Aspergillus fumigatus Transcription Factors Involved in the Caspofungin Paradoxical Effect
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G. Goldman | V. Aimanianda | K. H. Wong | M. H. Barros | I. Malavazi | S. Wong | J. A. Ferreira Filho | Lakhansing Pardeshi | A. C. Colabardini | P. A. de Castro | L. P. Silva | M. C. Rocha | T. Fill | Jéssica Chiaratto | C. Valero | J. H. Costa | P. D. de Castro
[1] Mark R. Marten,et al. The Aspergillus fumigatus Phosphoproteome Reveals Roles of High-Osmolarity Glycerol Mitogen-Activated Protein Kinases in Promoting Cell Wall Damage and Caspofungin Tolerance , 2020, mBio.
[2] J. Latgé,et al. The negative cofactor 2 complex is a key regulator of drug resistance in Aspergillus fumigatus , 2020, Nature Communications.
[3] G. Goldman,et al. Potential of Gallium as an Antifungal Agent , 2019, Front. Cell. Infect. Microbiol..
[4] G. F. Persinoti,et al. Aspergillus fumigatus calcium-responsive transcription factors regulate cell wall architecture promoting stress tolerance, virulence and caspofungin resistance , 2019, PLoS genetics.
[5] D. Delneri,et al. High‐Throughput Gene Replacement in Aspergillus fumigatus , 2019, Current protocols in microbiology.
[6] Shruthi Satish,et al. Stress-Induced Changes in the Lipid Microenvironment of β-(1,3)-d-Glucan Synthase Cause Clinically Important Echinocandin Resistance in Aspergillus fumigatus , 2019, mBio.
[7] F. Lamoth,et al. Echinocandins for the Treatment of Invasive Aspergillosis: from Laboratory to Bedside , 2019, Antimicrobial Agents and Chemotherapy.
[8] D. Sanglard,et al. Link between Heat Shock Protein 90 and the Mitochondrial Respiratory Chain in the Caspofungin Stress Response of Aspergillus fumigatus , 2019, Antimicrobial Agents and Chemotherapy.
[9] M. H. Barros,et al. Msc6p is required for mitochondrial translation initiation in the absence of formylated Met‐tRNAfMet , 2019, The FEBS journal.
[10] C. Beigelman-Aubry,et al. Diagnosis and management of Aspergillus diseases: executive summary of the 2017 ESCMID-ECMM-ERS guideline. , 2018, Clinical microbiology and infection : the official publication of the European Society of Clinical Microbiology and Infectious Diseases.
[11] Jason R. Myers,et al. Correction for Yang et al., “Tolerance to Caspofungin in Candida albicans Is Associated with at Least Three Distinctive Mechanisms That Govern Expression of FKS Genes and Cell Wall Remodeling” , 2018, Antimicrobial Agents and Chemotherapy.
[12] J. Wagener,et al. Recent Insights into the Paradoxical Effect of Echinocandins , 2017, Journal of fungi.
[13] D. Denning,et al. Emergence of Echinocandin Resistance Due to a Point Mutation in the fks1 Gene of Aspergillus fumigatus in a Patient with Chronic Pulmonary Aspergillosis , 2017, Antimicrobial Agents and Chemotherapy.
[14] A. Chowdhary,et al. Azole-Resistant Aspergillosis: Epidemiology, Molecular Mechanisms, and Treatment. , 2017, The Journal of infectious diseases.
[15] Rafael Silva-Rocha,et al. The Aspergillus fumigatus CrzA Transcription Factor Activates Chitin Synthase Gene Expression during the Caspofungin Paradoxical Effect , 2017, mBio.
[16] M. Groll,et al. The CCAAT-binding complex (CBC) in Aspergillus species. , 2017, Biochimica et biophysica acta. Gene regulatory mechanisms.
[17] A. Mondal,et al. The global regulator Ncb2 escapes from the core promoter and impacts transcription in response to drug stress in Candida albicans , 2017, Scientific Reports.
