yeast thermotolerant , 2014, Science.
[6] Björn Usadel,et al. Trimmomatic: a flexible trimmer for Illumina sequence data , 2014, Bioinform..
[7] S. Thewes. Calcineurin-Crz1 Signaling in Lower Eukaryotes , 2014, Eukaryotic Cell.
[8] Daniel J. Kvitek,et al. PHENOTYPIC AND GENOTYPIC CONVERGENCES ARE INFLUENCED BY HISTORICAL CONTINGENCY AND ENVIRONMENT IN YEAST , 2014, Evolution; international journal of organic evolution.
[9] E. Zubko,et al. Deficiencies in mitochondrial DNA compromise the survival of yeast cells at critically high temperatures. , 2014, Microbiological research.
[10] J. Fay. The molecular basis of phenotypic variation in yeast. , 2013, Current opinion in genetics & development.
[11] Leopold Parts,et al. High-Resolution Mapping of Complex Traits with a Four-Parent Advanced Intercross Yeast Population , 2013, Genetics.
[12] J. Thevelein,et al. QTL Analysis of High Thermotolerance with Superior and Downgraded Parental Yeast Strains Reveals New Minor QTLs and Converges on Novel Causative Alleles Involved in RNA Processing , 2013, PLoS genetics.
[13] Bashir Sajo Mienda,et al. Thermotolerant micro-organisms in Consolidated Bioprocessing for ethanol production: A review , 2013 .
[14] Christopher J. R. Illingworth,et al. Inferring Genome-Wide Recombination Landscapes from Advanced Intercross Lines: Application to Yeast Crosses , 2013, PloS one.
[15] T. Eisenberg,et al. The cell death protease Kex1p is essential for hypochlorite-induced apoptosis in yeast , 2013, Cell cycle.
[16] P. Delobel,et al. Impact of Nutrient Imbalance on Wine Alcoholic Fermentations: Nitrogen Excess Enhances Yeast Cell Death in Lipid-Limited Must , 2013, PloS one.
[17] T. Cech,et al. Finding the end: recruitment of telomerase to telomeres , 2013, Nature Reviews Molecular Cell Biology.
[18] Y. Pilpel,et al. Chromosomal duplication is a transient evolutionary solution to stress , 2012, Proceedings of the National Academy of Sciences.
[19] Daniel M Bader,et al. A beginners guide to SNP calling from high-throughput DNA-sequencing data , 2012, Human Genetics.
[20] Jennifer Abrams,et al. Biology of the Heat Shock Response and Protein Chaperones: Budding Yeast (Saccharomyces cerevisiae) as a Model System , 2012, Microbiology and Molecular Reviews.
[21] Jay H. Konieczka,et al. Convergent Evolution of Calcineurin Pathway Roles in Thermotolerance and Virulence in Candida glabrata , 2012, G3: Genes | Genomes | Genetics.
[22] A. Gunjan,et al. Novel E3 Ubiquitin Ligases That Regulate Histone Protein Levels in the Budding Yeast Saccharomyces cerevisiae , 2012, PloS one.
[23] Steven L Salzberg,et al. Fast gapped-read alignment with Bowtie 2 , 2012, Nature Methods.
[24] A. F. Bennett,et al. The Molecular Diversity of Adaptive Convergence , 2012, Science.
[25] Heng Li,et al. A statistical framework for SNP calling, mutation discovery, association mapping and population genetical parameter estimation from sequencing data , 2011, Bioinform..
[26] Zhihao Zhuang,et al. Biochemical characterization of a multidomain deubiquitinating enzyme Ubp15 and the regulatory role of its terminal domains. , 2011, Biochemistry.
[27] M. DePristo,et al. A framework for variation discovery and genotyping using next-generation DNA sequencing data , 2011, Nature Genetics.
[28] Alan M. Moses,et al. Revealing the genetic structure of a trait by sequencing a population under selection. , 2011, Genome research.
[29] A. Hoffmann,et al. Climate change and evolutionary adaptation , 2011, Nature.
[30] Helga Thorvaldsdóttir,et al. Integrative Genomics Viewer , 2011, Nature Biotechnology.
