Glucose promotes stress resistance in the fungal pathogen Candida albicans.
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Brice Enjalbert | N. Gow | I. Bohovych | F. Odds | A. Rodaki | T. Young | Tim Young | Neil A R Gow | Frank C Odds | Alistair J P Brown | B. Enjalbert | Alexandra Rodaki | Iryna M Bohovych | A. Brown | A. J. Brown
[1] A. Mitchell,et al. Rapid Hypothesis Testing with Candida albicans through Gene Disruption with Short Homology Regions , 1999, Journal of bacteriology.
[2] C. W. Tabor,et al. Polyamine deficiency leads to accumulation of reactive oxygen species in a spe2Δ mutant of Saccharomyces cerevisiae , 2006, Yeast.
[3] M. Whiteway,et al. Msn2- and Msn4-Like Transcription Factors Play No Obvious Roles in the Stress Responses of the Fungal Pathogen Candida albicans , 2004, Eukaryotic Cell.
[4] N. Martin,et al. CandidaDB: a genome database for Candida albicans pathogenomics , 2004, Nucleic Acids Res..
[5] C. Nombela,et al. Role of the Mitogen-Activated Protein Kinase Hog1p in Morphogenesis and Virulence of Candida albicans , 1999 .
[6] Gerald R. Fink,et al. Transcriptional Response of Candida albicans upon Internalization by Macrophages , 2004, Eukaryotic Cell.
[7] C. Nombela,et al. The mitogen-activated protein kinase homolog HOG1 gene controls glycerol accumulation in the pathogenic fungus Candida albicans , 1996, Journal of bacteriology.
[8] Zhikang Yin,et al. Multiple signalling pathways trigger the exquisite sensitivity of yeast gluconeogenic mRNAs to glucose , 1996, Molecular microbiology.
[9] M. Lorenz,et al. Mutations in Alternative Carbon Utilization Pathways in Candida albicans Attenuate Virulence and Confer Pleiotropic Phenotypes , 2006, Eukaryotic Cell.
[10] S. Ito-Kuwa,et al. Respiration of Candida albicans in Relation to its Morphogenesis , 1982 .
[11] J. Servos,et al. Gene SNQ2 of Saccharomyces cerevislae, which confers resistance to 4-nitroquinoline-N-oxide and other chemicals, encodes a 169 kDa protein homologous to ATP-dependent permeases , 2004, Molecular and General Genetics MGG.
[12] F. Odds,et al. Candida and candidosis , 1979 .
[13] M. Niimi,et al. Respiration of medically important Candida species and Saccharomyces cerevisiae in relation to glucose effect. , 1988, Journal of medical and veterinary mycology : bi-monthly publication of the International Society for Human and Animal Mycology.
[14] J. Gancedo,et al. The early steps of glucose signalling in yeast. , 2008, FEMS microbiology reviews.
[15] G. Thireos,et al. Yap1p, a yeast transcriptional activator that mediates multidrug resistance, regulates the metabolic stress response. , 1994, The EMBO journal.
[16] M. Sasada,et al. Macrophage microbicidal activity. Correlation between phagocytosis-associated oxidative metabolism and the killing of candida by macrophages , 1980, The Journal of experimental medicine.
[17] J. Thevelein,et al. Disruption of the Candida albicans TPS2 Gene Encoding Trehalose-6-Phosphate Phosphatase Decreases Infectivity without Affecting Hypha Formation , 2002, Infection and Immunity.
[18] W. Huh,et al. Characterization of the gene family encoding alternative oxidase from Candida albicans. , 2001, The Biochemical journal.
[19] J. Gancedo. Yeast Carbon Catabolite Repression , 1998, Microbiology and Molecular Biology Reviews.
[20] M. Raymond,et al. The bZip Transcription Factor Cap1p Is Involved in Multidrug Resistance and Oxidative Stress Response inCandida albicans , 1999, Journal of bacteriology.
[21] J. Winderickx,et al. Glucose-sensing mechanisms in eukaryotic cells. , 2001, Trends in biochemical sciences.
[22] A. Goffeau,et al. Identification and Characterization of SNQ2, a New Multidrug ATP Binding Cassette Transporter of the Yeast Plasma Membrane (*) , 1995, The Journal of Biological Chemistry.
[23] W. H. Mager,et al. Coordinate expression of ribosomal protein genes in yeast as a function of cellular growth rate , 2004, Molecular and Cellular Biochemistry.
[24] J. Murphy,et al. Mechanisms of natural resistance to human pathogenic fungi. , 1991, Annual review of microbiology.
[25] Christophe d'Enfert,et al. Stage‐specific gene expression of Candida albicans in human blood , 2003, Molecular microbiology.
[26] Gerald R. Fink,et al. The glyoxylate cycle is required for fungal virulence , 2001, Nature.
[27] Hironobu Nakayama,et al. Tetracycline-Regulatable System To Tightly Control Gene Expression in the Pathogenic Fungus Candida albicans , 2000, Infection and Immunity.
