Inagaki Soichi, Takahashi Mayumi, Hosaka Aoi, Ito Tasuku, Toyoda Atsushi, Fujiyama Asao, Tarutani Yoshiaki, Kakutani Tetsuji
National Institute of Genetics, Mishima, Shizuoka, Japan
Department of Genetics, School of Life science, The Graduate University for Advanced Studies (SOKENDAI), Mishima, Shizuoka, Japan.
EMBO J. 2017 Apr 13;36(8):970-980. doi: 10.15252/embj.201694983. Epub 2017 Jan 18.
Heterochromatin is marked by methylation of lysine 9 on histone H3 (H3K9me). A puzzling feature of H3K9me is that this modification localizes not only in promoters but also in internal regions (bodies) of silent transcription units. Despite its prevalence, the biological significance of gene-body H3K9me remains enigmatic. Here we show that H3K9me-associated removal of H3K4 monomethylation (H3K4me1) in gene bodies mediates transcriptional silencing. Mutations in an H3K9 demethylase gene induce ectopic H3K9me2 accumulation in gene bodies, with accompanying severe developmental defects. Through suppressor screening of the -induced developmental defects, we identified the gene, which encodes a homolog of conserved H3K4 demethylases. The mutation suppressed the developmental defects, without suppressing the -induced ectopic H3K9me2. The ectopic H3K9me2 mark directed removal of gene-body H3K4me1 and caused transcriptional repression in an LDL2-dependent manner. Furthermore, mutations of H3K9 methylases increased the level of H3K4me1 in the gene bodies of various transposable elements, and this H3K4me1 increase is a prerequisite for their transcriptional derepression. Our results uncover an unexpected role of gene-body H3K9me2/H3K4me1 dynamics as a mediator of heterochromatin silencing and epigenome differentiation.
异染色质以组蛋白H3上赖氨酸9的甲基化(H3K9me)为标志。H3K9me的一个令人困惑的特征是,这种修饰不仅定位于启动子区域,还定位于沉默转录单元的内部区域(基因体)。尽管其普遍存在,但基因体H3K9me的生物学意义仍然是个谜。在这里,我们表明基因体中与H3K9me相关的H3K4单甲基化(H3K4me1)的去除介导了转录沉默。一个H3K9去甲基化酶基因的突变导致基因体中异位H3K9me2积累,并伴有严重的发育缺陷。通过对诱导的发育缺陷进行抑制子筛选,我们鉴定出了LDL2基因,它编码保守的H3K4去甲基化酶的同源物。LDL2突变抑制了发育缺陷,但没有抑制诱导的异位H3K9me2。异位H3K9me2标记导致基因体H3K4me1的去除,并以LDL2依赖的方式引起转录抑制。此外,H3K9甲基转移酶的突变增加了各种转座元件基因体中H3K4me1的水平,而这种H3K4me1的增加是它们转录去抑制的先决条件。我们的结果揭示了基因体H3K9me2/H3K4me1动态作为异染色质沉默和表观基因组分化介质的意想不到的作用。