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Updated: May 25, 2026

Genetic Studies of Human DNA Repair Proteins Using Yeast as a Model System
Published on: March 18, 2010
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.
Abstract:
MYC-induced DNA damage is exacerbated in WRN-deficient cells, leading to replication stress and accelerated cellular senescence. To determine whether WRN deficiency impairs MYC-driven tumor development, we used both xenograft and autochthonous tumor models. Conditional silencing of WRN expression in c-MYC overexpressing non-small cell lung cancer xenografts impaired both tumor establishment and tumor growth. This inhibitory effect of WRN knockdown was accompanied by increased DNA damage, decreased proliferation, and tumor necrosis. In the Eμ-Myc mouse model of B-cell lymphoma, a germline mutation in the helicase domain of Wrn (Wrn(Δhel/Δhel)) resulted in a significant delay in emergence of lethal lymphomas, extending tumor-free survival by more than 30%. Analysis of preneoplastic B cells from Eμ-Myc Wrn mutant mice revealed increased DNA damage, elevation of senescence markers, and decreased proliferation in comparison with cells from age-matched Eμ-Myc mice. Immunohistochemical and global gene expression analysis of overt Eμ-Myc Wrn(Δhel/Δhel) lymphomas showed a marked increase in expression of the CDK inhibitor, p16(Ink4a), as well as elevation of TAp63, a known mediator of senescence. Collectively, these studies show that in the context of Myc-associated tumorigenesis, loss of Wrn amplifies the DNA damage response, both in preneoplastic and neoplastic tissue, engaging activation of tumor suppressor pathways. This leads to inhibition of tumor growth and prolonged tumor-free survival. Targeting WRN or its enzymatic function could prove to be an effective strategy in the treatment of MYC-associated cancers.
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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