[28] M. Simon,et al. Reactive oxygen species and cellular oxygen sensing. , 2007, Free radical biology & medicine.
[29] D. Sanglard,et al. TAC1, Transcriptional Activator of CDR Genes, Is a New Transcription Factor Involved in the Regulation of Candida albicans ABC Transporters CDR1 and CDR2 , 2004, Eukaryotic Cell.
[30] Martin Schaller,et al. In vivo and ex vivo comparative transcriptional profiling of invasive and non‐invasive Candida albicans isolates identifies genes associated with tissue invasion , 2007, Molecular microbiology.
[31] D. MacCallum,et al. Peroxisomal Fatty Acid β-Oxidation Is Not Essential for Virulence of Candida albicans , 2006, Eukaryotic Cell.
[32] R. Tibshirani,et al. Significance analysis of microarrays applied to the ionizing radiation response , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[33] Q. Sciascia,et al. Identification of the dialysable serum inducer of germ-tube formation in Candida albicans. , 2004, Microbiology.
[34] A. Rodríguez-Navarro,et al. Na(+)-ATPases and Na+/H+ antiporters in fungi. , 1994, Biochimica et biophysica acta.
[35] A. Wiemken. Trehalose in yeast, stress protectant rather than reserve carbohydrate , 1990, Antonie van Leeuwenhoek.
[36] A. Vázquez-Torres,et al. Macrophages in resistance to candidiasis. , 1997, Microbiology and molecular biology reviews : MMBR.
[37] D. Engelberg,et al. The Yeast Ras/Cyclic AMP Pathway Induces Invasive Growth by Suppressing the Cellular Stress Response , 1999, Molecular and Cellular Biology.
[38] W. A. Scheffers,et al. Enzymic analysis of the crabtree effect in glucose-limited chemostat cultures of Saccharomyces cerevisiae , 1989, Applied and environmental microbiology.
[39] M. Blázquez,et al. Disruption of the Candida albicans TPS1Gene Encoding Trehalose-6-Phosphate Synthase Impairs Formation of Hyphae and Decreases Infectivity , 1998, Journal of bacteriology.
[40] F. Klis,et al. Granulocytes govern the transcriptional response, morphology and proliferation of Candida albicans in human blood , 2005, Molecular microbiology.
[41] M. Ramsdale,et al. MNL1 regulates weak acid-induced stress responses of the fungal pathogen Candida albicans. , 2008, Molecular biology of the cell.
[42] Alistair J. P. Brown,et al. Niche-specific regulation of central metabolic pathways in a fungal pathogen , 2006, Cellular microbiology.
[43] 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.
[44] D W Stephen,et al. The role of the YAP1 and YAP2 genes in the regulation of the adaptive oxidative stress responses of Saccharomyces cerevisiae , 1995, Molecular microbiology.
[45] 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.
[46] Zhikang Yin,et al. Glucose triggers different global responses in yeast, depending on the strength of the signal, and transiently stabilizes ribosomal protein mRNAs , 2003, Molecular microbiology.
[47] Bing Guo,et al. Ras Signaling Is Required for Serum-Induced Hyphal Differentiation in Candida albicans , 1999, Journal of bacteriology.
[48] M. Whiteway,et al. Msn 2-and Msn 4-Like Transcription Factors Play No Obvious Roles in the Stress Responses of the Fungal Pathogen Candida albicans † , 2004 .
[49] Gustav Ammerer,et al. Acute glucose starvation activates the nuclear localization signal of a stress‐specific yeast transcription factor , 2002, The EMBO journal.
[50] S. Tenreiro,et al. Resistance and Adaptation to Quinidine in Saccharomyces cerevisiae: Role of QDR1 (YIL120w), Encoding a Plasma Membrane Transporter of the Major Facilitator Superfamily Required for Multidrug Resistance , 2001, Antimicrobial Agents and Chemotherapy.
[51] M Vingron,et al. Transcriptional profiling on all open reading frames of Saccharomyces cerevisiae , 1998, Yeast.
[52] W. Huh,et al. Copper- and zinc-containing superoxide dismutase (Cu/ZnSOD) is required for the protection of Candida albicans against oxidative stresses and the expression of its full virulence. , 2002, Microbiology.
[53] M. Lorenz,et al. Carnitine acetyltransferases are required for growth on non-fermentable carbon sources but not for pathogenesis in Candida albicans. , 2008, Microbiology.
[54] M. Whiteway,et al. Superoxide dismutases in Candida albicans: transcriptional regulation and functional characterization of the hyphal-induced SOD5 gene. , 2003, Molecular biology of the cell.
[55] Alistair J. P. Brown,et al. Niche-Specific Activation of the Oxidative Stress Response by the Pathogenic Fungus Candida albicans , 2007, Infection and Immunity.
[56] M. Whiteway,et al. Transcription profiling of cyclic AMP signaling in Candida albicans. , 2004, Molecular biology of the cell.
