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Published on: November 5, 2012
Phosphorylation of MLL by ATR is required for execution of mammalian S-phase checkpoint
Han Liu1, Shugaku Takeda, Rakesh Kumar
1Department of Medicine, Washington University School of Medicine, St Louis, Missouri 63110, USA.
Abstract:
Cell cycle checkpoints are implemented to safeguard the genome, avoiding the accumulation of genetic errors. Checkpoint loss results in genomic instability and contributes to the evolution of cancer. Among G1-, S-, G2- and M-phase checkpoints, genetic studies indicate the role of an intact S-phase checkpoint in maintaining genome integrity. Although the basic framework of the S-phase checkpoint in multicellular organisms has been outlined, the mechanistic details remain to be elucidated. Human chromosome-11 band-q23 translocations disrupting the MLL gene lead to poor prognostic leukaemias. Here we assign MLL as a novel effector in the mammalian S-phase checkpoint network and identify checkpoint dysfunction as an underlying mechanism of MLL leukaemias. MLL is phosphorylated at serine 516 by ATR in response to genotoxic stress in the S phase, which disrupts its interaction with, and hence its degradation by, the SCF(Skp2) E3 ligase, leading to its accumulation. Stabilized MLL protein accumulates on chromatin, methylates histone H3 lysine 4 at late replication origins and inhibits the loading of CDC45 to delay DNA replication. Cells deficient in MLL showed radioresistant DNA synthesis and chromatid-type genomic abnormalities, indicative of S-phase checkpoint dysfunction. Reconstitution of Mll(-/-) (Mll also known as Mll1) mouse embryonic fibroblasts with wild-type but not S516A or ΔSET mutant MLL rescues the S-phase checkpoint defects. Moreover, murine myeloid progenitor cells carrying an Mll-CBP knock-in allele that mimics human t(11;16) leukaemia show a severe radioresistant DNA synthesis phenotype. MLL fusions function as dominant negative mutants that abrogate the ATR-mediated phosphorylation/stabilization of wild-type MLL on damage to DNA, and thus compromise the S-phase checkpoint. Together, our results identify MLL as a key constituent of the mammalian DNA damage response pathway and show that deregulation of the S-phase checkpoint incurred by MLL translocations probably contributes to the pathogenesis of human MLL leukaemias.
Insights
The MLL gene is crucial for the S-phase checkpoint, preventing DNA damage during replication. Its disruption in MLL leukaemias leads to checkpoint failure and genomic instability.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Biology
Background:
- Cell cycle checkpoints are vital for maintaining genomic integrity by preventing DNA replication errors.
- Loss of checkpoint control contributes to genomic instability and cancer development.
- The S-phase checkpoint's precise mechanisms in multicellular organisms require further elucidation.
Purpose of the Study:
- To investigate the role of the MLL gene in the mammalian S-phase checkpoint.
- To determine if MLL dysfunction contributes to MLL leukaemias.
- To elucidate the molecular mechanisms underlying MLL's function in DNA damage response.
Main Methods:
- Phosphorylation analysis of MLL by ATR in response to genotoxic stress.
- Assessment of MLL's interaction with the SCF(Skp2) E3 ligase.
- Chromatin immunoprecipitation to study MLL binding and histone methylation.
- Phenotypic analysis of MLL-deficient cells and MLL mutant reconstitution.
- Investigation of MLL fusions in murine myeloid progenitor cells.
Main Results:
- MLL is phosphorylated by ATR at Serine 516 upon genotoxic stress, inhibiting its degradation and leading to accumulation.
- Stabilized MLL methylates histone H3 lysine 4 at late replication origins, delaying DNA replication.
- MLL-deficient cells exhibit radioresistant DNA synthesis and genomic abnormalities.
- Reconstitution with wild-type MLL rescues S-phase checkpoint defects, while mutants do not.
- MLL fusions disrupt ATR-mediated MLL stabilization, compromising the S-phase checkpoint.
Conclusions:
- MLL is a novel effector in the mammalian S-phase checkpoint network.
- Checkpoint dysfunction due to MLL alterations is a mechanism underlying MLL leukaemias.
- MLL plays a critical role in the DNA damage response pathway, and its deregulation contributes to cancer pathogenesis.
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