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Weiner A, et al.  (2012) Systematic dissection of roles for chromatin regulators in a yeast stress response. PLoS Biol 10(7):e1001369

Abstract: Packaging of eukaryotic genomes into chromatin has wide-ranging effects on gene transcription. Curiously, it is commonly observed that deletion of a global chromatin regulator affects expression of only a limited subset of genes bound to or modified by the regulator in question. However, in many single-gene studies it has become clear that chromatin regulators often do not affect steady-state transcription, but instead are required for normal transcriptional reprogramming by environmental cues. We therefore have systematically investigated the effects of 83 histone mutants, and 119 gene deletion mutants, on induction/repression dynamics of 170 transcripts in response to diamide stress in yeast. Importantly, we find that chromatin regulators play far more pronounced roles during gene induction/repression than they do in steady-state expression. Furthermore, by jointly analyzing the substrates (histone mutants) and enzymes (chromatin modifier deletions) we identify specific interactions between histone modifications and their regulators. Combining these functional results with genome-wide mapping of several histone marks in the same time course, we systematically investigated the correspondence between histone modification occurrence and function. We followed up on one pathway, finding that Set1-dependent H3K4 methylation primarily acts as a gene repressor during multiple stresses, specifically at genes involved in ribosome biosynthesis. Set1-dependent repression of ribosomal genes occurs via distinct pathways for ribosomal protein genes and ribosomal biogenesis genes, which can be separated based on genetic requirements for repression and based on chromatin changes during gene repression. Together, our dynamic studies provide a rich resource for investigating chromatin regulation, and identify a significant role for the "activating" mark H3K4me3 in gene repression.

Status: Published Type: Journal Article PubMed ID: 22912562

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Number of different genes curated to this paper: 50

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ARO10 BDH2 BRE1 BRE2 CAC2 CHD1 CPR1 EAF1 EAF3 GCY1
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GRE3 HAT1 HDA1 HDA2 HDA3 HHF1 HHF2 HHT1 HHT2 HOS4
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HPA3 HTZ1 IES1 MSN2 MSN4 NHP10 PGM2 PHO23 RPH1 RPL16A
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RSC1 RTT106 RTT109 SAP30 SAS2 SAS3 SET1 SET2 SET3 SIR2
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SIR3 SNF2 SNT1 SNT2 SPT21 SWR1 TAF14 TSA2 TUP1 YTA7
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