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2024Cryptococcus neoformans infections: aspartyl protease potential to improve outcome in susceptible hosts., mBio 2024 Oct; (): e0273324.
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2024Alternative TSS use is widespread in Cryptococcus fungi in response to environmental cues and regulated genome-wide by the transcription factor Tur1., PLoS Biol 2024 Jul; 22(7): e3002724.
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2024Protocol for separation of fungal extracellular vesicles using ultracentrifugation from solid medium cultures., STAR Protoc 2024 May; 5(2): 103069.
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2024The multiple frontiers in the study of extracellular vesicles produced by fungi., Microbes Infect 2024 ; 26(1-2): 105233.
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2023Coregulation of extracellular vesicle production and fluconazole susceptibility in Cryptococcus neoformans, mBio, 2023, pp.e00870-23. ⟨10.1128/mbio.00870-23⟩.
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2022Alternative Transcription Start Site Usage and Functional Implications in Pathogenic Fungi., J Fungi (Basel) 2022 Oct; 8(10): .
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2022The role of glycosylphosphatidylinositol (gpi) anchored proteins in Cryptococcusneoformans., Microbes Infect 2022 ; 24(8): 105016.
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2021Cryptococcus extracellular vesicles properties and their use as vaccine platforms., J Extracell Vesicles 2021 08; 10(10): e12129.
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2021Structure, composition and biological properties of fungal extracellular vesicles, microLife, Volume 2, 2021, uqab009.
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2021Commensalism instead of sex? Adapting mating to live in the gut., Cell Host Microbe 2021 06; 29(6): 856-858.
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2021Population genomic analysis of Cryptococcus Brazilian isolates reveals an African type subclade distribution., G3 (Bethesda) 2021 Apr; (): .
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2021Application of an optimized annotation pipeline to the Cryptococcus deuterogattii genome reveals dynamic primary metabolic gene clusters and genomic impact of RNAi loss., G3 (Bethesda) 2021 Feb; 11(2): .
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2020Extracellular Vesicles in Fungi: Past, Present, and Future Perspectives., Front Cell Infect Microbiol 2020 ; 10(): 346.
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2020The Added Value of Longitudinal Imaging for Preclinical In Vivo Efficacy Testing of Therapeutic Compounds against Cerebral Cryptococcosis., Antimicrob. Agents Chemother. 2020 06; 64(7): .
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2020Quantitative global studies reveal differential translational control by start codon context across the fungal kingdom., Nucleic Acids Res 2020 03; 48(5): 2312-2331.
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2020Mating-Type-Specific Ribosomal Proteins Control Aspects of Sexual Reproduction in Cryptococcus neoformans., Genetics 2020 03; 214(3): 635-649.
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2019Sensitive bioluminescence imaging of fungal dissemination to the brain in mouse models of cryptococcosis., Dis Model Mech 2019 06; 12(6): .
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2019Studying fungal pathogens of humans and fungal infections: fungal diversity and diversity of approaches, Genes Immun. 2019 05;20(5):403-414.
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2018Cryptococcus neoformans can form titan-like cells in vitro in response to multiple signals, PLoS Pathog. 2018 May;14(5):e1007007.
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2018Titan cells formation in Cryptococcus neoformans is finely tuned by environmental conditions and modulated by positive and negative genetic regulators., PLoS Pathog 2018 05; 14(5): e1006982.
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2018Introns in Cryptococcus, Mem. Inst. Oswaldo Cruz 2018;113(7):e170519.
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2018Glycosylphosphatidylinositol Anchors from Galactomannan and GPI-Anchored Protein Are Synthesized by Distinct Pathways in Aspergillus fumigatus, J Fungi (Basel) 2018 Feb;4(1).
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2017Environmental Triazole Induces Cross-Resistance to Clinical Drugs and Affects Morphophysiology and Virulence of Cryptococcus gattii and C. neoformans, Antimicrob. Agents Chemother. 2018 Jan;62(1).
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2017Introns Protect Eukaryotic Genomes from Transcription-Associated Genetic Instability., Mol Cell 2017 Aug; 67(4): 608-621.e6.
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2015Biofilm formation in Candida glabrata: What have we learnt from functional genomics approaches?, FEMS Yeast Res. 2016 Feb;16(1):fov111.
