ATM/ATR checkpoint activation downregulates CDC25C to prevent mitotic entry with uncapped telomeres

被引:68
作者
Thanasoula, Maria [1 ]
Escandell, Jose Miguel [1 ]
Suwaki, Natsuko [1 ]
Tarsounas, Madalena [1 ]
机构
[1] Univ Oxford, Dept Oncol, CR UK MRC Gray Inst Radiat Oncol & Biol, Telomere & Genome Stabil Grp, Oxford OX3 7DQ, England
关键词
ATM/ATR kinases; CDC25; phosphatases; checkpoint activation; telomere; DNA-DAMAGE CHECKPOINT; DOUBLE-STRAND BREAKS; CHK2; PROTEIN-KINASE; CELL-CYCLE; IONIZING-RADIATION; S-PHASE; DYSFUNCTIONAL TELOMERES; POT1; PROTEINS; ATM; P53;
D O I
10.1038/emboj.2012.191
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Shelterin component TRF2 prevents ATM activation, while POT1 represses ATR signalling at telomeres. Here, we investigate the mechanism of G2/M arrest triggered by telomeres uncapped through TRF2 or POT1 inhibition in human cells. We find that telomere damage-activated ATR and ATM phosphorylate p53, as well as CHK1 and CHK2, thus activating two independent pathways to prevent progression into mitosis with uncapped telomeres. Surprisingly, telomere damage targets the CDC25C phosphatase for proteasome degradation in G2/M. CHK1/CHK2-dependent phosphorylation of CDC25C at Ser 216 is required for CDC25C nuclear export and destruction, which in turn acts to sustain the G2/M arrest elicited by TRF2- or POT1-depleted telomeres. In addition, CDC25C is transcriptionally downregulated by p53 in response to telomere damage. These mechanisms are distinct from the canonical DNA damage response to ionizing radiation, which triggers cell-cycle arrest through CDC25A destruction. Thus, dysfunctional telomeres promote ATM/ATR-dependent degradation of CDC25C phosphatase to block mitotic entry, thereby preventing telomere dysfunction-driven genomic instability. The EMBO Journal (2012) 31, 3398-3410. doi:10.1038/emboj.2012.191; Published online 27 July 2012
引用
收藏
页码:3398 / 3410
页数:13
相关论文
共 54 条
[1]   The Chk2 protein kinase [J].
Ahn, J ;
Urist, M ;
Prives, C .
DNA REPAIR, 2004, 3 (8-9) :1039-1047
[2]   RAD51C facilitates checkpoint signaling by promoting CHK2 phosphorylation [J].
Badie, Sophie ;
Liao, Chunyan ;
Thanasoula, Maria ;
Barber, Paul ;
Hill, Mark A. ;
Tarsounas, Madalena .
JOURNAL OF CELL BIOLOGY, 2009, 185 (04) :587-600
[3]   Chk1 and Chk2 kinases in checkpoint control and cancer [J].
Bartek, J ;
Lukas, J .
CANCER CELL, 2003, 3 (05) :421-429
[4]   DNA damage checkpoints: from initiation to recovery or adaptation [J].
Bartek, Jiri ;
Lukas, Jiri .
CURRENT OPINION IN CELL BIOLOGY, 2007, 19 (02) :238-245
[5]   Regulators of cyclin-dependent kinases are crucial for maintaining genome integrity in S phase [J].
Beck, Halfdan ;
Nahse, Viola ;
Larsen, Marie Sofie Yoo ;
Groth, Petra ;
Clancy, Trevor ;
Lees, Michael ;
Jorgensen, Mette ;
Helleday, Thomas ;
Syljuasen, Randi G. ;
Sorensen, Claus Storgaard .
JOURNAL OF CELL BIOLOGY, 2010, 188 (05) :629-638
[6]   Dual phosphorylation controls Cdc25 phosphatases and mitotic entry [J].
Bulavin, DV ;
Higashimoto, Y ;
Demidenko, ZN ;
Meek, S ;
Graves, P ;
Phillips, C ;
Zhao, H ;
Moody, SA ;
Appella, E ;
Piwnica-Worms, H ;
Fornace, AJ .
NATURE CELL BIOLOGY, 2003, 5 (06) :545-551
[7]   Chk2 activation dependence on Nbs1 after DNA damage [J].
Buscemi, G ;
Savio, C ;
Zannini, L ;
Miccichè, F ;
Masnada, D ;
Nakanishi, M ;
Tauchi, H ;
Komatsu, K ;
Mizutani, S ;
Khanna, K ;
Chen, P ;
Concannon, P ;
Chessa, L ;
Delia, D .
MOLECULAR AND CELLULAR BIOLOGY, 2001, 21 (15) :5214-5222
[8]   Degradation of Cdc25A by β-TrCP during S phase and in response to DNA damage [J].
Busino, L ;
Donzelli, M ;
Chiesa, M ;
Guardavaccaro, D ;
Ganoth, D ;
Dorrello, NV ;
Hershko, A ;
Pagano, M ;
Draetta, GF .
NATURE, 2003, 426 (6962) :87-91
[9]   Activation of the ATM kinase by ionizing radiation and phosphorylation of p53 [J].
Canman, CE ;
Lim, DS ;
Cimprich, KA ;
Taya, Y ;
Tamai, K ;
Sakaguchi, K ;
Appella, E ;
Kastan, MB ;
Siliciano, JD .
SCIENCE, 1998, 281 (5383) :1677-1679
[10]   DNA processing is not required for ATM-mediated telomere damage response after TRF2 deletion [J].
Celli, GB ;
de Lange, T .
NATURE CELL BIOLOGY, 2005, 7 (07) :712-U110