A Network of Paralogous Stress Response Transcription Factors in the Human Pathogen Candida glabrata
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Gaëlle Lelandais | Frédéric Devaux | Stéphane Le Crom | Jean-Michel Camadro | F. Devaux | G. Lelandais | C. Blugeon | Mohammed el amine Ali Chaouche | Antonin Thiébaut | S. Le Crom | J. Camadro | Corinne Blugeon | J. Merhej | Jawad Merhej | Antonin Thiebaut | Juliette Pouch | Mohammed El Amine Ali Chaouche | Juliette Pouch | Jawad Merhej
[1] Liming Liu,et al. Transcription factors Asg1p and Hal9p regulate pH homeostasis in Candida glabrata , 2015, Front. Microbiol..
[2] Trey Ideker,et al. Coevolution within a transcriptional network by compensatory trans and cis mutations. , 2010, Genome research.
[3] R. Lill,et al. The role of mitochondria in cytosolic-nuclear iron–sulfur protein biogenesis and in cellular iron regulation. , 2014, Current opinion in microbiology.
[4] M. Gerstein,et al. Structure and evolution of transcriptional regulatory networks. , 2004, Current opinion in structural biology.
[5] Ramin Homayouni,et al. Genomewide Expression Profile Analysis of the Candida glabrata Pdr1 Regulon , 2010, Eukaryotic Cell.
[6] K. Kuchler,et al. The Facultative Intracellular Pathogen Candida glabrata Subverts Macrophage Cytokine Production and Phagolysosome Maturation , 2011, The Journal of Immunology.
[7] Judith Berman. Candida albicans , 2012, Current Biology.
[8] T. Gabaldón,et al. Regulation of Candida glabrata oxidative stress resistance is adapted to host environment , 2011, FEBS letters.
[9] W. S. Moye-Rowley,et al. Differential Oxidant Tolerance Determined by the Key Transcription Factor Yap1 Is Controlled by Levels of the Yap1-binding Protein, Ybp1* , 2011, The Journal of Biological Chemistry.
[10] M. Lorenz,et al. A Potent Plant-Derived Antifungal Acetylenic Acid Mediates Its Activity by Interfering with Fatty Acid Homeostasis , 2012, Antimicrobial Agents and Chemotherapy.
[11] T. Yonetani. [Cytochrome C peroxidase]. , 1968, Tanpakushitsu kakusan koso. Protein, nucleic acid, enzyme.
[12] A. Hubbard,et al. Genome-Wide Functional Profiling Reveals Genes Required for Tolerance to Benzene Metabolites in Yeast , 2011, PloS one.
[13] Timothy Ravasi,et al. A systems approach to delineate functions of paralogous transcription factors: Role of the Yap family in the DNA damage response , 2008, Proceedings of the National Academy of Sciences.
[14] A. English,et al. Cytochrome c peroxidase is a mitochondrial heme-based H2O2 sensor that modulates antioxidant defense. , 2013, Free radical biology & medicine.
[15] J. Guarro,et al. HapX-Mediated Iron Homeostasis Is Essential for Rhizosphere Competence and Virulence of the Soilborne Pathogen Fusarium oxysporum[C][W][OA] , 2012, Plant Cell.
[16] K. Yanagihara,et al. Skn7p Is Involved in Oxidative Stress Response and Virulence of Candida glabrata , 2010, Mycopathologia.
[17] A. De Las Peñas,et al. The oxidative stress response of the opportunistic fungal pathogen Candida glabrata. , 2014, Revista iberoamericana de micologia.
[18] Marta A. Uzarska,et al. Cytosolic monothiol glutaredoxins function in intracellular iron sensing and trafficking via their bound iron-sulfur cluster. , 2010, Cell metabolism.
[19] K. Natarajan,et al. Cap2-HAP Complex Is a Critical Transcriptional Regulator That Has Dual but Contrasting Roles in Regulation of Iron Homeostasis in Candida albicans* , 2011, The Journal of Biological Chemistry.
[20] Catarina Costa,et al. The YEASTRACT database: an upgraded information system for the analysis of gene and genomic transcription regulation in Saccharomyces cerevisiae , 2013, Nucleic Acids Res..
