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Updated: May 2, 2026

Visualizing and Quantifying Endonuclease-Based Site-Specific DNA Damage
Published on: August 21, 2021
RAS transformation requires CUX1-dependent repair of oxidative DNA damage
Zubaidah M Ramdzan1, Charles Vadnais2, Ranjana Pal1
1Goodman Cancer Centre, McGill University, Montreal, Quebec, Canada.
Abstract:
The Cut homeobox 1 (CUX1) gene is a target of loss-of-heterozygosity in many cancers, yet elevated CUX1 expression is frequently observed and is associated with shorter disease-free survival. The dual role of CUX1 in cancer is illustrated by the fact that most cell lines with CUX1 LOH display amplification of the remaining allele, suggesting that decreased CUX1 expression facilitates tumor development while increased CUX1 expression is needed in tumorigenic cells. Indeed, CUX1 was found in a genome-wide RNAi screen to identify synthetic lethal interactions with oncogenic RAS. Here we show that CUX1 functions in base excision repair as an ancillary factor for the 8-oxoG-DNA glycosylase, OGG1. Single cell gel electrophoresis (comet assay) reveals that Cux1⁺/⁻ MEFs are haploinsufficient for the repair of oxidative DNA damage, whereas elevated CUX1 levels accelerate DNA repair. In vitro base excision repair assays with purified components demonstrate that CUX1 directly stimulates OGG1's enzymatic activity. Elevated reactive oxygen species (ROS) levels in cells with sustained RAS pathway activation can cause cellular senescence. We show that elevated expression of either CUX1 or OGG1 prevents RAS-induced senescence in primary cells, and that CUX1 knockdown is synthetic lethal with oncogenic RAS in human cancer cells. Elevated CUX1 expression in a transgenic mouse model enables the emergence of mammary tumors with spontaneous activating Kras mutations. We confirmed cooperation between Kras(G12V) and CUX1 in a lung tumor model. Cancer cells can overcome the antiproliferative effects of excessive DNA damage by inactivating a DNA damage response pathway such as ATM or p53 signaling. Our findings reveal an alternate mechanism to allow sustained proliferation in RAS-transformed cells through increased DNA base excision repair capability. The heightened dependency of RAS-transformed cells on base excision repair may provide a therapeutic window that could be exploited with drugs that specifically target this pathway.
Insights
The Cut homeobox 1 (CUX1) gene aids in DNA repair, particularly with OGG1, to prevent RAS-induced senescence. CUX1
Area of Science:
- Molecular Biology
- Cancer Research
- DNA Repair
Background:
- The Cut homeobox 1 (CUX1) gene exhibits a dual role in cancer, with loss-of-heterozygosity and elevated expression linked to poor outcomes.
- Oncogenic RAS pathway activation increases reactive oxygen species (ROS), leading to DNA damage and potentially cellular senescence.
- CUX1 was previously identified in screens for synthetic lethal interactions with oncogenic RAS.
Purpose of the Study:
- To elucidate the functional role of CUX1 in DNA repair mechanisms.
- To investigate the interplay between CUX1, OGG1, and RAS-mediated cellular responses.
- To explore the therapeutic potential of targeting CUX1 in RAS-driven cancers.
Main Methods:
- Utilized single cell gel electrophoresis (comet assay) to assess DNA repair efficiency in Cux1 haploinsufficient cells.
- Performed in vitro base excision repair assays with purified CUX1 and OGG1.
- Employed transgenic mouse models and human cancer cell lines to study CUX1's role in RAS-induced senescence and tumorigenesis.
Main Results:
- CUX1 functions as an ancillary factor for OGG1 in base excision repair, accelerating the repair of oxidative DNA damage.
- Elevated CUX1 or OGG1 expression prevents RAS-induced senescence in primary cells.
- CUX1 knockdown demonstrated synthetic lethality with oncogenic RAS in human cancer cells.
- CUX1 cooperates with oncogenic Kras in mammary and lung tumor development in mice.
Conclusions:
- CUX1 enhances DNA base excision repair, providing a mechanism for RAS-transformed cells to overcome DNA damage-induced proliferation arrest.
- Targeting the base excision repair pathway, influenced by CUX1, presents a potential therapeutic strategy for RAS-driven cancers.
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