Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, China.
Cell Res. 2010 Aug;20(8):899-907. doi: 10.1038/cr.2010.84. Epub 2010 Jun 22.
H3K9me2 and H3K27me2 are important epigenetic marks associated with transcription repression, while H3K4me3 is associated with transcription activation. It has been shown that active and repressive histone methylations distribute in a mutually exclusive manner, but the underlying mechanism was poorly understood. Here we identified ceKDM7A, a PHD (plant homeodomain)- and JmjC domain-containing protein, as a histone demethylase specific for H3K9me2 and H3K27me2. We further demonstrated that the PHD domain of ceKDM7A bound H3K4me3 and H3K4me3 co-localized with ceKDM7A at the genome-wide level. Disruption of the PHD domain binding to H3K4me3 reduced the demethylase activity in vivo, and loss of ceKDM7A reduced the expression of its associated target genes. These results indicate that ceKDM7A is recruited to the promoter to demethylate H3K9me2 and H3K27me2 and activate gene expression through the binding of the PHD domain to H3K4me3. Thus, our study identifies a dual-specificity histone demethylase and provides novel insights into the regulation of histone methylation.
H3K9me2 和 H3K27me2 是与转录抑制相关的重要表观遗传标记,而 H3K4me3 则与转录激活相关。已经表明,活性和抑制性组蛋白甲基化以相互排斥的方式分布,但潜在的机制尚不清楚。在这里,我们鉴定了 ceKDM7A,一种含有 PHD(植物同源域)和 JmjC 结构域的蛋白,作为 H3K9me2 和 H3K27me2 的特异性组蛋白去甲基化酶。我们进一步证明,ceKDM7A 的 PHD 结构域结合 H3K4me3,并且在全基因组水平上,H3K4me3 与 ceKDM7A 共定位。破坏 PHD 结构域与 H3K4me3 的结合降低了体内的去甲基化酶活性,而 ceKDM7A 的缺失降低了其相关靶基因的表达。这些结果表明,ceKDM7A 被募集到启动子上,通过 PHD 结构域与 H3K4me3 的结合,去甲基化 H3K9me2 和 H3K27me2,并激活基因表达。因此,我们的研究鉴定了一种双重特异性组蛋白去甲基化酶,并为组蛋白甲基化的调控提供了新的见解。