H3K36 Methylation - a Guardian of Epigenome Integrity

Gerry Shipman, Reinnier Padilla, Cynthia Horth, Eric Bareke, Jacek Majewski
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Abstract

H3K36 methylation is emerging as a key epigenetic modification with strong implications in genetic disease and cancer. However, the mechanisms through which H3K36me impacts the epigenome and asserts its functional consequences are far from understood. Here, we use mouse mesenchymal stem cell lines with successive knockouts of the H3K36 methyltransferases: NSD1, NSD2, SETD2, NSD3, and ASH1L, which result in progressive depletion of H3K36me and its complete absence in quintuple knockout cells, to finely dissect the role of H3K36me2 in shaping the epigenome and transcriptome. We show that H3K36me2, which targets active enhancers, is important for maintaining enhancer activity, and its depletion results in downregulation of enhancer-dependent genes. We demonstrate the roles of H3K36me2/3 in preventing the invasion of gene bodies by the repressive H3K27me modifications. Finally, we observe a previously undescribed relationship between H3K36me and H3K9me3: Following the depletion of H3K36me2, H3K9me3 is redistributed away from large heterochromatic domains and towards euchromatin. This results in a drastic decompartmentalization of the genome, weakening the boundaries between active and inactive compartments, and a catastrophic loss of long-range inter-compartment interactions. By studying cells totally devoid of H3K36 methyltransferase activity, we uncover a broad range of crucial functions of H3K36me in maintaining epigenome integrity.
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H3K36 甲基化--表观基因组完整性的守护者
H3K36 甲基化正在成为一种关键的表观遗传修饰,对遗传疾病和癌症具有重要影响。然而,人们对H3K36me影响表观基因组并产生功能性后果的机制还知之甚少。在这里,我们利用连续敲除 H3K36 甲基转移酶的小鼠间充质干细胞系:NSD1、NSD2、SETD2、NSD3和ASH1L会导致H3K36me逐渐耗竭,在五倍基因敲除的细胞中H3K36me完全缺失,我们在此利用小鼠间充质干细胞株连续敲除H3K36甲基转移酶:NSD1、NSD2、SETD2、NSD3和ASH1L,以深入剖析H3K36me2在表观基因组和转录组中的作用。我们发现,H3K36me2靶向活性增强子,对维持增强子活性非常重要,其缺失会导致依赖增强子的基因下调。我们证明了 H3K36me2/3 在防止基因体受到抑制性 H3K27me 修饰的侵袭方面的作用。最后,我们观察到 H3K36me 和 H3K9me3 之间存在一种以前未曾描述过的关系:H3K36me2消耗殆尽后,H3K9me3从大型异染色质结构域向外染色质重新分布。这导致基因组急剧失衡,削弱了活性区与非活性区之间的界限,并导致区间长程相互作用的灾难性损失。通过研究完全没有 H3K36 甲基转移酶活性的细胞,我们发现了 H3K36me 在维持表观基因组完整性方面的一系列关键功能。
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