Laboratory of Genetics, University of Wisconsin-Madison, Madison, WI, 53706, USA.
Wisconsin Institute for Discovery, University of Wisconsin-Madison, Madison, WI, 53706, USA.
Nat Commun. 2018 Jun 21;9(1):2425. doi: 10.1038/s41467-018-04836-y.
The ability of a cell to dynamically switch its chromatin between different functional states constitutes a key mechanism regulating gene expression. Histone mark "readers" display distinct binding specificity to different histone modifications and play critical roles in regulating chromatin states. Here, we show a plant-specific histone reader SHORT LIFE (SHL) capable of recognizing both H3K27me3 and H3K4me3 via its bromo-adjacent homology (BAH) and plant homeodomain (PHD) domains, respectively. Detailed biochemical and structural studies suggest a binding mechanism that is mutually exclusive for either H3K4me3 or H3K27me3. Furthermore, we show a genome-wide co-localization of SHL with H3K27me3 and H3K4me3, and that BAH-H3K27me3 and PHD-H3K4me3 interactions are important for SHL-mediated floral repression. Together, our study establishes BAH-PHD cassette as a dual histone methyl-lysine binding module that is distinct from others in recognizing both active and repressive histone marks.
细胞将其染色质在不同功能状态之间动态切换的能力是调节基因表达的关键机制。组蛋白标记“读取器”对不同的组蛋白修饰显示出独特的结合特异性,并在调节染色质状态方面发挥着关键作用。在这里,我们展示了一种植物特异性的组蛋白读取器 SHORT LIFE(SHL),它可以分别通过其溴邻位同源(BAH)和植物同源域(PHD)结构域识别 H3K27me3 和 H3K4me3。详细的生化和结构研究表明,存在一种相互排斥的结合机制,分别适用于 H3K4me3 或 H3K27me3。此外,我们还展示了 SHL 与 H3K27me3 和 H3K4me3 的全基因组共定位,并且 BAH-H3K27me3 和 PHD-H3K4me3 相互作用对于 SHL 介导的花抑制是重要的。总之,我们的研究确立了 BAH-PHD 盒作为一种双重组蛋白甲基-赖氨酸结合模块,与其他识别活性和抑制性组蛋白标记的模块不同。