ATM-dependent phosphorylation of Mdm2 on serine 395: role in p53 activation by DNA damage

R Maya1, M Balass, S T Kim

  • 1Department of Molecular Cell Biology, Weizmann Institute of Science, Rehovot 76100, Israel.

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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