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Preparation of Cell-lines for Conditional Knockdown of Gene Expression and Measurement of the Knockdown Effects on E4orf4-Induced Cell Death
Published on: October 21, 2012
E2F1 uses the ATM signaling pathway to induce p53 and Chk2 phosphorylation and apoptosis
John T Powers1, SungKi Hong, Christopher N Mayhew
1Department of Carcinogenesis, University of Texas MD Anderson Cancer Center, Science Park-Research Division, Smithville, Texas 78957, USA.
Abstract:
The p53 tumor suppressor protein is phosphorylated and activated by several DNA damage-inducible kinases, such as ATM, and is a key effector of the DNA damage response by promoting cell cycle arrest or apoptosis. Deregulation of the Rb-E2F1 pathway also results in the activation of p53 and the promotion of apoptosis, and this contributes to the suppression of tumor development. Here, we describe a novel connection between E2F1 and the ATM DNA damage response pathway. In primary human fibroblasts lacking functional ATM, the ability of E2F1 to induce the phosphorylation of p53 and apoptosis is impaired. In contrast, ATM status has no effect on transcriptional activation of target genes or the stimulation of DNA synthesis by E2F1. Cells containing mutant Nijmegen breakage syndrome protein (NBS1), a component of the Mre11-Rad50 DNA repair complex, also have attenuated p53 phosphorylation and apoptosis in response to E2F1 expression. Moreover, E2F1 induces ATM- and NBS1-dependent phosphorylation of the checkpoint kinase Chk2 at Thr68, a phosphorylation site that stimulates Chk2 activity. Delayed gammaH2AX phosphorylation and absence of ATM autophosphorylation at Ser1981 suggest that E2F1 stimulates ATM through a unique mechanism that is distinct from agents that cause DNA double-strand breaks. These findings identify new roles for several DNA damage response factors by demonstrating that they also participate in the oncogenic stress signaling pathway between E2F1 and p53.
Insights
The oncogenic stress pathway connects E2F1 and ATM signaling. E2F1 requires ATM and NBS1 for p53 phosphorylation and apoptosis, revealing new roles for DNA damage response factors.
Area of Science:
- Cellular biology
- Molecular oncology
- DNA damage response
Background:
- p53 tumor suppressor protein is activated by DNA damage-inducible kinases like ATM, mediating cell cycle arrest or apoptosis.
- The Rb-E2F1 pathway also activates p53 and promotes apoptosis, contributing to tumor suppression.
Purpose of the Study:
- To investigate the novel connection between the E2F1 pathway and the ATM DNA damage response pathway.
- To elucidate the role of ATM and NBS1 in E2F1-mediated p53 activation and apoptosis.
Main Methods:
- Utilized primary human fibroblasts with varying ATM and NBS1 functional status.
- Assessed E2F1-induced p53 phosphorylation, apoptosis, transcriptional activation, and DNA synthesis.
- Examined Chk2 and gammaH2AX phosphorylation, and ATM autophosphorylation.
Main Results:
- E2F1-induced p53 phosphorylation and apoptosis were impaired in ATM-deficient fibroblasts.
- ATM status did not affect E2F1's transcriptional activation or DNA synthesis stimulation.
- Mutant NBS1 also attenuated E2F1-induced p53 phosphorylation and apoptosis.
- E2F1 induced ATM- and NBS1-dependent Chk2 phosphorylation at Thr68.
- E2F1 appears to stimulate ATM via a unique mechanism distinct from DNA double-strand breaks.
Conclusions:
- DNA damage response factors ATM and NBS1 are crucial for E2F1-mediated p53 activation and apoptosis.
- E2F1 engages ATM and NBS1 in an oncogenic stress signaling pathway.
- These findings reveal novel functions for DNA damage response proteins in oncogenic stress signaling.
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