[31] H. Hakonarson,et al. ANNOVAR: functional annotation of genetic variants from high-throughput sequencing data , 2010, Nucleic acids research.
[32] B. Freeman,et al. HSP90 manages the ends. , 2010, Trends in biochemical sciences.
[33] M. Niepel,et al. The nuclear pore complex: bridging nuclear transport and gene regulation , 2010, Nature Reviews Molecular Cell Biology.
[34] Jun Yu,et al. KaKs_Calculator 2.0: A Toolkit Incorporating Gamma-Series Methods and Sliding Window Strategies , 2010, Genom. Proteom. Bioinform..
[35] A. Hopper,et al. Regulation of tRNA Bidirectional Nuclear-Cytoplasmic Trafficking in Saccharomyces cerevisiae , 2010, Molecular biology of the cell.
[36] G. Crabtree,et al. Chromatin remodelling during development , 2010, Nature.
[37] Gonçalo R. Abecasis,et al. The Sequence Alignment/Map format and SAMtools , 2009, Bioinform..
[38] Richard Durbin,et al. Sequence analysis Fast and accurate short read alignment with Burrows – Wheeler transform , 2009 .
[39] A. Gunjan,et al. Histone levels are regulated by phosphorylation and ubiquitylation dependent proteolysis , 2009, Nature Cell Biology.
[40] Chao Xie,et al. CNV-seq, a new method to detect copy number variation using high-throughput sequencing , 2009, BMC Bioinformatics.
[41] Himanshu Sinha,et al. Sequential Elimination of Major-Effect Contributors Identifies Additional Quantitative Trait Loci Conditioning High-Temperature Growth in Yeast , 2008, Genetics.
[42] W. J. Dickinson,et al. A genome-wide view of the spectrum of spontaneous mutations in yeast , 2008, Proceedings of the National Academy of Sciences.
[43] Vishwanath R. Iyer,et al. Stress-Dependent Dynamics of Global Chromatin Remodeling in Yeast: Dual Role for SWI/SNF in the Heat Shock Stress Response , 2008, Molecular and Cellular Biology.
[44] Andrew W. Murray,et al. Estimating the Per-Base-Pair Mutation Rate in the Yeast Saccharomyces cerevisiae , 2008, Genetics.
[45] Brad T. Sherman,et al. Systematic and integrative analysis of large gene lists using DAVID bioinformatics resources , 2008, Nature Protocols.
[46] David Bryant,et al. DAVID Bioinformatics Resources: expanded annotation database and novel algorithms to better extract biology from large gene lists , 2007, Nucleic Acids Res..
[47] T. Kleine,et al. Interorganellar communication. , 2007, Current opinion in plant biology.
[48] Susan R. Wente,et al. Inositol hexakisphosphate and Gle1 activate the DEAD-box protein Dbp5 for nuclear mRNA export , 2006, Nature Cell Biology.
[49] Himanshu Sinha,et al. Complex Genetic Interactions in a Quantitative Trait Locus , 2006, PLoS genetics.
[50] J. Jiménez,et al. Yeast cell viability under conditions of high temperature and ethanol concentrations depends on the mitochondrial genome , 1988, Current Genetics.
[51] Wen-Hsiung Li. Unbiased estimation of the rates of synonymous and nonsynonymous substitution , 2006, Journal of Molecular Evolution.
[52] D. Krysan,et al. Yapsins Are a Family of Aspartyl Proteases Required for Cell Wall Integrity in Saccharomyces cerevisiae , 2005, Eukaryotic Cell.
[53] David E. Levin,et al. Cell Wall Integrity Signaling in Saccharomyces cerevisiae , 2005, Microbiology and Molecular Biology Reviews.
[54] Y. Inoue,et al. Methylglyoxal, a Metabolite Derived from Glycolysis, Functions as a Signal Initiator of the High Osmolarity Glycerol-Mitogen-activated Protein Kinase Cascade and Calcineurin/Crz1-mediated Pathway in Saccharomyces cerevisiae* , 2005, Journal of Biological Chemistry.
