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Werick, M.

Publications and source records attributed to Werick, M..

2 recordsLinked to original sources

Genome-wide analysis reveals the importance of histone acetyltransferase Esa1 in transcriptional regulation during nitrogen starvation

Macroautophagy/autophagy is a process that degrades intracellular components and is strongly triggered by nitrogen starvation (-N). Some ATG (autophagy related) genes are activated at the transcriptional level in nitrogen starvation; however, a full understanding of transcriptional induction and the role of chromatin during this process remains unclear. To address this, we measured the occupancy of RNA polymerase II (Pol II), histone H3, and acetylated H4 (H4Ac) under nutrient-rich and -N conditions by ChIP-seq. We found that most genes are rapidly downregulated within 15-30 min, including ribosomal protein (RP) and biogenesis (RiBi) genes. Meanwhile, genes involved in amino acid (AA) biosynthesis are upregulated, along with many ATG genes. Unexpectedly, RP and RiBi genes were reinduced by 3 hours. Furthermore, many upregulated genes remained active during prolonged starvation. Histones are typically removed from promoters during transcription activation. Consistent with this, we found that most induced genes exhibited histone eviction and increased H4 acetylation at their promoters, suggesting a possible role for histone acetylation in their activation. In line with this, depleting Esa1, an essential H4 histone acetyltransferase, nearly abolished the induction of ribosomal biosynthetic genes and many AA biosynthetic genes. Sustained activation of many genes during prolonged starvation highlights the vital role of transcription in supporting autophagy and cell survival. This is the first comprehensive study to detail changes in chromatin, histone acetylation, and transcription during nitrogen starvation, highlighting the importance of Esa1 and H4Ac in this process.

genetics↗

The role of histone acetyltransferases Gcn5 and Esa1 in recruiting the RSC complex and maintaining nucleosome-depleted regions genome-wide in Saccharomyces cerevisiae

Chromatin remodelers are essential for the maintenance of chromatin structure and gene regulation. In this study, we examined the role of histone acetyltransferases (HATs) Gcn5 and Esa1 in regulating RSC and histone occupancies and their effects on transcription genome-wide. We identified contrasting roles of HATs in modulating RSC occupancies in promoters and ORFs. In HAT mutants, RSC accumulated in nucleosome depleted regions (NDRs) with "fragile nucleosomes (FNs)" more than those with stable -1 nucleosomes. Moreover, the accumulation was more significant in the Esa1 mutant than in the Gcn5 mutant. However, RSC NDR accumulation was not observed in cells lacking H3 or H4 tails. Furthermore, we observed marked increases in histone occupancies in NDRs in the HAT mutants genome-wide. Overall, these data suggest that FNs use hypoacetylated tails to recruit RSC to NDRs, and subsequent acetylation of the tails promote histone eviction. In contrast to the promoters, RSC occupancies were significantly reduced in transcribed ORFs in the HAT mutants. Additionally, the HAT mutants showed reduced TBP and Pol II binding at promoters. Thus, our data implicate HATs and RSC in maintaining NDRs, regulating chromatin structure, and promoting transcription.

genomics↗