Systems medicine dissection of chr1q-amp reveals a novel PBX1-FOXM1 axis for targeted therapy in multiple myeloma

Nikolaos Trasanidis1, Alexia Katsarou1,2, Kanagaraju Ponnusamy1

  • 1Hugh and Josseline Langmuir Centre for Myeloma Research, Centre for Haematology, Department of Immunology and Inflammation, Imperial College London, London, United Kingdom.

Blood
|January 11, 2022
PubMed

Insights

Genetic amplification of chromosome 1q (chr1q-amp) drives high-risk multiple myeloma (MM). Targeting the PBX1-FOXM1 axis with novel inhibitors shows promise for treating chr1q-amp cancers.

Area of Science:

  • Cancer genomics
  • Systems medicine
  • Chromatin biology

Background:

  • Copy number aberrations (CNAs) impact cancer therapy development.
  • Chromosome 1q amplification (chr1q-amp) is linked to poor prognosis in multiple myeloma (MM).
  • The molecular drivers of chr1q-amp MM remain unclear.

Purpose of the Study:

  • To map clinical risk across chr1q in MM using multi-omics data and 3D chromatin structure.
  • To identify genes associated with adverse prognosis in chr1q-amp MM.
  • To investigate the role of PBX1 and its therapeutic targeting.

Main Methods:

  • Integration of multi-omics data from MM patients.
  • Analysis of 3D chromatin structure and genetic variables.
  • Identification of adverse prognosis genes and oncogenic pathways.
  • Pharmacological inhibition of the PBX1-FOXM1 axis.

Main Results:

  • Identified 103 adverse prognosis genes in chr1q-amp MM.
  • PBX1 is ectopically expressed and drives oncogenic pathways via FOXM1.
  • PBX1 and FOXM1 activate a proliferative gene signature predicting poor outcomes.
  • Targeting the PBX1-FOXM1 axis shows selective toxicity in chr1q-amp cancer cells.

Conclusions:

  • A systems medicine approach successfully linked CNAs to clinical phenotypes in MM.
  • PBX1 is a key oncogenic driver in chr1q-amp MM.
  • Targeting the PBX1-FOXM1 axis represents a novel therapeutic strategy for chr1q-amp MM and other cancers.

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