Predictive Gene Signatures Determine Tumor Sensitivity to MDM2 Inhibition

Jo Ishizawa1, Kenji Nakamaru2, Takahiko Seki2

  • 1Section of Molecular Hematology and Therapy, Department of Leukemia, The University of Texas MD Anderson Cancer Center, Houston, Texas.

Cancer Research
|March 2, 2018
PubMed

Insights

New biomarkers predict cancer cell response to MDM2 inhibitors. Gene expression profiling combined with TP53 mutation status improves prediction of tumor sensitivity to MDM2 inhibitors, aiding clinical trial development.

Area of Science:

  • Oncology
  • Molecular Biology
  • Cancer Therapeutics

Background:

  • Early MDM2 inhibitors showed proof-of-concept for p53-induced apoptosis in cancer cells.
  • Tumor sensitivity to MDM2 inhibition varies, necessitating more potent inhibitors and predictive biomarkers.
  • A novel, potent MDM2 inhibitor, DS-3032b, is 10-fold more potent than first-generation nutlin-3a.

Purpose of the Study:

  • To identify predictive biomarkers for tumor sensitivity to the MDM2 inhibitor DS-3032b.
  • To develop gene expression signatures that predict response to MDM2 inhibition.
  • To improve the prediction of antitumor effects of MDM2 inhibitors in various cancer types.

Main Methods:

  • Compared sensitivity to MDM2 inhibition with basal mRNA expression in 240 cancer cell lines to define a 175-gene signature.
  • Validated the 175-gene signature in patient-derived tumor xenografts and ex vivo human acute myeloid leukemia (AML) cells.
  • Developed an AML-specific 1,532-gene signature using random forest analysis on primary AML samples.
  • Combined TP53 mutation status with gene signatures to assess predictive values.

Main Results:

  • TP53 mutations predicted resistance to DS-3032b, with higher allele frequencies correlating with lower sensitivity.
  • Sensitivity to DS-3032b varied significantly in TP53 wild-type tumors.
  • The combination of TP53 mutation status and gene signatures yielded high positive predictive values (81% and 82%).
  • A reduced 50-gene signature from the AML-specific signature maintained high predictive performance.

Conclusions:

  • Gene expression profiling combined with TP53 mutational status effectively predicts antitumor effects of MDM2 inhibitors.
  • The developed predictive models show promise for clinical implementation and patient stratification in MDM2 inhibitor trials.
  • This approach enhances the potential of MDM2 inhibitors as targeted cancer therapies.

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