[18] D. Riaño-Pachón,et al. Genome‐wide transcriptome analysis of Aspergillus fumigatus exposed to osmotic stress reveals regulators of osmotic and cell wall stresses that are SakAHOG1 and MpkC dependent , 2017, Cellular microbiology.
[19] Jason R. Myers,et al. Tolerance to Caspofungin in Candida albicans Is Associated with at Least Three Distinctive Mechanisms That Govern Expression of FKS Genes and Cell Wall Remodeling , 2017, Antimicrobial Agents and Chemotherapy.
[20] A. Chowdhary,et al. Clinical implications of globally emerging azole resistance in Aspergillus fumigatus , 2016, Philosophical Transactions of the Royal Society B: Biological Sciences.
[21] J. Wagener,et al. The Paradoxical Effect of Echinocandins in Aspergillus fumigatus Relies on Recovery of the β-1,3-Glucan Synthase Fks1 , 2016, Antimicrobial Agents and Chemotherapy.
[22] E. Rustchenko,et al. Chromosome 5 of Human Pathogen Candida albicans Carries Multiple Genes for Negative Control of Caspofungin and Anidulafungin Susceptibility , 2016, Antimicrobial Agents and Chemotherapy.
[23] M. Wilkins,et al. Synergy and antagonism between iron chelators and antifungal drugs in Cryptococcus. , 2016, International journal of antimicrobial agents.
[24] Qilin Yu,et al. Endoplasmic reticulum-derived reactive oxygen species (ROS) is involved in toxicity of cell wall stress to Candida albicans. , 2016, Free radical biology & medicine.
[25] A. Brakhage,et al. The Aspergillus fumigatus conidial melanin production is regulated by the bifunctional bHLH DevR and MADS‐box RlmA transcription factors , 2016, Molecular microbiology.
[26] D. Denning,et al. Practice Guidelines for the Diagnosis and Management of Aspergillosis: 2016 Update by the Infectious Diseases Society of America. , 2016, Clinical infectious diseases : an official publication of the Infectious Diseases Society of America.
[27] A. Ram,et al. Aspergillus fumigatus MADS-Box Transcription Factor rlmA Is Required for Regulation of the Cell Wall Integrity and Virulence , 2016, G3: Genes, Genomes, Genetics.
[28] Shizhu Zhang,et al. A Putative Mitochondrial Iron Transporter MrsA in Aspergillus fumigatus Plays Important Roles in Azole-, Oxidative Stress Responses and Virulence , 2016, Front. Microbiol..
[29] Kayla R. Stover,et al. Membrane-Anchored Cyclic Peptides as Effectors of Mitochondrial Oxidative Phosphorylation. , 2016, Biochemistry.
[30] Sudhir Kumar,et al. MEGA7: Molecular Evolutionary Genetics Analysis Version 7.0 for Bigger Datasets. , 2016, Molecular biology and evolution.
[31] F. Estruch,et al. Defects in the NC2 repressor affect both canonical and non-coding RNA polymerase II transcription initiation in yeast , 2016, BMC Genomics.
[32] D. Andes,et al. A n t i f u n g a l A g e n t s Spectrum of Activity, Pharmacology, and Clinical Indications , 2015 .
[33] P. Juvvadi,et al. Potential Microbiological Effects of Higher Dosing of Echinocandins. , 2015, Clinical infectious diseases : an official publication of the Infectious Diseases Society of America.
[34] R. Guthke,et al. Network Modeling Reveals Cross Talk of MAP Kinases during Adaptation to Caspofungin Stress in Aspergillus fumigatus , 2015, PloS one.
[35] D. Perlin. Mechanisms of echinocandin antifungal drug resistance , 2015, Annals of the New York Academy of Sciences.
[36] N. Gow,et al. Caspofungin Treatment of Aspergillus fumigatus Results in ChsG-Dependent Upregulation of Chitin Synthesis and the Formation of Chitin-Rich Microcolonies , 2015, Antimicrobial Agents and Chemotherapy.
