Huyen Yentram, Zgheib Omar, Ditullio Richard A, Gorgoulis Vassilis G, Zacharatos Panayotis, Petty Tom J, Sheston Emily A, Mellert Hestia S, Stavridi Elena S, Halazonetis Thanos D
Wistar Institute, Philadelphia, Pennsylvania 19104-4268, USA.
Nature. 2004 Nov 18;432(7015):406-11. doi: 10.1038/nature03114. Epub 2004 Nov 3.
The mechanisms by which eukaryotic cells sense DNA double-strand breaks (DSBs) in order to initiate checkpoint responses are poorly understood. 53BP1 is a conserved checkpoint protein with properties of a DNA DSB sensor. Here, we solved the structure of the domain of 53BP1 that recruits it to sites of DSBs. This domain consists of two tandem tudor folds with a deep pocket at their interface formed by residues conserved in the budding yeast Rad9 and fission yeast Rhp9/Crb2 orthologues. In vitro, the 53BP1 tandem tudor domain bound histone H3 methylated on Lys 79 using residues that form the walls of the pocket; these residues were also required for recruitment of 53BP1 to DSBs. Suppression of DOT1L, the enzyme that methylates Lys 79 of histone H3, also inhibited recruitment of 53BP1 to DSBs. Because methylation of histone H3 Lys 79 was unaltered in response to DNA damage, we propose that 53BP1 senses DSBs indirectly through changes in higher-order chromatin structure that expose the 53BP1 binding site.
真核细胞感知DNA双链断裂(DSB)以启动检查点反应的机制目前仍知之甚少。53BP1是一种具有DNA DSB传感器特性的保守检查点蛋白。在此,我们解析了53BP1中使其被招募至DSB位点的结构域的结构。该结构域由两个串联的tudor折叠组成,在其界面处有一个深口袋,由芽殖酵母Rad9和裂殖酵母Rhp9/Crb2直系同源物中保守的残基形成。在体外,53BP1串联tudor结构域利用形成口袋壁的残基与赖氨酸79位甲基化的组蛋白H3结合;这些残基也是将53BP1招募至DSB位点所必需的。抑制组蛋白H3赖氨酸79位甲基化酶DOT1L,也会抑制53BP1向DSB位点的募集。由于组蛋白H3赖氨酸79位的甲基化在DNA损伤反应中未发生改变,我们提出53BP1通过高阶染色质结构的变化间接感知DSB,这些变化会暴露53BP1结合位点。