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Published on: June 26, 2020
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.
Abstract:
The Mdm2 oncoprotein promotes p53 ubiquitination and destruction. Yet, exact molecular mechanisms of Mdm2 destruction itself, under DNA damaging conditions, remain unclear. Recently, we identified SCFβ-TRCP as a novel E3 ligase that targets Mdm2 for ubiquitination and destruction in a Casein Kinase Iδ (CKIδ)-dependent manner. However, it remains elusive how the β-TRCP/CKIδ/Mdm2 signaling axis is regulated by DNA damage signals to govern p53 activity. Consistent with previous studies, we found that inactivation of the Ataxia Telangiectasia Mutated (ATM) kinase, in turn, impaired DNA damage-induced Mdm2 destruction. Although phosphorylation of Mdm2 at Ser395 (an ATM phosphorylation site) facilitated Mdm2 interaction with β-TRCP, Ser395A-Mdm2 was degraded non-distinguishably from WT-Mdm2 by SCFβ-TRCP upon DNA damaging treatments. This indicates that in addition to phosphorylating Mdm2 at Ser395, ATM may govern Mdm2 stability through other unknown mechanisms. We further demonstrated that DNA damage-induced activation of ATM directly phosphorylated CKIδ at two well-conserved S/TQ sites, which promotes CKIδ nuclear localization to increase CKIδ-mediated phosphorylation of Mdm2, thereby facilitating subsequent Mdm2 ubiquitination by SCFβ-TRCP. Our studies provide a molecular mechanism of how ATM could govern DNA damage-induced destruction of Mdm2 in part by phosphorylating both Mdm2 and CKIδ to modulate SCFβ-TRCP-mediated Mdm2 ubiquitination. Given the pivotal role of Mdm2 in the negative regulation of p53, this work will also provide a rationale for developing CKIδ or ATM agonists as anti-cancer agents.
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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