[57] Paula Grisafi,et al. Phagocytosis by neutrophils induces an amino acid deprivation response in Saccharomyces cerevisiae and Candida albicans , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[58] M. Cornell,et al. Role of the Hog 1 Stress-activated Protein Kinase in the Global Transcriptional Response to Stress in the Fungal Pathogen Candida albicans , 2006 .
[59] Y. Bahn,et al. Genome-Wide Transcriptional Profiling of the Cyclic AMP-Dependent Signaling Pathway during Morphogenic Transitions of Candida albicans † , 2007 .
[60] J. Argüelles,et al. Protective role of trehalose during severe oxidative stress caused by hydrogen peroxide and the adaptive oxidative stress response in Candida albicans. , 2002, Microbiology.
[61] C. Nombela,et al. The Hog1 Mitogen-Activated Protein Kinase Is Essential in the Oxidative Stress Response and Chlamydospore Formation in Candidaalbicans , 2003, Eukaryotic Cell.
[62] E. Winter,et al. An osmosensing signal transduction pathway in yeast. , 1993, Science.
[63] M. Johnston,et al. Feasting, fasting and fermenting. Glucose sensing in yeast and other cells. , 1999, Trends in genetics : TIG.
[64] M. E. Gent,et al. Transcript analysis of 1003 novel yeast genes using high‐throughput northern hybridizations , 2001, The EMBO journal.
[65] M. Carlson,et al. Glucose repression in yeast. , 1999, Current opinion in microbiology.
[66] Giorgio Gabella,et al. Killing activity of neutrophils is mediated through activation of proteases by K+ flux , 2002, Nature.
[67] Y. Pilpel,et al. Adaptive prediction of environmental changes by microorganisms , 2009, Nature.
[68] J. Becker,et al. Chs1 of Candida albicans is an essential chitin synthase required for synthesis of the septum and for cell integrity , 2001, Molecular microbiology.
[69] D. Irwin,et al. Isogenic strain construction and gene mapping in Candida albicans. , 1993, Genetics.
[70] G. Ayers,et al. Modulating effect of dietary carbohydrate supplementation on Candida albicans colonization and invasion in a neutropenic mouse model , 1993, Infection and immunity.
[71] 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.
[72] Brice Enjalbert,et al. Role of the Hog1 stress-activated protein kinase in the global transcriptional response to stress in the fungal pathogen Candida albicans. , 2005, Molecular biology of the cell.
[73] 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.
[74] J. Argüelles. Thermotolerance and trehalose accumulation induced by heat shock in yeast cells of Candida albicans , 1997 .
[75] Katarzyna Piekarska,et al. Deletion of the high‐affinity cAMP phosphodiesterase encoded by PDE2 affects stress responses and virulence in Candida albicans , 2007, Molecular microbiology.
[76] K. Kuchler,et al. Mechanisms of resistance to azole antifungal agents in Candida albicans isolates from AIDS patients involve specific multidrug transporters , 1995, Antimicrobial agents and chemotherapy.
[77] B. Morgan,et al. A conserved stress-activated protein kinase regulates a core stress response in the human pathogen Candida albicans. , 2004, Molecular biology of the cell.
[78] Martin Schaller,et al. In vivo transcript profiling of Candida albicans identifies a gene essential for interepithelial dissemination , 2007, Cellular microbiology.
[79] F. Estruch,et al. Glucose repression affects ion homeostasis in yeast through the regulation of the stress‐activated ENA1 gene , 1997, Molecular microbiology.
[80] J. Thevelein,et al. Carbon source induced yeast-to-hypha transition in Candida albicans is dependent on the presence of amino acids and on the G-protein-coupled receptor Gpr1. , 2005, Biochemical Society transactions.
[81] P. Robbins,et al. Cloning and Sequencing of a Candida albicans Catalase Gene and Effects of Disruption of This Gene , 1998, Infection and Immunity.
[82] J. Argüelles. Thermotolerance and trehalose accumulation induced by heat shock in yeast cells of Candida albicans. , 2006, FEMS microbiology letters.
[83] N. Gow,et al. Property Differences among the Four Major Candida albicans Strain Clades , 2009, Eukaryotic Cell.
[84] A. Rodríguez-Navarro,et al. A novel P‐type ATPase from yeast involved in sodium transport , 1991, FEBS letters.
[85] F. A. Leone,et al. Quantification of trehalose in biological samples with a conidial trehalase from the thermophilic fungus Humicola grisea var. thermoidea , 1994, World journal of microbiology & biotechnology.
[86] D. Sanglard,et al. Cloning of Candida albicans genes conferring resistance to azole antifungal agents: characterization of CDR2, a new multidrug ABC transporter gene. , 1997, Microbiology.
[87] George Newport,et al. A Human-Curated Annotation of the Candida albicans Genome , 2005, PLoS genetics.
[88] S. Delbrück,et al. Sequence and promoter regulation of the PCK1 gene encoding phosphoenolpyruvate carboxykinase of the fungal pathogen Candida albicans. , 1997, Gene.
[89] G. Church,et al. Discrimination between paralogs using microarray analysis: application to the Yap1p and Yap2p transcriptional networks. , 2002, Molecular biology of the cell.