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  • Author: Bellí G
  • References

Author: Bellí G


References 22 references


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  • Bellí G, et al. (2022) Post-Translational Modifications of PCNA: Guiding for the Best DNA Damage Tolerance Choice. J Fungi (Basel) 8(6) PMID:35736104
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  • Varejão N, et al. (2021) Structural basis for the E3 ligase activity enhancement of yeast Nse2 by SUMO-interacting motifs. Nat Commun 12(1):7013 PMID:34853311
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  • Gil FN, et al. (2017) The Saccharomyces cerevisiae response to stress caused by the herbicidal active substance alachlor requires the iron regulon transcription factor Aft1p. Environ Microbiol 19(2):485-499 PMID:27376881
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  • Castells-Roca L, et al. (2016) Cth2 Protein Mediates Early Adaptation of Yeast Cells to Oxidative Stress Conditions. PLoS One 11(1):e0148204 PMID:26824473
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  • Pijuan J, et al. (2015) Impaired mitochondrial Fe-S cluster biogenesis activates the DNA damage response through different signaling mediators. J Cell Sci 128(24):4653-65 PMID:26567217
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  • Castells-Roca L, et al. (2011) The oxidative stress response in yeast cells involves changes in the stability of Aft1 regulon mRNAs. Mol Microbiol 81(1):232-48 PMID:21542867
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  • Castells-Roca L, et al. (2011) Heat shock response in yeast involves changes in both transcription rates and mRNA stabilities. PLoS One 6(2):e17272 PMID:21364882
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  • Herrero E, et al. (2010) Structural and functional diversity of glutaredoxins in yeast. Curr Protein Pept Sci 11(8):659-68 PMID:21235502
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  • Moreno-Cermeño A, et al. (2010) Frataxin depletion in yeast triggers up-regulation of iron transport systems before affecting iron-sulfur enzyme activities. J Biol Chem 285(53):41653-64 PMID:20956517
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  • Herrero E, et al. (2008) Redox control and oxidative stress in yeast cells. Biochim Biophys Acta 1780(11):1217-35 PMID:18178164
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  • Molina-Navarro MM, et al. (2008) Comprehensive transcriptional analysis of the oxidative response in yeast. J Biol Chem 283(26):17908-18 PMID:18424442
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  • Herrero E, et al. (2006) Glutaredoxins in fungi. Photosynth Res 89(2-3):127-40 PMID:16915356
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  • Molina-Navarro MM, et al. (2006) Prokaryotic and eukaryotic monothiol glutaredoxins are able to perform the functions of Grx5 in the biogenesis of Fe/S clusters in yeast mitochondria. FEBS Lett 580(9):2273-80 PMID:16566929
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  • Bellí G, et al. (2004) Saccharomyces cerevisiae glutaredoxin 5-deficient cells subjected to continuous oxidizing conditions are affected in the expression of specific sets of genes. J Biol Chem 279(13):12386-95 PMID:14722110
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  • Molina MM, et al. (2004) Nuclear monothiol glutaredoxins of Saccharomyces cerevisiae can function as mitochondrial glutaredoxins. J Biol Chem 279(50):51923-30 PMID:15456753
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  • Vilella F, et al. (2004) Evolution and cellular function of monothiol glutaredoxins: involvement in iron-sulphur cluster assembly. Comp Funct Genomics 5(4):328-41 PMID:18629168
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  • Bellí G, et al. (2002) Structure-function analysis of yeast Grx5 monothiol glutaredoxin defines essential amino acids for the function of the protein. J Biol Chem 277(40):37590-6 PMID:12138088
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  • Cabiscol E, et al. (2002) Mitochondrial Hsp60, resistance to oxidative stress, and the labile iron pool are closely connected in Saccharomyces cerevisiae. J Biol Chem 277(46):44531-8 PMID:12200437
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  • Rodríguez-Manzaneque MT, et al. (2002) Grx5 is a mitochondrial glutaredoxin required for the activity of iron/sulfur enzymes. Mol Biol Cell 13(4):1109-21 PMID:11950925
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  • Bellí G, et al. (2001) Osmotic stress causes a G1 cell cycle delay and downregulation of Cln3/Cdc28 activity in Saccharomyces cerevisiae. Mol Microbiol 39(4):1022-35 PMID:11251821
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  • Bellí G, et al. (1998) An activator/repressor dual system allows tight tetracycline-regulated gene expression in budding yeast. Nucleic Acids Res 26(4):942-7 PMID:9461451
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  • Bellí G, et al. (1998) Functional analysis of yeast essential genes using a promoter-substitution cassette and the tetracycline-regulatable dual expression system. Yeast 14(12):1127-38 PMID:9778798
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