Zhou Y, Zheng L, Li F, Wan M, Fan Y, Zhou X, Du W, Pi C, Cui D, Zhang B, Sun J, Zhou X
1 State Key Laboratory of Oral Diseases, National Clinical Research Center for Oral Diseases, West China Hospital of Stomatology, Sichuan University, Chengdu, China.
J Dent Res. 2018 Jan;97(1):99-107. doi: 10.1177/0022034517728910. Epub 2017 Sep 7.
Lineage-committed differentiation is an essential biological program during odontogenesis, which is tightly regulated by lineage-specific genes. Some of these genes are modified by colocalization of H3K4me3 and H3K27me3 marks at promoter regions in progenitors. These modifications, named "bivalent domains," maintain genes in a poised state and then resolve for later activation or repression during differentiation. Wnt5a has been reported to promote odontogenic differentiation in dental mesenchyme. However, relatively little is known about the epigenetic modulations on Wnt5a activation during tooth development. Here, we investigated the spatiotemporal patterns of H3K4me3 and H3K27me3 marks in developing mouse molars. Associated H3K4me3 methylases (mixed-lineage leukemia [MLL] complex) and H3K27me3 demethylases (JMJD3 and UTX) were dynamically expressed between early and late bell stage of human tooth germs and in cultured human dental papilla cells (hDPCs) during odontogenic induction. Poised WNT5A gene was marked by bivalent domains containing repressive marks (H3K27me3) and active marks (H3K4me3) on promoters. The bivalent domains tended to resolve during inducted differentiation, with removal of the H3K27me3 mark in a JMJD3-dependent manner. When JMJD3 was knocked down in cultured hDPCs, odontogenic differentiation was suppressed. The depletion of JMJD3 epigenetically repressed WNT5A activation by increased H3K27me3 marks. In addition, JMJD3 could physically interact with ASH2L, a component of the MLL complex, to form a coactivator complex, cooperatively modulating H3K4me3 marks on WNT5A promoters. Overall, our study reveals that transcription activities of WNT5A were epigenetically regulated by the negotiated balance between H3K27me3 and H3K4me3 marks and tightly mediated by JMJD3 and MLL coactivator complex, ultimately modulating odontogenic commitment during dental mesenchymal cell differentiation.
谱系定向分化是牙发生过程中的一个重要生物学程序,它受到谱系特异性基因的严格调控。其中一些基因在祖细胞的启动子区域通过H3K4me3和H3K27me3标记的共定位而被修饰。这些修饰被称为“双价结构域”,使基因保持在一种待命状态,然后在分化过程中决定随后的激活或抑制。据报道,Wnt5a可促进牙间充质中的牙源性分化。然而,关于牙齿发育过程中Wnt5a激活的表观遗传调控相对知之甚少。在这里,我们研究了发育中小鼠磨牙中H3K4me3和H3K27me3标记的时空模式。相关的H3K4me3甲基转移酶(混合谱系白血病[MLL]复合物)和H3K27me3去甲基酶(JMJD3和UTX)在人牙胚的早期和晚期钟状期之间以及在牙源性诱导过程中的培养人牙乳头细胞(hDPCs)中动态表达。待命的WNT5A基因在启动子上由包含抑制性标记(H3K27me3)和活性标记(H3K4me3)的双价结构域标记。在诱导分化过程中,双价结构域倾向于分解,H3K27me3标记以JMJD3依赖的方式去除。当在培养的hDPCs中敲低JMJD3时,牙源性分化受到抑制。JMJD3的缺失通过增加H3K27me3标记在表观遗传上抑制WNT5A的激活。此外,JMJD3可以与MLL复合物的一个组分ASH2L发生物理相互作用,形成一个共激活复合物,协同调节WNT5A启动子上的H3K4me3标记。总体而言,我们的研究表明,WNT5A的转录活性受到H3K27me3和H3K4me3标记之间协商平衡的表观遗传调控,并由JMJD3和MLL共激活复合物紧密介导,最终在牙间充质细胞分化过程中调节牙源性定向。