Prognosis, Biology, and Targeting of TP53 Dysregulation in Multiple Myeloma

Erin Flynt1, Kamlesh Bisht1, Vinidhra Sridharan1

  • 1Celgene Corporation, Summit, NJ 07901, USA.

Cells
|January 30, 2020
PubMed

Insights

TP53 gene alterations are key in multiple myeloma (MM) high-risk disease. This review explores TP53 dysregulation in MM and proposes a novel approach to find new therapeutic targets for this challenging cancer.

Area of Science:

  • Hematological oncology
  • Cancer genetics
  • Tumor suppressor gene function

Background:

  • Multiple myeloma (MM) is a significant hematological malignancy.
  • TP53 tumor suppressor gene dysregulation is implicated in MM pathogenesis.
  • TP53 alterations occur in ~18% of newly-diagnosed MM patients across three distinct subsets.

Purpose of the Study:

  • To review TP53 dysregulation in cancer and MM.
  • To analyze the three TP53 dysregulation subsets in MM.
  • To propose a novel therapeutic strategy for TP53-dysregulated MM.

Main Methods:

  • Literature review of TP53 dysregulation in cancer and MM.
  • Analysis of existing clinical and genomics data.
  • Proposal of a reverse translational research approach.

Main Results:

  • TP53 dysregulation in MM includes deletion of chromosome 17p (del17p), monoallelic mutations, and biallelic inactivation.
  • Del17p is an established high-risk feature, while mutations and biallelic inactivation are under investigation for staging.
  • Current targeted therapies for TP53-dysregulated cancers have shown limited success.

Conclusions:

  • TP53 dysregulation represents a complex high-risk factor in MM.
  • A reverse translational approach may uncover novel therapeutic targets and disease drivers.
  • Addressing unmet medical needs in TP53-dysregulated MM requires innovative strategies.

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