Taglini Francesca, Kafetzopoulos Ioannis, Rolls Willow, Musialik Kamila Irena, Lee Heng Yang, Zhang Yujie, Marenda Mattia, Kerr Lyndsay, Finan Hannah, Rubio-Ramon Cristina, Gautier Philippe, Wapenaar Hannah, Kumar Dhananjay, Davidson-Smith Hazel, Wills Jimi, Murphy Laura C, Wheeler Ann, Wilson Marcus D, Sproul Duncan
MRC Human Genetics Unit, Institute of Genetics and Cancer, University of Edinburgh, Edinburgh, UK.
CRUK Edinburgh Centre, Institute of Genetics and Cancer, University of Edinburgh, Edinburgh, UK.
EMBO Rep. 2024 Mar;25(3):1130-1155. doi: 10.1038/s44319-024-00061-5. Epub 2024 Jan 30.
The correct establishment of DNA methylation patterns is vital for mammalian development and is achieved by the de novo DNA methyltransferases DNMT3A and DNMT3B. DNMT3B localises to H3K36me3 at actively transcribing gene bodies via its PWWP domain. It also functions at heterochromatin through an unknown recruitment mechanism. Here, we find that knockout of DNMT3B causes loss of methylation predominantly at H3K9me3-marked heterochromatin and that DNMT3B PWWP domain mutations or deletion result in striking increases of methylation in H3K9me3-marked heterochromatin. Removal of the N-terminal region of DNMT3B affects its ability to methylate H3K9me3-marked regions. This region of DNMT3B directly interacts with HP1α and facilitates the bridging of DNMT3B with H3K9me3-marked nucleosomes in vitro. Our results suggest that DNMT3B is recruited to H3K9me3-marked heterochromatin in a PWWP-independent manner that is facilitated by the protein's N-terminal region through an interaction with a key heterochromatin protein. More generally, we suggest that DNMT3B plays a role in DNA methylation homeostasis at heterochromatin, a process which is disrupted in cancer, aging and Immunodeficiency, Centromeric Instability and Facial Anomalies (ICF) syndrome.
DNA甲基化模式的正确建立对哺乳动物发育至关重要,这是由从头DNA甲基转移酶DNMT3A和DNMT3B实现的。DNMT3B通过其PWWP结构域定位于活跃转录基因体上的H3K36me3。它还通过未知的招募机制在异染色质中发挥作用。在这里,我们发现敲除DNMT3B主要导致H3K9me3标记的异染色质处甲基化缺失,并且DNMT3B的PWWP结构域突变或缺失导致H3K9me3标记的异染色质中甲基化显著增加。去除DNMT3B的N端区域会影响其甲基化H3K9me3标记区域的能力。DNMT3B的这一区域直接与HP1α相互作用,并在体外促进DNMT3B与H3K9me3标记的核小体的桥接。我们的结果表明,DNMT3B以一种不依赖PWWP的方式被招募到H3K9me3标记的异染色质上,该蛋白的N端区域通过与一种关键的异染色质蛋白相互作用促进了这一过程。更普遍地说,我们认为DNMT3B在异染色质的DNA甲基化稳态中起作用,这一过程在癌症、衰老和免疫缺陷、着丝粒不稳定和面部异常(ICF)综合征中会被破坏。