Collaboration of MYC and RUNX2 in lymphoma simulates T-cell receptor signaling and attenuates p53 pathway activity

Jodie Hay1, Kathryn Gilroy1, Camille Huser1

  • 1Molecular Oncology Laboratory, Centre for Virus Research, Institute of Infection, Immunity, and Inflammation, University of Glasgow, Glasgow, United Kingdom.

Insights

Overexpressed MYC and RUNX oncogenes drive lymphoma without p53 mutation by inhibiting cell death pathways. This suggests novel therapeutic targets for cancer, focusing on p53 regulators like SMYD2.

Area of Science:

  • Oncology
  • Molecular Biology
  • Genetics

Background:

  • MYC and RUNX oncogenes can trigger p53 responses, but cooperate with p53 deficiency in vivo.
  • Together, MYC and RUNX drive rapid lymphoma development without p53 mutation.

Purpose of the Study:

  • Investigate the mechanism by which RUNX2/MYC co-expression drives lymphoma despite intact p53.
  • Analyze the distinct transcriptional contributions of MYC and RUNX and their impact on cellular pathways.

Main Methods:

  • Transcriptomic analysis of premalignant thymus from RUNX2/MYC transgenic mice.
  • Differential enrichment analysis of binding sites and gene ontology.
  • Pathway analysis and in silico identification of key genes.

Main Results:

  • MYC and RUNX co-expression activates proliferation pathways (MYC, CD3, CD28) while inhibiting cell death.
  • TP53 mRNA and protein are upregulated, but downstream apoptosis targets remain unaffected.
  • Genes regulating p53, including SMYD2, SET, and PRMT5, are upregulated; SMYD2 blocks senescence.

Conclusions:

  • RUNX2/MYC-driven lymphoma occurs independently of p53 mutation by overriding p53's tumor suppressor functions.
  • Sustained proliferation and survival are mediated by specific gene targets like CD30 and Cish.
  • SMYD2 emerges as a potential early player in blocking tumor suppressive mechanisms like senescence.

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