DNA damage-induced activation of ATM promotes β-TRCP-mediated Mdm2 ubiquitination and destruction

Zhiwei Wang1, Hiroyuki Inuzuka, Jiateng Zhong

  • 1Department of Pathology, Beth Israel Deaconess Medical Center, Harvard Medical School, Boston, MA, USA.

Oncotarget
|September 15, 2012
PubMed

Insights

DNA damage triggers Mdm2 destruction via ATM-dependent CKIδ phosphorylation, regulating p53 stability. This uncovers a mechanism for targeting CKIδ or ATM as anti-cancer agents.

Area of Science:

  • Cellular and Molecular Biology
  • Cancer Research
  • DNA Damage Response

Background:

  • Mdm2 oncoprotein targets p53 for destruction.
  • Mechanisms of Mdm2 destruction under DNA damage are unclear.
  • SCFβ-TRCP and CKIδ were identified as key players in Mdm2 ubiquitination.

Purpose of the Study:

  • Elucidate how the β-TRCP/CKIδ/Mdm2 axis is regulated by DNA damage signals.
  • Investigate the role of ATM kinase in DNA damage-induced Mdm2 destruction.
  • Provide a rationale for developing CKIδ or ATM agonists as anti-cancer agents.

Main Methods:

  • Investigated Mdm2 ubiquitination and destruction.
  • Utilized ATM kinase inactivation and phosphorylation site mutants (Ser395A-Mdm2).
  • Assessed CKIδ nuclear localization and phosphorylation of Mdm2.

Main Results:

  • ATM kinase inactivation impaired DNA damage-induced Mdm2 destruction.
  • ATM directly phosphorylates CKIδ at S/TQ sites, promoting its nuclear localization.
  • CKIδ phosphorylation of Mdm2 facilitates SCFβ-TRCP-mediated ubiquitination and destruction.

Conclusions:

  • ATM governs DNA damage-induced Mdm2 destruction by phosphorylating both Mdm2 and CKIδ.
  • This pathway modulates SCFβ-TRCP-mediated Mdm2 ubiquitination.
  • Targeting CKIδ or ATM may offer novel anti-cancer therapeutic strategies.

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