[21] C. Rodrigues-Pousada,et al. Expression of YAP4 in Saccharomyces cerevisiae under osmotic stress. , 2004, The Biochemical journal.
[22] Peter Temitope Adeboye,et al. The chemical nature of phenolic compounds determines their toxicity and induces distinct physiological responses in Saccharomyces cerevisiae in lignocellulose hydrolysates , 2014, AMB Express.
[23] Orr Ashenberg,et al. Networks of bZIP Protein-Protein Interactions Diversified Over a Billion Years of Evolution , 2013, Science.
[24] Chung-Yu Lan,et al. Candida albicans Hap43 Is a Repressor Induced under Low-Iron Conditions and Is Essential for Iron-Responsive Transcriptional Regulation and Virulence , 2010, Eukaryotic Cell.
[25] Martin Radolf,et al. Sorbic acid stress activates the Candida glabrata high osmolarity glycerol MAP kinase pathway , 2013, Front. Microbiol..
[26] D. Raitt,et al. The Skn7 response regulator controls gene expression in the oxidative stress response of the budding yeast Saccharomyces cerevisiae , 1997, The EMBO journal.
[27] André Nantel,et al. Evolutionary Tinkering with Conserved Components of a Transcriptional Regulatory Network , 2010, PLoS biology.
[28] P. A. Rea,et al. A new pathway for vacuolar cadmium sequestration in Saccharomyces cerevisiae: YCF1-catalyzed transport of bis(glutathionato)cadmium. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[29] C. Rodrigues-Pousada,et al. The Role of the Yap5 Transcription Factor in Remodeling Gene Expression in Response to Fe Bioavailability , 2012, PloS one.
[30] P. Philippsen,et al. Additional modules for versatile and economical PCR‐based gene deletion and modification in Saccharomyces cerevisiae , 1998, Yeast.
[31] B. Spellberg,et al. Nosocomial fungal infections: epidemiology, diagnosis, and treatment. , 2007, Medical mycology.
[32] C. Rodrigues-Pousada,et al. The S. cerevisiae Yap1 and Yap2 transcription factors share a common cadmium‐sensing domain , 2007, FEBS letters.
[33] J. Hahn,et al. A stress regulatory network for co‐ordinated activation of proteasome expression mediated by yeast heat shock transcription factor , 2006, Molecular microbiology.
[34] C. Rodrigues-Pousada,et al. Inhibition of Yap2 activity by MAPKAP kinase Rck1 affects yeast tolerance to cadmium , 2015, FEBS letters.
[35] Hubertus Haas,et al. HapX-Mediated Adaption to Iron Starvation Is Crucial for Virulence of Aspergillus fumigatus , 2010, PLoS pathogens.
[36] W. S. Moye-Rowley,et al. Identification of Genomic Binding Sites for Candida glabrata Pdr1 Transcription Factor in Wild-Type and ρ0 Cells , 2014, Antimicrobial Agents and Chemotherapy.
[37] Tetsuo Kobayashi,et al. Deciphering the Combinatorial DNA-binding Code of the CCAAT-binding Complex and the Iron-regulatory Basic Region Leucine Zipper (bZIP) Transcription Factor HapX* , 2015, The Journal of Biological Chemistry.
[38] C. Rodrigues-Pousada,et al. Two Residues in the Basic Region of the Yeast Transcription Factor Yap8 Are Crucial for Its DNA-Binding Specificity , 2013, PloS one.
[39] Michael J. Buck,et al. The Stress Response Factors Yap6, Cin5, Phd1, and Skn7 Direct Targeting of the Conserved Co-Repressor Tup1-Ssn6 in S. cerevisiae , 2011, PloS one.
[40] T. Gabaldón,et al. The birth of a deadly yeast: tracing the evolutionary emergence of virulence traits in Candida glabrata , 2015, FEMS yeast research.
[41] T. Ideker,et al. Integrating phenotypic and expression profiles to map arsenic-response networks , 2004, Genome Biology.
[42] E. Werner,et al. The Janus transcription factor HapX controls fungal adaptation to both iron starvation and iron excess , 2014, The EMBO journal.
[43] Masashi Kato,et al. Interaction of HapX with the CCAAT‐binding complex—a novel mechanism of gene regulation by iron , 2007, The EMBO journal.
