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  • Author: Kuo MH
  • References

Author: Kuo MH


References 21 references


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  • Buehl CJ, et al. (2018) A Failsafe for Sensing Chromatid Tension in Mitosis with the Histone H3 Tail in Saccharomyces cerevisiae. Genetics 208(2):565-578 PMID:29242290
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  • Deng X and Kuo MH (2018) Tripartite Chromatin Localization of Budding Yeast Shugoshin Involves Higher-Ordered Architecture of Mitotic Chromosomes. G3 (Bethesda) 8(9):2901-2911 PMID:30002083
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  • Li X, et al. (2017) The slim, the fat, and the obese: guess who lives the longest? Curr Genet 63(1):43-49 PMID:27230908
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  • Handee W, et al. (2016) An Energy-Independent Pro-longevity Function of Triacylglycerol in Yeast. PLoS Genet 12(2):e1005878 PMID:26907989
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  • Luo J, et al. (2016) Identification of Tension Sensing Motif of Histone H3 in Saccharomyces cerevisiae and Its Regulation by Histone Modifying Enzymes. Genetics 204(3):1029-1043 PMID:27672091
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  • Li X, et al. (2012) Rapid triacylglycerol turnover in Chlamydomonas reinhardtii requires a lipase with broad substrate specificity. Eukaryot Cell 11(12):1451-62 PMID:23042128
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  • Liu Y, et al. (2010) Snf1p regulates Gcn5p transcriptional activity by antagonizing Spt3p. Genetics 184(1):91-105 PMID:19841091
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  • Luo J, et al. (2010) Histone h3 exerts a key function in mitotic checkpoint control. Mol Cell Biol 30(2):537-49 PMID:19917722
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  • Kuo MH, et al. (2009) Functional connection between histone acetyltransferase Gcn5p and methyltransferase Hmt1p. Biochim Biophys Acta 1789(5):395-402 PMID:19358899
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  • Liu Y, et al. (2005) Histone H3 Ser10 phosphorylation-independent function of Snf1 and Reg1 proteins rescues a gcn5- mutant in HIS3 expression. Mol Cell Biol 25(23):10566-79 PMID:16287868
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  • Broday L, et al. (2000) Nickel compounds are novel inhibitors of histone H4 acetylation. Cancer Res 60(2):238-41 PMID:10667566
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  • Kuo MH, et al. (2000) Gcn4 activator targets Gcn5 histone acetyltransferase to specific promoters independently of transcription. Mol Cell 6(6):1309-20 PMID:11163205
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  • Krebs JE, et al. (1999) Cell cycle-regulated histone acetylation required for expression of the yeast HO gene. Genes Dev 13(11):1412-21 PMID:10364158
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  • Kuo MH and Allis CD (1999) In vivo cross-linking and immunoprecipitation for studying dynamic Protein:DNA associations in a chromatin environment. Methods 19(3):425-33 PMID:10579938
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  • Tanner KG, et al. (1999) Catalytic mechanism and function of invariant glutamic acid 173 from the histone acetyltransferase GCN5 transcriptional coactivator. J Biol Chem 274(26):18157-60 PMID:10373413
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  • Kuo MH and Allis CD (1998) Roles of histone acetyltransferases and deacetylases in gene regulation. Bioessays 20(8):615-26 PMID:9780836
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  • Kuo MH, et al. (1998) Histone acetyltransferase activity of yeast Gcn5p is required for the activation of target genes in vivo. Genes Dev 12(5):627-39 PMID:9499399
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  • Mizzen C, et al. (1998) Signaling to chromatin through histone modifications: how clear is the signal? Cold Spring Harb Symp Quant Biol 63:469-81 PMID:10384311
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  • Kuo MH, et al. (1997) Multiple phosphorylated forms of the Saccharomyces cerevisiae Mcm1 protein include an isoform induced in response to high salt concentrations. Mol Cell Biol 17(2):819-32 PMID:9001236
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  • Kuo MH, et al. (1996) Transcription-linked acetylation by Gcn5p of histones H3 and H4 at specific lysines. Nature 383(6597):269-72 PMID:8805705
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  • Kuo MH and Grayhack E (1994) A library of yeast genomic MCM1 binding sites contains genes involved in cell cycle control, cell wall and membrane structure, and metabolism. Mol Cell Biol 14(1):348-59 PMID:8264602
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