4.8 Article

Inhibition of phosphatidylinositol 3-kinase destabilizes Mycn protein and blocks malignant progression in neuroblastoma

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CANCER RESEARCH
卷 66, 期 16, 页码 8139-8146

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AMER ASSOC CANCER RESEARCH
DOI: 10.1158/0008-5472.CAN-05-2769

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  1. NCI NIH HHS [R01 CA102321, R01 CA102321-08, R01 CA102321-05, R01 CA102321-04A1, R01 CA102321-03, R01 CA102321-07, R01 CA102321-06] Funding Source: Medline
  2. NINDS NIH HHS [K02 NS002226-03, K08 NS053530, K08NS053530-01A2, K02 NS002226, K02 NS002226-04, K02 NS002226-02, K02 NS002226-01, K02 NS002226-05] Funding Source: Medline
  3. PHS HHS [R01CAA102321] Funding Source: Medline

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Amplification of MYCN occurs commonly in neuroblastoma. We report that phosphatidylinositol 3-kinase (PI3K) inhibition in murine neuroblastoma (driven by a tyrosine hydroxylase-MYCN transgene) led to decreased tumor mass and decreased levels of Mycn protein without affecting levels of MYCN mRNA. Consistent with these observations, PI3K inhibition in MYCN-amplified human neuroblastoma cell lines resulted in decreased levels of Mycn protein without affecting levels of MYCN mRNA and caused decreased proliferation and increased apoptosis. To clarify the importance of Mycn as a target of broad-spectrum PI3K inhibitors, we transduced wildtype N-myc and N-myc mutants lacking glycogen synthase kinase 3 beta phosphorylation sites into human neuroblastoma cells with no endogenous expression of myc. In contrast to wild-type N-myc, the phosphorylation-defective mutant proteins were stabilized and were resistant to the antiproliferative effects of PI3K inhibition. Our results show the importance of Mycn as a therapeutic target in established tumors in vivo, offer a mechanistic rationale to test PI3K inhibitors in MYCN-amplified neuroblastoma, and represent a therapeutic approach applicable to a broad range of cancers in which transcription factors are stabilized through a PI3K-dependent mechanism.

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