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Histone H3K36 trimethylation is essential for multiple silencing mechanisms in fission yeast

In budding yeast, Set2 catalyzes di- and trimethylation of H3K36 (H3K36me2 and H3K36me3) via an interaction between its Set2–Rpb1 interaction (SRI) domain and C-terminal repeats of RNA polymerase II (Pol2) phosphorylated at Ser(2) and Ser(5) (CTD-S2,5-P). H3K36me2 is sufficient for recruitment of th...

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Autores principales: Suzuki, Shota, Kato, Hiroaki, Suzuki, Yutaka, Chikashige, Yuji, Hiraoka, Yasushi, Kimura, Hiroshi, Nagao, Koji, Obuse, Chikashi, Takahata, Shinya, Murakami, Yota
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4872076/
https://www.ncbi.nlm.nih.gov/pubmed/26792892
http://dx.doi.org/10.1093/nar/gkw008
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author Suzuki, Shota
Kato, Hiroaki
Suzuki, Yutaka
Chikashige, Yuji
Hiraoka, Yasushi
Kimura, Hiroshi
Nagao, Koji
Obuse, Chikashi
Takahata, Shinya
Murakami, Yota
author_facet Suzuki, Shota
Kato, Hiroaki
Suzuki, Yutaka
Chikashige, Yuji
Hiraoka, Yasushi
Kimura, Hiroshi
Nagao, Koji
Obuse, Chikashi
Takahata, Shinya
Murakami, Yota
author_sort Suzuki, Shota
collection PubMed
description In budding yeast, Set2 catalyzes di- and trimethylation of H3K36 (H3K36me2 and H3K36me3) via an interaction between its Set2–Rpb1 interaction (SRI) domain and C-terminal repeats of RNA polymerase II (Pol2) phosphorylated at Ser(2) and Ser(5) (CTD-S2,5-P). H3K36me2 is sufficient for recruitment of the Rpd3S histone deacetylase complex to repress cryptic transcription from transcribed regions. In fission yeast, Set2 is also responsible for H3K36 methylation, which represses a subset of RNAs including heterochromatic and subtelomeric RNAs, at least in part via recruitment of Clr6 complex II, a homolog of Rpd3S. Here, we show that CTD-S2P-dependent interaction of fission yeast Set2 with Pol2 via the SRI domain is required for formation of H3K36me3, but not H3K36me2. H3K36me3 silenced heterochromatic and subtelomeric transcripts mainly through post-transcriptional and transcriptional mechanisms, respectively, whereas H3K36me2 was not enough for silencing. Clr6 complex II appeared not to be responsible for heterochromatic silencing by H3K36me3. Our results demonstrate that H3K36 methylation has multiple outputs in fission yeast; these findings provide insights into the distinct roles of H3K36 methylation in metazoans, which have different enzymes for synthesis of H3K36me1/2 and H3K36me3.
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spelling pubmed-48720762016-05-27 Histone H3K36 trimethylation is essential for multiple silencing mechanisms in fission yeast Suzuki, Shota Kato, Hiroaki Suzuki, Yutaka Chikashige, Yuji Hiraoka, Yasushi Kimura, Hiroshi Nagao, Koji Obuse, Chikashi Takahata, Shinya Murakami, Yota Nucleic Acids Res Gene regulation, Chromatin and Epigenetics In budding yeast, Set2 catalyzes di- and trimethylation of H3K36 (H3K36me2 and H3K36me3) via an interaction between its Set2–Rpb1 interaction (SRI) domain and C-terminal repeats of RNA polymerase II (Pol2) phosphorylated at Ser(2) and Ser(5) (CTD-S2,5-P). H3K36me2 is sufficient for recruitment of the Rpd3S histone deacetylase complex to repress cryptic transcription from transcribed regions. In fission yeast, Set2 is also responsible for H3K36 methylation, which represses a subset of RNAs including heterochromatic and subtelomeric RNAs, at least in part via recruitment of Clr6 complex II, a homolog of Rpd3S. Here, we show that CTD-S2P-dependent interaction of fission yeast Set2 with Pol2 via the SRI domain is required for formation of H3K36me3, but not H3K36me2. H3K36me3 silenced heterochromatic and subtelomeric transcripts mainly through post-transcriptional and transcriptional mechanisms, respectively, whereas H3K36me2 was not enough for silencing. Clr6 complex II appeared not to be responsible for heterochromatic silencing by H3K36me3. Our results demonstrate that H3K36 methylation has multiple outputs in fission yeast; these findings provide insights into the distinct roles of H3K36 methylation in metazoans, which have different enzymes for synthesis of H3K36me1/2 and H3K36me3. Oxford University Press 2016-05-19 2016-01-20 /pmc/articles/PMC4872076/ /pubmed/26792892 http://dx.doi.org/10.1093/nar/gkw008 Text en © The Author(s) 2016. Published by Oxford University Press on behalf of Nucleic Acids Research. http://creativecommons.org/licenses/by-nc/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by-nc/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com
spellingShingle Gene regulation, Chromatin and Epigenetics
Suzuki, Shota
Kato, Hiroaki
Suzuki, Yutaka
Chikashige, Yuji
Hiraoka, Yasushi
Kimura, Hiroshi
Nagao, Koji
Obuse, Chikashi
Takahata, Shinya
Murakami, Yota
Histone H3K36 trimethylation is essential for multiple silencing mechanisms in fission yeast
title Histone H3K36 trimethylation is essential for multiple silencing mechanisms in fission yeast
title_full Histone H3K36 trimethylation is essential for multiple silencing mechanisms in fission yeast
title_fullStr Histone H3K36 trimethylation is essential for multiple silencing mechanisms in fission yeast
title_full_unstemmed Histone H3K36 trimethylation is essential for multiple silencing mechanisms in fission yeast
title_short Histone H3K36 trimethylation is essential for multiple silencing mechanisms in fission yeast
title_sort histone h3k36 trimethylation is essential for multiple silencing mechanisms in fission yeast
topic Gene regulation, Chromatin and Epigenetics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4872076/
https://www.ncbi.nlm.nih.gov/pubmed/26792892
http://dx.doi.org/10.1093/nar/gkw008
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