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Published on: September 20, 2018
cIAP2 represses IKKα/β-mediated activation of MDM2 to prevent p53 degradation
Rosanna Lau1, Min Ying Niu, M A Christine Pratt
1Breast Cancer Research Lab, University of Ottawa Department of Cellular and Molecular Medicine, Ottawa, ON, Canada.
Abstract:
Cellular inhibitor of apoptosis proteins (cIAP1 and cIAP2) function to prevent apoptosis and are often overexpressed in various cancers. However, mutations in cIAP1/2 can activate the alternative NFκB pathway through IκBα-kinase-α (IKKα) and are associated with hematopoetic malignancies. In the current study, we found that knockdown of cIAP2 in human mammary epithelial cells resulted in activation of MDM2 through increased SUMOylation and profound reduction of the pool of MDM2 not phosphorylated at Ser166. cIAP2 siRNA markedly decreased p53 levels, which were rescued by addition of the MDM2 inhibitor, Nutlin3a. An IAP antagonist, which induces cIAP degradation, transiently increased MDM2 mRNA. Simultaneous transfection of siRNA for cIAP2 and IKKα reduced MDM2 protein, while expression of a kinase-dead IKKβ strongly increased non-Ser166 P-MDM2. Inhibition of either IKKα or -β partially rescued p53 levels, while concomitant IKKα/β inhibition fully rescued p53 after cIAP2 knockdown. Surprisingly, IKKα knockdown alone increased SUMO-MDM2, suggesting that in the absence of activation, IKKα can prevent MDM2 SUMOylation. cIAP2 knockdown disrupted the interaction between the MDM2 SUMO ligase, PIAS1 and IKKα. Partial knockdown of cIAP2 cooperated with (V12) H-ras-transfected mammary epithelial cells to enhance colony formation. In summary, our data identify a novel role for cIAP2 in maintaining wild-type p53 levels by preventing both an NFκB-mediated increase and IKKα/-β-dependent transcriptional and post-translational modifications of MDM2. Thus, mutations or reductions in cIAP2 could contribute to cancer promotion, in part, through downregulation of p53.
Insights
Cellular inhibitor of apoptosis proteins (cIAP2) maintain wild-type p53 levels by regulating MDM2. Loss of cIAP2 promotes cancer via p53 downregulation.
Area of Science:
- Oncology
- Molecular Biology
- Cellular Biology
Background:
- Cellular inhibitor of apoptosis proteins (cIAP1 and cIAP2) prevent apoptosis and are often overexpressed in cancers.
- Mutations in cIAP1/2 can activate the NFκB pathway, linked to hematologic malignancies.
Purpose of the Study:
- To investigate the role of cIAP2 in regulating p53 levels and its implications in cancer.
- To elucidate the molecular mechanisms by which cIAP2 influences MDM2 activity and p53 stability.
Main Methods:
- Knockdown of cIAP2 using siRNA in human mammary epithelial cells.
- Utilized MDM2 inhibitors (Nutlin3a), IAP antagonists, and specific kinase inhibitors (IKKα, IKKβ).
- Assessed protein levels, phosphorylation, SUMOylation, and protein interactions (PIAS1, IKKα).
Main Results:
- cIAP2 knockdown increased MDM2 SUMOylation, reduced non-Ser166 phosphorylated MDM2, and decreased p53 levels.
- p53 levels were rescued by MDM2 inhibition and partially/fully by IKKα/β inhibition.
- IKKα knockdown alone increased SUMO-MDM2, indicating a role in preventing MDM2 SUMOylation.
- cIAP2 knockdown disrupted the PIAS1-IKKα interaction.
- Partial cIAP2 knockdown enhanced colony formation in cooperation with H-ras.
Conclusions:
- cIAP2 plays a novel role in maintaining wild-type p53 levels by preventing NFκB-mediated and IKKα/β-dependent modifications of MDM2.
- Reduced cIAP2 levels can contribute to cancer by downregulating p53.
- These findings highlight cIAP2 as a potential target in cancer therapy.
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