[55] M. Rose,et al. Lrg1p Is a Rho1 GTPase-Activating Protein Required for Efficient Cell Fusion in Yeast , 2004, Genetics.
[56] J. Hahn,et al. Activation of the Saccharomyces cerevisiae Heat Shock Transcription Factor Under Glucose Starvation Conditions by Snf1 Protein Kinase* , 2004, Journal of Biological Chemistry.
[57] D. Hirata,et al. Evidence for Antagonistic Regulation of Cell Growth by the Calcineurin and High Osmolarity Glycerol Pathways in Saccharomyces cerevisiae* , 2004, Journal of Biological Chemistry.
[58] D. Lew,et al. Stress-specific Activation Mechanisms for the “Cell Integrity” MAPK Pathway* , 2004, Journal of Biological Chemistry.
[59] B. Dujon,et al. Eucaryotic genome evolution through the spontaneous duplication of large chromosomal segments , 2004, The EMBO journal.
[60] Julian Adams,et al. Adaptation and major chromosomal changes in populations of Saccharomyces cerevisiae , 1992, Current Genetics.
[61] M. Bolotin-Fukuhara,et al. Temperature-sensitive respiratory-deficient mitochondrial mutations: Isolation and genetic mapping , 1977, Molecular and General Genetics MGG.
[62] I. Dawes,et al. Selective killing of vegetative cells in sporulated yeast cultures by exposure to diethyl ether , 2004, Molecular and General Genetics MGG.
[63] David W. Miller,et al. The structure of the APPBP1-UBA3-NEDD8-ATP complex reveals the basis for selective ubiquitin-like protein activation by an E1. , 2003, Molecular cell.
[64] T. Cech,et al. N-terminal domain of yeast telomerase reverse transcriptase: recruitment of Est3p to the telomerase complex. , 2003, Molecular biology of the cell.
[65] J. Thorner,et al. Pkh1 and Pkh2 differentially phosphorylate and activate Ypk1 and Ykr2 and define protein kinase modules required for maintenance of cell wall integrity. , 2002, Molecular biology of the cell.
[66] I. Ota,et al. Heat Stress Activates the Yeast High-Osmolarity Glycerol Mitogen-Activated Protein Kinase Pathway, and Protein Tyrosine Phosphatases Are Essential under Heat Stress , 2002, Eukaryotic Cell.
[67] Daniel R. Richards,et al. Dissecting the architecture of a quantitative trait locus in yeast , 2002, Nature.
[68] J. Heinisch,et al. Lrg1p functions as a putative GTPase-activating protein in the Pkc1p-mediated cell integrity pathway in Saccharomyces cerevisiae , 2001, Molecular Genetics and Genomics.
[69] S. Hohmann,et al. Transposon mutagenesis reveals novel loci affecting tolerance to salt stress and growth at low temperature , 2001, Current Genetics.
[70] Yoshikazu Ohya,et al. Yeast Lrg1p acts as a specialized RhoGAP regulating 1,3‐β‐glucan synthesis , 2001 .
[71] C. Ingles,et al. Interorganellar Communication , 2001, The Journal of Biological Chemistry.
[72] Y. Ohya,et al. Yeast Lrg1p acts as a specialized RhoGAP regulating 1,3-beta-glucan synthesis. , 2001, Yeast.
[73] X. Roucou,et al. Insights into ATP synthase assembly and function through the molecular genetic manipulation of subunits of the yeast mitochondrial enzyme complex. , 2000, Biochimica et biophysica acta.
[74] G. Walker,et al. Chemically synthesized ubiquitin extension proteins detect distinct catalytic capacities of deubiquitinating enzymes. , 1999, Analytical biochemistry.
[75] M. Ward,et al. Yeast PKA represses Msn2p/Msn4p‐dependent gene expression to regulate growth, stress response and glycogen accumulation , 1998, The EMBO journal.
[76] M. Cyert,et al. Temperature-Induced Expression of YeastFKS2 Is under the Dual Control of Protein Kinase C and Calcineurin , 1998, Molecular and Cellular Biology.
