Activator-independent transcription of Snf1-dependent genes in mutants lacking histone tails
Author:
Publisher
Wiley
Subject
Molecular Biology,Microbiology
Link
http://onlinelibrary.wiley.com/wol1/doi/10.1111/j.1365-2958.2011.07583.x/fullpdf
Reference54 articles.
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2. H4 acetylation does not replace H3 acetylation in chromatin remodelling and transcription activation of Adr1-dependent genes;Agricola;Mol Microbiol,2006
3. Adr1 and Cat8 mediate coactivator recruitment and chromatin remodeling at glucose-regulated genes;Biddick;PLoS ONE,2008
4. The transcriptional coactivators SAGA, SWI/SNF and mediator make distinct contributions to activation of glucose-repressed genes;Biddick;J Biol Chem,2008b
5. Specific contributions of histone tails and their acetylation to the mechanical stability of nucleosomes;Brower-Toland;J Mol Biol,2005
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1. Trehalose-6-phosphate synthesis controls yeast gluconeogenesis downstream and independent of SNF1;FEMS Yeast Research;2016-04-11
2. Phosphoproteomic analysis identifies proteins involved in transcription-coupled mRNA decay as targets of Snf1 signaling;Science Signaling;2014-07-08
3. Carbon source dependent promoters in yeasts;Microbial Cell Factories;2014-01-09
4. 14-3-3 (Bmh) Proteins Regulate Combinatorial Transcription following RNA Polymerase II Recruitment by Binding at Adr1-Dependent Promoters in Saccharomyces cerevisiae;Molecular and Cellular Biology;2013-02-15
5. The AMP-activated Protein Kinase Snf1 Regulates Transcription Factor Binding, RNA Polymerase II Activity, and mRNA Stability of Glucose-repressed Genes in Saccharomyces cerevisiae;Journal of Biological Chemistry;2012-08
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