[44] Nicolas Servant,et al. Goulphar: rapid access and expertise for standard two-color microarray normalization methods , 2006, BMC Bioinformatics.
[45] J. van Helden,et al. RSAT peak-motifs: motif analysis in full-size ChIP-seq datasets , 2011, Nucleic acids research.
[46] B. Tuch,et al. An iron homeostasis regulatory circuit with reciprocal roles in Candida albicans commensalism and pathogenesis. , 2011, Cell host & microbe.
[47] F. Devaux,et al. bPeaks: a bioinformatics tool to detect transcription factor binding sites from ChIPseq data in yeasts and other organisms with small genomes , 2014, Yeast.
[48] D. Sanglard,et al. Analysis of the oxidative stress regulation of the Candida albicans transcription factor, Cap1p , 2000, Molecular microbiology.
[49] D. Raitt,et al. The Skn 7 response regulator controls gene expression in the oxidative stress response of the budding yeast Saccharomyces cerevisiae factors , Yap 1 and Yap 2 , was found to confer resistance , 2013 .
[50] Liangtao Li,et al. Yap5 Protein-regulated Transcription of the TYW1 Gene Protects Yeast from High Iron Toxicity* , 2011, The Journal of Biological Chemistry.
[51] D. Winge,et al. Role of Glutaredoxin-3 and Glutaredoxin-4 in the Iron Regulation of the Aft1 Transcriptional Activator in Saccharomyces cerevisiae* , 2006, Journal of Biological Chemistry.
[52] C. Etchebest,et al. The Reconstruction of Condition-Specific Transcriptional Modules Provides New Insights in the Evolution of Yeast AP-1 Proteins , 2011, PloS one.
[53] B. Posteraro,et al. Contribution of CgPDR1-Regulated Genes in Enhanced Virulence of Azole-Resistant Candida glabrata , 2011, PloS one.
[54] Repression of the Low Affinity Iron Transporter Gene FET4 , 2015, The Journal of Biological Chemistry.
[55] Helga Thorvaldsdóttir,et al. Integrative Genomics Viewer (IGV): high-performance genomics data visualization and exploration , 2012, Briefings Bioinform..
[56] Markus J. Tamás,et al. Arsenic Directly Binds to and Activates the Yeast AP-1-Like Transcription Factor Yap8 , 2015, Molecular and Cellular Biology.
[57] A. Goffeau,et al. Isolation of Three Contiguous Genes, ACR1, ACR2 and ACR3, Involved in Resistance to Arsenic Compounds in the Yeast Saccharomyces cerevisiae , 1997, Yeast.
[58] R. Homayouni,et al. Pdr1 regulates multidrug resistance in Candida glabrata: gene disruption and genome‐wide expression studies , 2006, Molecular microbiology.
[59] Gábor Csárdi,et al. The igraph software package for complex network research , 2006 .
[60] D. Thiele,et al. Coordinated Remodeling of Cellular Metabolism during Iron Deficiency through Targeted mRNA Degradation , 2005, Cell.
[61] J. Pincemail,et al. [Oxidative stress]. , 2007, Revue medicale de Liege.
[62] Ziv Bar-Joseph,et al. Evolutionary divergence in the fungal response to fluconazole revealed by soft clustering , 2010, Genome Biology.
[63] Bernhard Hube,et al. Two unlike cousins: Candida albicans and C. glabrata infection strategies , 2013, Cellular microbiology.
[64] J. Bennett,et al. The bZip transcription factor Cgap1p is involved in multidrug resistance and required for activation of multidrug transporter gene CgFLR1 in Candida glabrata. , 2007, Gene.
[65] J. Garin,et al. Yap1 and Skn7 Control Two Specialized Oxidative Stress Response Regulons in Yeast* , 1999, The Journal of Biological Chemistry.
[66] Amy C. Kelly,et al. Saccharomyces cerevisiae , 2013, Prion.
[67] M. Zupancic,et al. Nicotinic Acid Limitation Regulates Silencing of Candida Adhesins During UTI , 2005, Science.
[68] A. De Las Peñas,et al. Is Controlled by the Transcription Factors Mediated by a Single Catalase, Cta1p, and Is Candida Glabrata Fungal Pathogen High Resistance to Oxidative Stress in The , 2008 .
