MYC-driven tumorigenesis is inhibited by WRN syndrome gene deficiency

Russell Moser1, Masafumi Toyoshima, Kristin Robinson

  • 1Division of Human Biology, Fred Hutchinson Cancer Research Center, Seattle, WA 98109, USA.

Insights

Loss of WRN protein function amplifies DNA damage in MYC-driven cancers, activating tumor suppressor pathways. This inhibits tumor growth and prolongs survival, suggesting WRN as a therapeutic target for MYC-associated cancers.

Area of Science:

  • Oncology
  • Molecular Biology
  • Genetics

Background:

  • MYC oncogene drives tumorigenesis, often leading to DNA damage and replication stress.
  • Werner syndrome protein (WRN) is crucial for DNA repair and genome stability.
  • WRN deficiency exacerbates MYC-induced DNA damage, promoting cellular senescence.

Purpose of the Study:

  • To investigate the role of WRN deficiency in MYC-driven tumor development.
  • To assess the impact of WRN loss on tumor initiation, growth, and progression.
  • To explore WRN as a potential therapeutic target in MYC-associated cancers.

Main Methods:

  • Utilized xenograft and autochthonous tumor models in mice.
  • Conditional silencing of WRN expression in c-MYC overexpressing non-small cell lung cancer cells.
  • Germline mutation in the helicase domain of Wrn (Wrn(Δhel/Δhel)) in the Eμ-Myc mouse model of B-cell lymphoma.
  • Analysis of DNA damage, proliferation, senescence markers (p16Ink4a, TAp63), and gene expression.

Main Results:

  • WRN deficiency impaired tumor establishment and growth in lung cancer xenografts, accompanied by increased DNA damage and necrosis.
  • Wrn(Δhel/Δhel) mutation significantly delayed lymphoma emergence in Eμ-Myc mice, extending tumor-free survival.
  • Preneoplastic and neoplastic cells with WRN deficiency showed elevated DNA damage, senescence markers, and reduced proliferation.

Conclusions:

  • Loss of WRN function amplifies the DNA damage response in MYC-driven tumorigenesis.
  • WRN deficiency engages tumor suppressor pathways, inhibiting tumor growth and prolonging survival.
  • Targeting WRN presents a potential therapeutic strategy for MYC-associated cancers.

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