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  • Author: Kitagawa E
  • References

Author: Kitagawa E


References 21 references


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  • Yasokawa D, et al. (2010) DNA microarray analysis suggests that zinc pyrithione causes iron starvation to the yeast Saccharomyces cerevisiae. J Biosci Bioeng 109(5):479-86 PMID:20347771
    • SGD Paper
    • DOI full text
    • PubMed
  • Yasokawa D, et al. (2010) Toxicity of methanol and formaldehyde towards Saccharomyces cerevisiae as assessed by DNA microarray analysis. Appl Biochem Biotechnol 160(6):1685-98 PMID:19499198
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    • DOI full text
    • PubMed
  • Kuramata M, et al. (2009) Novel cysteine-rich peptides from Digitaria ciliaris and Oryza sativa enhance tolerance to cadmium by limiting its cellular accumulation. Plant Cell Physiol 50(1):106-17 PMID:19017626
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  • Matsuda T, et al. (2009) A novel plant cysteine-rich peptide family conferring cadmium tolerance to yeast and plants. Plant Signal Behav 4(5):419-21 PMID:19816106
    • SGD Paper
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  • Iwahashi Y, et al. (2008) Analysis of mechanisms of T-2 toxin toxicity using yeast DNA microarrays. Int J Mol Sci 9(12):2585-2600 PMID:19330094
    • SGD Paper
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  • Yasokawa D, et al. (2008) Mechanisms of copper toxicity in Saccharomyces cerevisiae determined by microarray analysis. Environ Toxicol 23(5):599-606 PMID:18528910
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  • Iwahashi H, et al. (2007) Evaluation of toxicity of the mycotoxin citrinin using yeast ORF DNA microarray and Oligo DNA microarray. BMC Genomics 8:95 PMID:17408496
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  • Iwahashi H, et al. (2007) Combined cadmium and thiuram show synergistic toxicity and induce mitochondrial petite mutants. Environ Sci Technol 41(22):7941-6 PMID:18075112
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  • Iwahashi Y, et al. (2007) Mechanisms of Patulin Toxicity under Conditions That Inhibit Yeast Growth. J Agric Food Chem 55(4):1648
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  • Iwahashi Y, et al. (2006) Mechanisms of patulin toxicity under conditions that inhibit yeast growth. J Agric Food Chem 54(5):1936-42 PMID:16506856
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  • Murata Y, et al. (2006) Genome-wide expression analysis of yeast response during exposure to 4 degrees C. Extremophiles 10(2):117-28 PMID:16254683
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  • Iwahashi H, et al. (2005) Adaptation of Saccharomyces cerevisiae to high hydrostatic pressure causing growth inhibition. FEBS Lett 579(13):2847-52 PMID:15876434
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  • Kitagawa E, et al. (2005) Effects of iodine on global gene expression in Saccharomyces cerevisiae. Biosci Biotechnol Biochem 69(12):2285-93 PMID:16377885
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  • Kim HJ, et al. (2004) A yeast DNA microarray for the evaluation of toxicity in environmental water containing burned ash. Environ Monit Assess 92(1-3):253-72 PMID:15038548
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  • Mizukami S, et al. (2004) Construction of a data dependent analysis (DDA) yeast cDNA microarray experiment for use in toxicogenomics. Environ Sci 11(6):325-35 PMID:15750578
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  • Parveen M, et al. (2004) Response of Saccharomyces cerevisiae to a monoterpene: evaluation of antifungal potential by DNA microarray analysis. J Antimicrob Chemother 54(1):46-55 PMID:15201226
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  • Sirisattha S, et al. (2004) Genomic profile of roundup treatment of yeast using DNA microarray analysis. Environ Sci 11(6):313-23 PMID:15750577
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  • Sirisattha S, et al. (2004) Toxicity of anionic detergents determined by Saccharomyces cerevisiae microarray analysis. Water Res 38(1):61-70 PMID:14630103
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  • Kitagawa E, et al. (2003) Correlation of the structures of agricultural fungicides to gene expression in Saccharomyces cerevisiae upon exposure to toxic doses. Environ Sci Technol 37(12):2788-93 PMID:12854720
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  • Kitagawa E, et al. (2002) Effects of the pesticide thiuram: genome-wide screening of indicator genes by yeast DNA microarray. Environ Sci Technol 36(18):3908-15 PMID:12269742
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  • Kurita S, et al. (2002) Studies on the antimicrobial mechanisms of capsaicin using yeast DNA microarray. Biosci Biotechnol Biochem 66(3):532-6 PMID:12005045
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