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Published on: June 9, 2017
ATM-dependent phosphorylation of Mdm2 on serine 395: role in p53 activation by DNA damage
1Department of Molecular Cell Biology, Weizmann Institute of Science, Rehovot 76100, Israel.
Abstract:
The p53 tumor suppressor protein, a key regulator of cellular responses to genotoxic stress, is stabilized and activated after DNA damage. The rapid activation of p53 by ionizing radiation and radiomimetic agents is largely dependent on the ATM kinase. p53 is phosphorylated by ATM shortly after DNA damage, resulting in enhanced stability and activity of p53. The Mdm2 oncoprotein is a pivotal negative regulator of p53. In response to ionizing radiation and radiomimetic drugs, Mdm2 undergoes rapid ATM-dependent phosphorylation prior to p53 accumulation. This results in a decrease in its reactivity with the 2A10 monoclonal antibody. Phage display analysis identified a consensus 2A10 recognition sequence, possessing the core motif DYS. Unexpectedly, this motif appears twice within the human Mdm2 molecule, at positions corresponding to residues 258-260 and 393-395. Both putative 2A10 epitopes are highly conserved and encompass potential phosphorylation sites. Serine 395, residing within the carboxy-terminal 2A10 epitope, is the major target on Mdm2 for phosphorylation by ATM in vitro. Mutational analysis supports the conclusion that Mdm2 undergoes ATM-dependent phosphorylation on serine 395 in vivo in response to DNA damage. The data further suggests that phosphorylated Mdm2 may be less capable of promoting the nucleo-cytoplasmic shuttling of p53 and its subsequent degradation, thereby enabling p53 accumulation. Our findings imply that activation of p53 by DNA damage is achieved, in part, through attenuation of the p53-inhibitory potential of Mdm2.
Insights
DNA damage activates the p53 tumor suppressor by inhibiting Mdm2, a key regulator. This involves ATM-dependent phosphorylation of Mdm2, reducing its ability to degrade p53 and promoting cell survival.
Area of Science:
- Molecular Biology
- Cellular Biology
- Oncology
Background:
- p53 is a crucial tumor suppressor protein that responds to DNA damage.
- ATM kinase is essential for p53 activation following genotoxic stress.
- Mdm2 is a negative regulator of p53, controlling its stability and activity.
Purpose of the Study:
- To investigate the role of Mdm2 phosphorylation in p53 activation after DNA damage.
- To identify the specific sites and kinases involved in Mdm2 modification.
- To elucidate the mechanism by which Mdm2 regulates p53 following genotoxic insult.
Main Methods:
- Utilized phage display to identify Mdm2 epitopes recognized by the 2A10 antibody.
- Performed in vitro and in vivo phosphorylation studies using ATM kinase.
- Conducted mutational analysis to assess the functional significance of Mdm2 phosphorylation sites.
Main Results:
- Identified two conserved DYS motifs in Mdm2 (residues 258-260 and 393-395) as 2A10 epitopes.
- Demonstrated that ATM kinase phosphorylates Mdm2 on serine 395 in vitro and in vivo.
- Showed that Mdm2 phosphorylation by ATM reduces its interaction with p53, inhibiting p53 degradation.
Conclusions:
- ATM-dependent phosphorylation of Mdm2 on serine 395 is a key event in p53 activation following DNA damage.
- Phosphorylated Mdm2 exhibits reduced ability to shuttle p53 between the nucleus and cytoplasm and promote its degradation.
- This mechanism contributes to the accumulation and activation of p53, thereby attenuating the inhibitory effects of Mdm2 and promoting cellular responses to genotoxic stress.
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