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  • Author: Pócsi I
  • References

Author: Pócsi I


References 16 references


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  • Huang Y, et al. (2025) Promoting the glycosylation of drug-like natural products in a Saccharomyces cerevisiae chassis by deletion of endogenous glycosidases. Bioresour Technol 422:132258 PMID:39971105
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  • Pfliegler WP, et al. (2025) PCR-fingerprinting of culturable yeasts from commercially obtained beers: a simple and engaging applied microbiological laboratory exercise. MicroPubl Biol 2025 PMID:40052139
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  • Vig I, et al. (2023) Functional characterization of genes encoding cadmium pumping P1B-type ATPases in Aspergillus fumigatus and Aspergillus nidulans. Microbiol Spectr 11(5):e0028323 PMID:37676031
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  • Imre A, et al. (2022) Heme Oxygenase-1 (HMX1) Loss of Function Increases the In-Host Fitness of the Saccharomyces 'boulardii' Probiotic Yeast in a Mouse Fungemia Model. J Fungi (Basel) 8(5) PMID:35628777
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  • Rácz HV, et al. (2021) How to characterize a strain? Clonal heterogeneity in industrial Saccharomyces influences both phenotypes and heterogeneity in phenotypes. Yeast 38(8):453-470 PMID:33844327
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  • Imre A, et al. (2019) A new, rapid multiplex PCR method identifies frequent probiotic origin among clinical Saccharomyces isolates. Microbiol Res 227:126298 PMID:31421716
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  • Bakti F, et al. (2018) Heavy Metal-Induced Expression of PcaA Provides Cadmium Tolerance to Aspergillus fumigatus and Supports Its Virulence in the Galleria mellonella Model. Front Microbiol 9:744 PMID:29706948
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  • Emri T, et al. (2018) Duplications and losses of genes encoding known elements of the stress defence system of the Aspergilli contribute to the evolution of these filamentous fungi but do not directly influence their environmental stress tolerance. Stud Mycol 91:23-36 PMID:30425415
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  • Pfliegler WP, et al. (2017) Commercial strain-derived clinical Saccharomyces cerevisiae can evolve new phenotypes without higher pathogenicity. Mol Nutr Food Res 61(11) PMID:28731263
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  • Pfliegler WP, et al. (2015) Mycotoxins - prevention and decontamination by yeasts. J Basic Microbiol 55(7):805-18 PMID:25682759
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  • Gazdag Z, et al. (2014) tert-Butyl hydroperoxide-induced differing plasma membrane and oxidative stress processes in yeast strains BY4741 and erg5Δ. J Basic Microbiol 54 Suppl 1:S50-62 PMID:24687861
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  • Leiter É, et al. (2012) Protein phosphatase Z modulates oxidative stress response in fungi. Fungal Genet Biol 49(9):708-16 PMID:22750657
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  • Ádám C, et al. (2012) Protein phosphatase CaPpz1 is involved in cation homeostasis, cell wall integrity and virulence of Candida albicans. Microbiology (Reading) 158(Pt 5):1258-1267 PMID:22343349
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  • Poljsak B, et al. (2010) Interference of chromium with biological systems in yeasts and fungi: a review. J Basic Microbiol 50(1):21-36 PMID:19810050
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  • Miskei M, et al. (2009) Annotation of stress-response proteins in the aspergilli. Fungal Genet Biol 46 Suppl 1:S105-20 PMID:18703157
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