Blackford Andrew N, Nieminuszczy Jadwiga, Schwab Rebekka A, Galanty Yaron, Jackson Stephen P, Niedzwiedz Wojciech
The Weatherall Institute of Molecular Medicine, University of Oxford, Oxford OX3 9DS, UK; The Gurdon Institute and Department of Biochemistry, University of Cambridge, Cambridge CB2 1QN, UK.
The Weatherall Institute of Molecular Medicine, University of Oxford, Oxford OX3 9DS, UK; Institute of Biochemistry and Biophysics, PAS, 02-106 Warsaw, Poland.
Mol Cell. 2015 Mar 19;57(6):1133-1141. doi: 10.1016/j.molcel.2015.02.012.
The Bloom syndrome helicase BLM and topoisomerase-IIβ-binding protein 1 (TopBP1) are key regulators of genome stability. It was recently proposed that BLM phosphorylation on Ser338 mediates its interaction with TopBP1, to protect BLM from ubiquitylation and degradation (Wang et al., 2013). Here, we show that the BLM-TopBP1 interaction does not involve Ser338 but instead requires BLM phosphorylation on Ser304. Furthermore, we establish that disrupting this interaction does not markedly affect BLM stability. However, BLM-TopBP1 binding is important for maintaining genome integrity, because in its absence cells display increased sister chromatid exchanges, replication origin firing and chromosomal aberrations. Therefore, the BLM-TopBP1 interaction maintains genome stability not by controlling BLM protein levels, but via another as-yet undetermined mechanism. Finally, we identify critical residues that mediate interactions between TopBP1 and MDC1, and between BLM and TOP3A/RMI1/RMI2. Taken together, our findings provide molecular insights into a key tumor suppressor and genome stability network.
布卢姆综合征解旋酶BLM和拓扑异构酶IIβ结合蛋白1(TopBP1)是基因组稳定性的关键调节因子。最近有人提出,丝氨酸338处的BLM磷酸化介导其与TopBP1的相互作用,以保护BLM不被泛素化和降解(Wang等人,2013年)。在此,我们表明BLM与TopBP1的相互作用不涉及丝氨酸338,而是需要丝氨酸304处的BLM磷酸化。此外,我们证实破坏这种相互作用不会显著影响BLM的稳定性。然而,BLM-TopBP1结合对于维持基因组完整性很重要,因为在缺乏这种结合的情况下,细胞会出现姐妹染色单体交换增加、复制起点激活和染色体畸变。因此,BLM-TopBP1相互作用维持基因组稳定性并非通过控制BLM蛋白水平,而是通过另一种尚未确定的机制。最后,我们确定了介导TopBP1与MDC1之间以及BLM与TOP3A/RMI1/RMI2之间相互作用的关键残基。综上所述,我们的研究结果为一个关键的肿瘤抑制因子和基因组稳定性网络提供了分子层面的见解。