[69] Alexander van Oudenaarden,et al. Highly expressed loci are vulnerable to misleading ChIP localization of multiple unrelated proteins , 2013, Proceedings of the National Academy of Sciences.
[70] Manolis Kellis,et al. Evolutionary principles of modular gene regulation in yeasts , 2013, eLife.
[71] A. Altschul,et al. CYTOCHROME C PEROXIDASE , 1940 .
[72] S. Kuge,et al. Peroxiredoxin Ahp1 Acts as a Receptor for Alkylhydroperoxides to Induce Disulfide Bond Formation in the Cad1 Transcription Factor* , 2010, The Journal of Biological Chemistry.
[73] A. Bovier,et al. Optimization of transcription factor binding map accuracy utilizing knockout-mouse models , 2014, Nucleic acids research.
[74] G. Boucher,et al. Identification of the Candida albicans Cap1p Regulon , 2009, Eukaryotic Cell.
[75] Aaron R. Quinlan,et al. Bioinformatics Applications Note Genome Analysis Bedtools: a Flexible Suite of Utilities for Comparing Genomic Features , 2022 .
[76] R. Lill,et al. The Basic Leucine Zipper Stress Response Regulator Yap5 Senses High-Iron Conditions by Coordination of [2Fe-2S] Clusters , 2014, Molecular and Cellular Biology.
[77] Ramón Serrano,et al. Yeast putative transcription factors involved in salt tolerance , 1998, FEBS letters.
[78] Joshua A. Grochow,et al. Genomic analysis reveals a tight link between transcription factor dynamics and regulatory network architecture , 2009, Molecular systems biology.
[79] Wei-Sheng Wu,et al. Identifying gene regulatory modules of heat shock response in yeast , 2008, BMC Genomics.
[80] G. Lelandais,et al. ChIPseq in Yeast Species: From Chromatin Immunoprecipitation to High-Throughput Sequencing and Bioinformatics Data Analyses. , 2016, Methods in molecular biology.
[81] V. Lee. Membrane transporters. , 2000, European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences.
[82] T. Delaveau,et al. Yap7 is a transcriptional repressor of nitric oxide oxidase in yeasts, which arose from neofunctionalization after whole genome duplication , 2015, Molecular microbiology.
[83] Frédéric Devaux,et al. Structure and properties of transcriptional networks driving selenite stress response in yeasts , 2008, BMC Genomics.
[84] R. Serrano,et al. Proft Saccharomyces cerevisiae Transcription in Stress-RegulatedAntagonistically Modulate The Sko 1 p Repressor and Gcn 4 p Activator , 2000 .
[85] M. Cerdán,et al. Regulatory factors controlling transcription of Saccharomyces cerevisiae IXR1 by oxygen levels: a model of transcriptional adaptation from aerobiosis to hypoxia implicating ROX1 and IXR1 cross-regulation. , 2009, The Biochemical journal.
[86] D. Hirata,et al. Stress-induced transcriptional activation mediated by YAP1 and YAP2 genes that encode the Jun family of transcriptional activators in Saccharomyces cerevisiae , 1994, Molecular and General Genetics MGG.
[87] Nicola J. Rinaldi,et al. Transcriptional regulatory code of a eukaryotic genome , 2004, Nature.
[88] Ryo Ueta,et al. Iron-Induced Dissociation of the Aft1p Transcriptional Regulator from Target Gene Promoters Is an Initial Event in Iron-Dependent Gene Suppression , 2012, Molecular and Cellular Biology.
[89] S. Bar-Nun,et al. Deteriorated Stress Response in Stationary-Phase Yeast: Sir2 and Yap1 Are Essential for Hsf1 Activation by Heat Shock and Oxidative Stress, Respectively , 2014, PloS one.
[90] Kjell Petersen,et al. Analysis of Gene‐Expression Data Using J‐Express , 2008, Current protocols in bioinformatics.
[91] Aviv Regev,et al. Gene duplication and the evolution of ribosomal protein gene regulation in yeast , 2010, Proceedings of the National Academy of Sciences.