[37] M. A. Moseley,et al. Calcium-Mediated Induction of Paradoxical Growth following Caspofungin Treatment Is Associated with Calcineurin Activation and Phosphorylation in Aspergillus fumigatus , 2015, Antimicrobial Agents and Chemotherapy.
[38] G. Brosch,et al. AmcA—a putative mitochondrial ornithine transporter supporting fungal siderophore biosynthesis , 2015, Front. Microbiol..
[39] D. Hagiwara,et al. The role of AtfA and HOG MAPK pathway in stress tolerance in conidia of Aspergillus fumigatus. , 2014, Fungal genetics and biology : FG & B.
[40] W. Huber,et al. Moderated estimation of fold change and dispersion for RNA-seq data with DESeq2 , 2014, Genome Biology.
[41] Björn Usadel,et al. Trimmomatic: a flexible trimmer for Illumina sequence data , 2014, Bioinform..
[42] P. Juvvadi,et al. Transcriptional activation of heat shock protein 90 mediated via a proximal promoter region as trigger of caspofungin resistance in Aspergillus fumigatus. , 2014, The Journal of infectious diseases.
[43] Patricia M. Sikorski,et al. The Rbf1, Hfl1 and Dbp4 of Candida albicans regulate common as well as transcription factor-specific mitochondrial and other cell activities , 2014, BMC Genomics.
[44] W. Steinbach. Are We There Yet? Recent Progress in the Molecular Diagnosis and Novel Antifungal Targeting of Aspergillus fumigatus and Invasive Aspergillosis , 2013, PLoS pathogens.
[45] S. Geley,et al. Fungal siderophore biosynthesis is partially localized in peroxisomes , 2013, Molecular microbiology.
[46] W. Shi,et al. The Subread aligner: fast, accurate and scalable read mapping by seed-and-vote , 2013, Nucleic acids research.
[47] David W. Denning,et al. Hidden Killers: Human Fungal Infections , 2012, Science Translational Medicine.
[48] Hélène Touzet,et al. SortMeRNA: fast and accurate filtering of ribosomal RNAs in metatranscriptomic data , 2012, Bioinform..
[49] R. Prasad,et al. Ncb2 Is Involved in Activated Transcription of CDR1 in Azole-Resistant Clinical Isolates of Candida albicans , 2011, Eukaryotic Cell.
[50] Michael J. Dagley,et al. Cell wall integrity is linked to mitochondria and phospholipid homeostasis in Candida albicans through the activity of the post‐transcriptional regulator Ccr4‐Pop2 , 2011, Molecular microbiology.
[51] Hubertus Haas,et al. HapX-Mediated Adaption to Iron Starvation Is Crucial for Virulence of Aspergillus fumigatus , 2010, PLoS pathogens.
[52] J. Perfect,et al. Transcriptional Regulation of Chitin Synthases by Calcineurin Controls Paradoxical Growth of Aspergillus fumigatus in Response to Caspofungin , 2010, Antimicrobial Agents and Chemotherapy.
[53] N. Gow,et al. Fungal echinocandin resistance , 2010, Fungal genetics and biology : FG & B.
[54] E. Espeso,et al. Identification of possible targets of the Aspergillus fumigatus CRZ1 homologue, CrzA , 2010, BMC Microbiology.
[55] A. Vercesi,et al. Goa1p of Candida albicans Localizes to the Mitochondria during Stress and Is Required for Mitochondrial Function and Virulence , 2009, Eukaryotic Cell.
[56] R. Guthke,et al. Two‐dimensional proteome reference maps for the human pathogenic filamentous fungus Aspergillus fumigatus , 2009, Proteomics.
[57] M. G. Koerkamp,et al. Cooperative action of NC2 and Mot1p to regulate TATA-binding protein function across the genome. , 2008, Genes & development.
[58] G. Goldman,et al. Functional characterization of the Aspergillus fumigatus CRZ1 homologue, CrzA , 2008, Molecular microbiology.
[59] T. Langer,et al. Quality control of mitochondria: protection against neurodegeneration and ageing , 2008, The EMBO journal.
