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Recombinant α- β- and γ-Synucleins Stimulate Protein Phosphatase 2A Catalytic Subunit Activity in Cell Free Assays
Published on: August 13, 2017
The protein phosphatase 2A-B56α complex regulates N-Myc degradation in neuroblastoma
Brian D Tran1, Irene Peris2, Ethan Wurman2
1Department of Pharmacology, University of Michigan, Ann Arbor, Michigan, USA; Rogel Cancer Center, University of Michigan, Ann Arbor, Michigan, USA.
Abstract:
High-risk neuroblastoma is one of the most common and deadliest pediatric solid tumors. Proliferation, differentiation, and treatment resistance have been linked to the amplification of MYCN. Although N-Myc has proven to be a difficult therapeutic target, our group and others have previously demonstrated that a small-molecule targeting PP2A, DT-061, drives c-Myc degradation in MYC-driven cancers. This results from its ability to bias PP2A toward heterotrimers that contain the B56α regulatory subunit, which dephosphorylates the S62 c-Myc residue, affecting protein stability and driving its proteasomal degradation. Interestingly, despite a high degree of sequence homology in the phosphodegron of c-Myc and N-Myc, the role of PP2A-B56α in regulating the analogous S62 residue on N-Myc is unknown. Here, we show how N-Myc protein expression is significantly reduced after PP2A reactivation in neuroblastoma cell lines. Treatment with DT-061 combined with its inactive competitive antagonist, DT-766, and the proteasome inhibitor, MG-132, reversed this effect on the loss of N-Myc protein expression, suggesting that PP2A-B56α modulation affects N-Myc stability via the proteasomal degradation pathway. A loss in cell viability and inhibition of the colony formation potential of neuroblastoma cells accompanied this loss in N-Myc expression. Conversely, these effects were abrogated when the N-Myc S62 phosphosite was mutated. In a xenograft model, we observed tumor growth inhibition upon DT-061 treatment, along with a reduction in N-Myc protein expression in vivo. Combined, these results highlight the importance of the PP2A tumor suppressor in regulating MYCN oncogenic signaling and open new potential treatment regimens for high-risk neuroblastoma patients.
Insights
Researchers found that reactivating PP2A reduces N-Myc protein in neuroblastoma, offering a new therapeutic strategy for high-risk neuroblastoma by targeting MYCN oncogenic signaling.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- High-risk neuroblastoma is a deadly pediatric cancer.
- MYCN amplification drives tumor progression and treatment resistance.
- N-Myc is a challenging therapeutic target in neuroblastoma.
Purpose of the Study:
- To investigate the role of PP2A-B56α in regulating N-Myc protein stability.
- To evaluate the therapeutic potential of PP2A reactivation in neuroblastoma.
Main Methods:
- Treatment of neuroblastoma cell lines with PP2A-targeting small molecule DT-061.
- Assessment of N-Myc protein levels, cell viability, and colony formation.
- In vivo studies using a neuroblastoma xenograft model.
Main Results:
- PP2A reactivation significantly reduced N-Myc protein expression in neuroblastoma cells.
- DT-061 treatment led to N-Myc proteasomal degradation and decreased cell viability.
- Tumor growth was inhibited in a xenograft model with DT-061 treatment.
Conclusions:
- PP2A-B56α modulation effectively targets MYCN oncogenic signaling in neuroblastoma.
- Reactivating PP2A represents a promising therapeutic strategy for high-risk neuroblastoma.
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