Lysine 4 of histone H3.3 is required for embryonic stem cell differentiation, histone enrichment at regulatory regions and transcription accuracy

被引:0
作者
Maja Gehre
Daria Bunina
Simone Sidoli
Marlena J. Lübke
Nichole Diaz
Matteo Trovato
Benjamin A. Garcia
Judith B. Zaugg
Kyung-Min Noh
机构
[1] European Molecular Biology Laboratory,Epigenetics Institute, Department of Biochemistry and Biophysics, Perelman School of Medicine
[2] Genome Biology Unit,Department of Biochemistry
[3] Collaboration for joint PhD degree between the European Molecular Biology Laboratory and Heidelberg University,undefined
[4] Faculty of Biosciences,undefined
[5] European Molecular Biology Laboratory,undefined
[6] Structural and Computational Biology Unit,undefined
[7] University of Pennsylvania,undefined
[8] Albert Einstein College of Medicine,undefined
来源
Nature Genetics | 2020年 / 52卷
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摘要
Mutations in enzymes that modify histone H3 at lysine 4 (H3K4) or lysine 36 (H3K36) have been linked to human disease, yet the role of these residues in mammals is unclear. We mutated K4 or K36 to alanine in the histone variant H3.3 and showed that the K4A mutation in mouse embryonic stem cells (ESCs) impaired differentiation and induced widespread gene expression changes. K4A resulted in substantial H3.3 depletion, especially at ESC promoters; it was accompanied by reduced remodeler binding and increased RNA polymerase II (Pol II) activity. Regulatory regions depleted of H3.3K4A showed histone modification alterations and changes in enhancer activity that correlated with gene expression. In contrast, the K36A mutation did not alter H3.3 deposition and affected gene expression at the later stages of differentiation. Thus, H3K4 is required for nucleosome deposition, histone turnover and chromatin remodeler binding at regulatory regions, where tight regulation of Pol II activity is necessary for proper ESC differentiation.
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页码:273 / 282
页数:9
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