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2015Role of Cln1 during melanization of Cryptococcus neoformans, Front Microbiol 2015;6:798.
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2015Systematic functional profiling of transcription factor networks in Cryptococcus neoformans, Nat Commun 2015;6:6757.
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2015Network-assisted genetic dissection of pathogenicity and drug resistance in the opportunistic human pathogenic fungus Cryptococcus neoformans, Sci Rep 2015;5:8767.
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2014Distinct and redundant roles of exonucleases in Cryptococcus neoformans: implications for virulence and mating, Fungal Genet. Biol. 2014 Dec;73:20-8.
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2014Cryptococcus neoformans and Cryptococcus gattii, the etiologic agents of cryptococcosis., Cold Spring Harb Perspect Med 2014 Jul; 4(7): a019760.
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2014Capsule growth in Cryptococcus neoformans is coordinated with cell cycle progression, MBio 2014;5(3):e00945-14.
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2014Analysis of the genome and transcriptome of Cryptococcus neoformans var. grubii reveals complex RNA expression and microevolution leading to virulence attenuation., PLoS Genet 2014 Apr; 10(4): e1004261.
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2013Introns regulate gene expression in Cryptococcus neoformans in a Pab2p dependent pathway, PLoS Genet. 2013;9(8):e1003686.
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2012Identification and functional demonstration of miRNAs in the fungus Cryptococcus neoformans, PLoS ONE 2012;7(12):e52734.
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2012Members 5 and 6 of the Candida albicans BMT family encode enzymes acting specifically on β-mannosylation of the phospholipomannan cell-wall glycosphingolipid, Glycobiology 2012 Oct;22(10):1332-42.
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2012New regulators of biofilm development in Candida glabrata, Res. Microbiol. 2012 May;163(4):297-307.
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2012Fungal-induced cell cycle impairment, chromosome instability and apoptosis via differential activation of NF-κB, PLoS Pathog. 2012;8(3):e1002555.
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2012Murine model of dextran sulfate sodium-induced colitis reveals Candida glabrata virulence and contribution of β-mannosyltransferases, J. Biol. Chem. 2012 Mar;287(14):11313-24.
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2012Biofilm formation studies in microtiter plate format., Methods Mol Biol 2012 ; 845(): 369-77.
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2010Characterizing the role of RNA silencing components in Cryptococcus neoformans, Fungal Genet. Biol. 2010 Dec;47(12):1070-80.
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2009Surfactant protein D increases phagocytosis of hypocapsular Cryptococcus neoformans by murine macrophages and enhances fungal survival, Infect. Immun. 2009 Jul;77(7):2783-94.
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2009Molecular phenotyping of mannosyltransferases-deficient Candida albicans cells by high-resolution magic angle spinning NMR, J. Biochem. 2009 Apr;145(4):413-9.
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2008Capsular localization of the Cryptococcus neoformans polysaccharide component galactoxylomannan, Eukaryotic Cell 2009 Jan;8(1):96-103.
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2008UGE1 and UGE2 regulate the UDP-glucose/UDP-galactose equilibrium in Cryptococcus neoformans, Eukaryotic Cell 2008 Dec;7(12):2069-77.
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2008Identification of a new family of genes involved in beta-1,2-mannosylation of glycans in Pichia pastoris and Candida albicans, J. Biol. Chem. 2008 Apr;283(15):9724-36.
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2007The SUN41 and SUN42 genes are essential for cell separation in Candida albicans, Mol. Microbiol. 2007 Dec;66(5):1256-75.
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2007Systematic capsule gene disruption reveals the central role of galactose metabolism on Cryptococcus neoformans virulence, Mol. Microbiol. 2007 May;64(3):771-81.
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2006Combination of amphotericin B with flucytosine is active in vitro against flucytosine-resistant isolates of Cryptococcus neoformans, Antimicrob. Agents Chemother. 2007 Jan;51(1):383-5.
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2006The Skn7 response regulator of Cryptococcus neoformans is involved in oxidative stress signalling and augments intracellular survival in endothelium, FEMS Yeast Res. 2006 Jun;6(4):652-61.
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2006Cryptococcus neoformans senses CO2 through the carbonic anhydrase Can2 and the adenylyl cyclase Cac1, Eukaryotic Cell 2006 Jan;5(1):103-11.
