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  • Author: Santos C
  • References

Author: Santos C


References 18 references


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  • Baselga I, et al. (2017) An AFLP based method for the detection and identification of indigenous yeast in complex must samples without a microbiological culture. Int J Food Microbiol 241:89-97 PMID:27764713
    • SGD Paper
    • DOI full text
    • PubMed
  • Johansson M, et al. (2016) PUFA-induced cell death is mediated by Yca1p-dependent and -independent pathways, and is reduced by vitamin C in yeast. FEMS Yeast Res 16(2):fow007 PMID:26833421
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    • DOI full text
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  • Briceño V, et al. (2009) Structural and functional characterization of the amino terminal domain of the yeast ribosomal stalk P1 and P2 proteins. Int J Biochem Cell Biol 41(6):1315-22 PMID:19084076
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    • DOI full text
    • PubMed
  • Rodríguez-Mateos M, et al. (2009) The amino terminal domain from Mrt4 protein can functionally replace the RNA binding domain of the ribosomal P0 protein. Nucleic Acids Res 37(11):3514-21 PMID:19346338
    • SGD Paper
    • DOI full text
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  • Menezes RA, et al. (2008) Contribution of Yap1 towards Saccharomyces cerevisiae adaptation to arsenic-mediated oxidative stress. Biochem J 414(2):301-11 PMID:18439143
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  • Aruna K, et al. (2005) Functional complementation of yeast ribosomal P0 protein with Plasmodium falciparum P0. Gene 357(1):9-17 PMID:16099608
    • SGD Paper
    • DOI full text
    • PubMed
  • Santos C and Ballesta JP (2005) Characterization of the 26S rRNA-binding domain in Saccharomyces cerevisiae ribosomal stalk phosphoprotein P0. Mol Microbiol 58(1):217-26 PMID:16164560
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    • DOI full text
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  • Hanson CL, et al. (2004) Mass spectrometry of ribosomes from Saccharomyces cerevisiae: implications for assembly of the stalk complex. J Biol Chem 279(41):42750-7 PMID:15294894
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  • Santos C, et al. (2004) Ribosomal P0 protein domain involved in selectivity of antifungal sordarin derivatives. Antimicrob Agents Chemother 48(8):2930-6 PMID:15273103
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  • Guarinos E, et al. (2003) Tag-mediated fractionation of yeast ribosome populations proves the monomeric organization of the eukaryotic ribosomal stalk structure. Mol Microbiol 50(2):703-12 PMID:14617190
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    • DOI full text
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  • Kouyanou S, et al. (2003) Protein BmP0 from the silkworm Bombyx mori can be assembled and is functional in the Saccharomyces cerevisiae ribosomal stalk in the absence of the acidic P1 and P2 proteins. Gene 314:173-9 PMID:14527730
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  • Remacha M, et al. (1995) Proteins P1, P2, and P0, components of the eukaryotic ribosome stalk. New structural and functional aspects. Biochem Cell Biol 73(11-12):959-68 PMID:8722011
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    • DOI full text
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  • Santos C and Ballesta JP (1995) The highly conserved protein P0 carboxyl end is essential for ribosome activity only in the absence of proteins P1 and P2. J Biol Chem 270(35):20608-14 PMID:7657639
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  • Bermejo B, et al. (1994) Effect of acidic ribosomal phosphoprotein mRNA 5'-untranslated region on gene expression and protein accumulation. J Biol Chem 269(6):3968-75 PMID:8307952
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  • Santos C and Ballesta JP (1994) Ribosomal protein P0, contrary to phosphoproteins P1 and P2, is required for ribosome activity and Saccharomyces cerevisiae viability. J Biol Chem 269(22):15689-96 PMID:8195220
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    • PubMed
  • Santos C, et al. (1993) The acidic phosphoproteins from Saccharomyces cerevisiae ribosomes. NH2-terminal acetylation is a conserved difference between P1 and P2 proteins. Biochemistry 32(16):4231-6 PMID:8476850
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  • Remacha M, et al. (1992) Stable binding of the eukaryotic acidic phosphoproteins to the ribosome is not an absolute requirement for in vivo protein synthesis. J Biol Chem 267(17):12061-7 PMID:1601875
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  • Remacha M, et al. (1990) Disruption of single-copy genes encoding acidic ribosomal proteins in Saccharomyces cerevisiae. Mol Cell Biol 10(5):2182-90 PMID:2183022
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