[92] Marek S. Skrzypek,et al. The Candida genome database incorporates multiple Candida species: multispecies search and analysis tools with curated gene and protein information for Candida albicans and Candida glabrata , 2011, Nucleic Acids Res..
[93] K. Kuchler,et al. Immune Evasion, Stress Resistance, and Efficient Nutrient Acquisition Are Crucial for Intracellular Survival of Candida glabrata within Macrophages , 2013, Eukaryotic Cell.
[94] D. Thiele,et al. Host Iron Withholding Demands Siderophore Utilization for Candida glabrata to Survive Macrophage Killing , 2011, PLoS pathogens.
[95] Nitin Bhardwaj,et al. Rewiring of Transcriptional Regulatory Networks: Hierarchy, Rather Than Connectivity, Better Reflects the Importance of Regulators , 2010, Science Signaling.
[96] G. Alangaden,et al. Nosocomial Fungal Infections: Epidemiology, Infection Control, and Prevention. , 2016, Infectious disease clinics of North America.
[97] M. Cerdán,et al. The yeast hypoxic responses, resources for new biotechnological opportunities , 2012, Biotechnology Letters.
[98] Liangtao Li,et al. Yap5 Is an Iron-Responsive Transcriptional Activator That Regulates Vacuolar Iron Storage in Yeast , 2007, Molecular and Cellular Biology.
[99] K. Kuchler,et al. Candida glabrata environmental stress response involves Saccharomyces cerevisiae Msn2/4 orthologous transcription factors , 2008, Molecular microbiology.
[100] Alexander D. Johnson,et al. An expanded regulatory network temporally controls C andida albicans biofilm formation , 2015, Molecular microbiology.
[101] Catherine Etchebest,et al. Genome adaptation to chemical stress: clues from comparative transcriptomics in Saccharomyces cerevisiae and Candida glabrata , 2008, Genome Biology.
[102] D. Thiele,et al. Cadmium tolerance mediated by the yeast AP-1 protein requires the presence of an ATP-binding cassette transporter-encoding gene, YCF1. , 1994, The Journal of biological chemistry.
[103] T. Myers,et al. STB5 Is a Negative Regulator of Azole Resistance in Candida glabrata , 2012, Antimicrobial Agents and Chemotherapy.
[104] N Jones,et al. Regulation of yAP‐1 nuclear localization in response to oxidative stress , 1997, The EMBO journal.
[105] Toshio Hakoshima,et al. Structural basis for the diversity of DNA recognition by bZIP transcription factors , 2000, Nature Structural Biology.
[106] Mark B Gerstein,et al. Dynamic and complex transcription factor binding during an inducible response in yeast. , 2009, Genes & development.
[107] Raluca Gordân,et al. Curated collection of yeast transcription factor DNA binding specificity data reveals novel structural and gene regulatory insights , 2011, Genome Biology.
[108] C. Rodrigues-Pousada,et al. The Yap family and its role in stress response , 2010, Yeast.
[109] Alexander D. Johnson,et al. A Recently Evolved Transcriptional Network Controls Biofilm Development in Candida albicans , 2012, Cell.
[110] Pablo Tamayo,et al. Gene set enrichment analysis: A knowledge-based approach for interpreting genome-wide expression profiles , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[111] M. Arisawa,et al. Cloning of the Candida glabrata TRP1 and HIS3 genes, and construction of their disruptant strains by sequential integrative transformation. , 1995, Gene.
[112] S. Ottonello,et al. Membrane transporters and protein traffic networks differentially affecting metal tolerance: a genomic phenotyping study in yeast , 2008, Genome Biology.
[113] Vishwanath R. Iyer,et al. Widespread Misinterpretable ChIP-seq Bias in Yeast , 2013, PloS one.
[114] Hironobu Nakayama,et al. Dissection of Ire1 Functions Reveals Stress Response Mechanisms Uniquely Evolved in Candida glabrata , 2013, PLoS pathogens.
[115] Matthew E. Ritchie,et al. limma powers differential expression analyses for RNA-sequencing and microarray studies , 2015, Nucleic acids research.
[116] C. D'souza,et al. HapX Positively and Negatively Regulates the Transcriptional Response to Iron Deprivation in Cryptococcus neoformans , 2010, PLoS pathogens.