[60] T. Albert,et al. Global distribution of negative cofactor 2 subunit-α on human promoters , 2007, Proceedings of the National Academy of Sciences.
[61] C. Curti,et al. Cloning and functional expression of the mitochondrial alternative oxidase of Aspergillus fumigatus and its induction by oxidative stress. , 2007, FEMS microbiology letters.
[62] Christopher M. Crew,et al. A high-throughput gene knockout procedure for Neurospora reveals functions for multiple transcription factors , 2006, Proceedings of the National Academy of Sciences.
[63] W. Nierman,et al. Transcriptome analysis of Aspergillus fumigatus exposed to voriconazole , 2006, Current Genetics.
[64] D. Kontoyiannis,et al. Inhibition of Candida parapsilosis Mitochondrial Respiratory Pathways Enhances Susceptibility to Caspofungin , 2006, Antimicrobial Agents and Chemotherapy.
[65] Ken Haynes,et al. Siderophore Biosynthesis But Not Reductive Iron Assimilation Is Essential for Aspergillus fumigatus Virulence , 2004, The Journal of experimental medicine.
[66] D. Schmatz,et al. The Antifungal Echinocandin Caspofungin Acetate Kills Growing Cells of Aspergillus fumigatus In Vitro , 2002, Antimicrobial Agents and Chemotherapy.
[67] C. P. Semighini,et al. Quantitative Analysis of the Relative Transcript Levels of ABC Transporter Atr Genes in Aspergillus nidulans by Real-Time Reverse Transcription-PCR Assay , 2002, Applied and Environmental Microbiology.
[68] Y. Benjamini,et al. Controlling the false discovery rate in behavior genetics research , 2001, Behavioural Brain Research.
[69] C. d’Enfert,et al. A rapid method for efficient gene replacement in the filamentous fungus Aspergillus nidulans. , 2000, Nucleic acids research.
[70] A. Sugino,et al. Structure and function of the fourth subunit (Dpb4p) of DNA polymerase ε in Saccharomyces cerevisiae , 2000 .
[71] R. Schwartz,et al. Discovery of Novel Antifungal (1,3)-β-d-Glucan Synthase Inhibitors , 2000, Antimicrobial Agents and Chemotherapy.
[72] J. Smedsgaard. Micro-scale extraction procedure for standardized screening of fungal metabolite production in cultures. , 1997, Journal of chromatography. A.
[73] D. Reinberg,et al. Dr1, a TATA-binding protein-associated phosphoprotein and inhibitor of class II gene transcription , 1992, Cell.
[74] R. Roeder,et al. Family of proteins that interact with TFIID and regulate promoter activity , 1991, Cell.
[75] N. Saitou,et al. The neighbor-joining method: a new method for reconstructing phylogenetic trees. , 1987, Molecular biology and evolution.
[76] J. Felsenstein. CONFIDENCE LIMITS ON PHYLOGENIES: AN APPROACH USING THE BOOTSTRAP , 1985, Evolution; international journal of organic evolution.
[77] E. Hartree,et al. Determination of protein: a modification of the Lowry method that gives a linear photometric response. , 1972, Analytical biochemistry.
[78] G. Goldman,et al. Gene disruption in Aspergillus fumigatus using a PCR-based strategy and in vivo recombination in yeast. , 2012, Methods in molecular biology.
[79] M. Obernauerová,et al. Impact of mitochondrial function on yeast susceptibility to antifungal compounds , 2008, Folia Microbiologica.
[80] T. Albert,et al. Global distribution of negative cofactor 2 subunit-alpha on human promoters. , 2007, Proceedings of the National Academy of Sciences of the United States of America.
[81] A. Sugino,et al. Structure and function of the fourth subunit (Dpb4p) of DNA polymerase epsilon in Saccharomyces cerevisiae. , 2000, Nucleic acids research.
[82] E. Käfer. Meiotic and mitotic recombination in Aspergillus and its chromosomal aberrations. , 1977, Advances in genetics.