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2005Use of microsatellite markers and gene dosage to quantify gene copy numbers in Candida albicans, J. Clin. Microbiol. 2005 Mar;43(3):1387-9.
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2005The genome of the basidiomycetous yeast and human pathogen Cryptococcus neoformans., Science 2005 Feb; 307(5713): 1321-4.
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2005The Yak1p kinase controls expression of adhesins and biofilm formation in Candida glabrata in a Sir4p-dependent pathway, Mol. Microbiol. 2005 Feb;55(4):1259-71.
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2004O-acetylation of cryptococcal capsular glucuronoxylomannan is essential for interference with neutrophil migration, J. Immunol. 2004 Dec;173(12):7513-20.
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2004UGD1, encoding the Cryptococcus neoformans UDP-glucose dehydrogenase, is essential for growth at 37 degrees C and for capsule biosynthesis, Eukaryotic Cell 2004 Dec;3(6):1601-8.
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2004Cas3p belongs to a seven-member family of capsule structure designer proteins, Eukaryotic Cell 2004 Dec;3(6):1513-24.
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2004Inactivation of CaMIT1 inhibits Candida albicans phospholipomannan beta-mannosylation, reduces virulence, and alters cell wall protein beta-mannosylation, J. Biol. Chem. 2004 Nov;279(46):47952-60.
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2004Cryptococcus neoformans capsule biosynthesis and regulation, FEMS Yeast Res. 2004 Sep;4(8):765-71.
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2004Cryptococcus neoformans capsule structure evolution in vitro and during murine infection, Infect. Immun. 2004 Jun;72(6):3359-65.
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2004Candida albicans biofilms: a developmental state associated with specific and stable gene expression patterns, Eukaryotic Cell 2004 Apr;3(2):536-45.
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2003A yeast under cover: the capsule of Cryptococcus neoformans, Eukaryotic Cell 2003 Aug;2(4):655-63.
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2003Antigenic and biological characteristics of mutant strains of Cryptococcus neoformans lacking capsular O acetylation or xylosyl side chains, Infect. Immun. 2003 May;71(5):2868-75.
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2002Isolation and characterization of capsule structure mutant strains of Cryptococcus neoformans, Mol. Microbiol. 2002 Aug;45(3):837-49.
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2001Cas1p is a membrane protein necessary for the O-acetylation of the Cryptococcus neoformans capsular polysaccharide, Mol. Microbiol. 2001 Oct;42(2):453-67.
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2001Are two Cryptococcus neoformans strains epidemiologically linked?, J. Clin. Microbiol. 2001 Apr;39(4):1402-6.
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2001UV and X-ray sensitivity of Candida albicans laboratory strains and mutants having chromosomal alterations, Rev Iberoam Micol 2001 Mar;18(1):12-6.
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1999Epidemiological evidence for dormant Cryptococcus neoformans infection, J. Clin. Microbiol. 1999 Oct;37(10):3204-9.
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1999Appearance and properties of L-sorbose-utilizing mutants of Candida albicans obtained on a selective plate, Genetics 1999 Oct;153(2):653-64.
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1998Monosomy of a specific chromosome determines L-sorbose utilization: a novel regulatory mechanism in Candida albicans, Proc. Natl. Acad. Sci. U.S.A. 1998 Apr;95(9):5150-5.
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1997Phylogenetic relationships of fungal cytochromes c, Yeast 1997 Aug;13(10):985-90.
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1995Cloning and sequencing of the beta-glucosidase-encoding gene from Candida molischiana strain 35M5N, Gene 1995 Nov;165(1):109-13.
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1995Sizing of the Rhodococcus sp. R312 genome by pulsed-field gel electrophoresis. Localization of genes involved in nitrile degradation, Antonie Van Leeuwenhoek 1995 Aug;68(2):173-9.
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1995A very stable beta-glucosidase from a Candida molischiana mutant strain: enzymatic properties, sequencing, and homology with other yeast beta-glucosidases, Biosci. Biotechnol. Biochem. 1995 Jul;59(7):1320-2.
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1995Karyotype studies on different strains of Candida molischiana by pulsed-field gel electrophoresis, Curr. Genet. 1995 Jul;28(2):150-4.
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1994Selection and study of a Candida molischiana mutant derepressed for beta-glucosidase production, FEMS Microbiol. Lett. 1994 May;118(3):207-11.