Cancer Institute, Shanghai Cancer Center, Fudan University, China.
Cell Res. 2010 Aug;20(8):886-98. doi: 10.1038/cr.2010.86. Epub 2010 Jun 22.
Histone lysine methylation can be removed by JmjC domain-containing proteins in a sequence- and methylation-state-specific manner. However, how substrate specificity is determined and how the enzymes are regulated were largely unknown. We recently found that ceKDM7A, a PHD- and JmjC domain-containing protein, is a histone demethylase specific for H3K9me2 and H3K27me2, and the PHD finger binding to H3K4me3 guides the demethylation activity in vivo. To provide structural insight into the molecular mechanisms for the enzymatic activity and the function of the PHD finger, we solved six crystal structures of the enzyme in apo form and in complex with single or two peptides containing various combinations of H3K4me3, H3K9me2, and H3K27me2 modifications. The structures indicate that H3K9me2 and H3K27me2 interact with ceKDM7A in a similar fashion, and that the peptide-binding specificity is determined by a network of specific interactions. The geometrical measurement of the structures also revealed that H3K4me3 associated with the PHD finger and H3K9me2 bound to the JmjC domain are from two separate molecules, suggesting a trans-histone peptide-binding mechanism. Thus, our systemic structural studies reveal not only the substrate recognition by the catalytic domain but also more importantly, the molecular mechanism of dual specificity of ceDKM7A for both H3K9me2 and H3K27me2.
组蛋白赖氨酸甲基化可以通过含有 JmjC 结构域的蛋白质以序列和甲基化状态特异性的方式去除。然而,底物特异性是如何确定的,以及酶是如何被调控的,在很大程度上仍然未知。我们最近发现,含有 PHD 和 JmjC 结构域的 ceKDM7A 是一种特异性针对 H3K9me2 和 H3K27me2 的组蛋白去甲基化酶,PHD 指结合 H3K4me3 指导体内的去甲基化活性。为了提供对酶活性和 PHD 指功能的分子机制的结构见解,我们解决了酶在 apo 形式以及与含有各种 H3K4me3、H3K9me2 和 H3K27me2 修饰的单个或两个肽的复合物的六个晶体结构。这些结构表明,H3K9me2 和 H3K27me2 以相似的方式与 ceKDM7A 相互作用,并且肽结合特异性由特定相互作用的网络决定。结构的几何测量还表明,与 PHD 指相关联的 H3K4me3 和与 JmjC 结构域结合的 H3K9me2 来自两个单独的分子,表明存在跨组蛋白肽结合机制。因此,我们系统的结构研究不仅揭示了催化结构域的底物识别,而且更重要的是揭示了 ceDKM7A 对 H3K9me2 和 H3K27me2 双重特异性的分子机制。