[77] S. Jentsch,et al. The ubiquitin-like proteins SMT3 and SUMO-1 are conjugated by the UBC9 E2 enzyme. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[78] R. Ballester,et al. A family of genes required for maintenance of cell wall integrity and for the stress response in Saccharomyces cerevisiae. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[79] T. Hughes,et al. Three Ever Shorter Telomere (EST) genes are dispensable for in vitro yeast telomerase activity. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[80] H. Bussey,et al. Large scale identification of genes involved in cell surface biosynthesis and architecture in Saccharomyces cerevisiae. , 1997, Genetics.
[81] S. Nwaka,et al. Neutral trehalase Nth1p of Saccharomyces cerevisiae encoded by the NTH1 gene is a multiple stress responsive protein , 1997, FEBS letters.
[82] P. Piper,et al. Hsp30, the integral plasma membrane heat shock protein of Saccharomyces cerevisiae, is a stress-inducible regulator of plasma membrane H(+)-ATPase. , 1997, Cell stress & chaperones.
[83] A. F. Bennett,et al. EVOLUTIONARY ADAPTATION TO TEMPERATURE. V. ADAPTIVE MECHANISMS AND CORRELATED RESPONSES IN EXPERIMENTAL LINES OF ESCHERICHIA COLI , 1996, Evolution; international journal of organic evolution.
[84] E. Jacobs,et al. A method for performing precise alterations in the yeast genome using a recycable selectable marker. , 1995, Nucleic acids research.
[85] U. Jung,et al. The protein kinase C-activated MAP kinase pathway of Saccharomyces cerevisiae mediates a novel aspect of the heat shock response. , 1995, Genes & development.
[86] R. W. Davis,et al. Saccharomyces cerevisiae virulence phenotype as determined with CD-1 mice is associated with the ability to grow at 42 degrees C and form pseudohyphae , 1994, Infection and immunity.
[87] Ronald W. Davis,et al. Genetic characterization of pathogenic Saccharomyces cerevisiae isolates. , 1994, Genetics.
[88] R. W. Davis,et al. Comparative pathogenesis of clinical and nonclinical isolates of Saccharomyces cerevisiae. , 1994, The Journal of infectious diseases.
[89] K. Watson,et al. Stress tolerance and membrane lipid unsaturation in Saccharomyces cerevisiae grown aerobically or anaerobically. , 1994, Microbiology.
[90] N. Bianchi,et al. Evolution of the Zfx and Zfy genes: rates and interdependence between the genes. , 1993, Molecular biology and evolution.
[91] J. Drake. A constant rate of spontaneous mutation in DNA-based microbes. , 1991, Proceedings of the National Academy of Sciences of the United States of America.
[92] T. Cooper,et al. The DAL81 gene product is required for induced expression of two differently regulated nitrogen catabolic genes in Saccharomyces cerevisiae , 1991, Molecular and cellular biology.
[93] R. Lenski,et al. Long-term experimental evolution in Escherichia coli , 1991 .
[94] I. Herskowitz,et al. Putting the HO gene to work: practical uses for mating-type switching. , 1991, Methods in enzymology.
[95] I. Dunham,et al. Rapid assessment of S. cerevisiae mating type by PCR. , 1990, Trends in genetics : TIG.
[96] A. Lambowitz,et al. Correlation between pathogenicity and temperature sensitivity in different strains of Histoplasma capsulatum. , 1986, The Journal of clinical investigation.
[97] K. Tatchell,et al. Molecular cloning and characterization of the STE7 and STE11 genes of Saccharomyces cerevisiae , 1985, Molecular and cellular biology.
[98] M. Carlson,et al. Cloning and genetic mapping of SNF1, a gene required for expression of glucose-repressible genes in Saccharomyces cerevisiae , 1984, Molecular and cellular biology.
[99] H. Fukuhara,et al. Spontaneous and induced rho mutants of Saccharomyces cerevisiae: patterns of loss of mitochondrial genetic markers , 1979, Journal of bacteriology.
[100] F. Sherman. The effects of elevated temperatures on yeast. II. Induction of respiratory-deficient mutants. , 1959, Journal of cellular and comparative physiology.