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Updated: Mar 11, 2026

Characterizing DNA Repair Processes at Transient and Long-lasting Double-strand DNA Breaks by Immunofluorescence Microscopy
Published on: June 8, 2018
Wwox-Brca1 interaction: role in DNA repair pathway choice
M S Schrock1, B Batar1, J Lee2
1Department of Cancer Biology and Genetics and Comprehensive Cancer Center, The Ohio State University Wexner Medical Center, Columbus, OH, USA.
Abstract:
In this study, loss of expression of the fragile site-encoded Wwox protein was found to contribute to radiation and cisplatin resistance of cells, responses that could be associated with cancer recurrence and poor outcome. WWOX gene deletions occur in a variety of human cancer types, and reduced Wwox protein expression can be detected early during cancer development. We found that Wwox loss is followed by mild chromosome instability in genomes of mouse embryo fibroblast cells from Wwox-knockout mice. Human and mouse cells deficient for Wwox also exhibit significantly enhanced survival of ionizing radiation and bleomycin treatment, agents that induce double-strand breaks (DSBs). Cancer cells that survive radiation recur more rapidly in a xenograft model of irradiated breast cancer cells; Wwox-deficient cells exhibited significantly shorter tumor latencies vs Wwox-expressing cells. This Wwox effect has important consequences in human disease: in a cohort of cancer patients treated with radiation, Wwox deficiency significantly correlated with shorter overall survival times. In examining mechanisms underlying Wwox-dependent survival differences, we found that Wwox-deficient cells exhibit enhanced homology directed repair (HDR) and decreased non-homologous end-joining (NHEJ) repair, suggesting that Wwox contributes to DNA DSB repair pathway choice. Upon silencing of Rad51, a protein critical for HDR, Wwox-deficient cells were resensitized to radiation. We also demonstrated interaction of Wwox with Brca1, a driver of HDR, and show via immunofluorescent detection of repair proteins at ionizing radiation-induced DNA damage foci that Wwox expression suppresses DSB repair at the end-resection step of HDR. We propose a genome caretaker function for WWOX, in which Brca1-Wwox interaction supports NHEJ as the dominant DSB repair pathway in Wwox-sufficient cells. Taken together, the experimental results suggest that reduced Wwox expression, a common occurrence in cancers, dysregulates DSB repair, enhancing efficiency of likely mutagenic repair, and enabling radiation and cisplatin treatment resistance.
Insights
Loss of Wwox protein expression promotes cancer cell resistance to radiation and cisplatin therapy, leading to faster tumor recurrence and poorer patient survival. This occurs due to altered DNA repair pathways, impacting cancer treatment outcomes.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- Reduced Wwox protein expression is observed in various human cancers and linked to poor prognosis.
- WWOX gene deletions and loss of Wwox protein expression are early events in cancer development.
- Wwox deficiency can lead to chromosome instability and resistance to DNA-damaging agents.
Purpose of the Study:
- To investigate the role of Wwox protein in cellular response to DNA damage and cancer treatment.
- To elucidate the mechanisms by which Wwox loss affects DNA double-strand break (DSB) repair pathways.
- To determine the clinical significance of Wwox expression in cancer patient outcomes.
Main Methods:
- Utilized Wwox-knockout mouse embryo fibroblast cells and human cancer cell lines.
- Assessed cell survival following exposure to ionizing radiation and bleomycin.
- Analyzed DNA double-strand break repair pathway choice (homology-directed repair and non-homologous end-joining) using molecular techniques.
- Investigated protein interactions (Wwox with Brca1 and Rad51) and DNA repair foci formation.
Main Results:
- Wwox-deficient cells showed enhanced survival after ionizing radiation and bleomycin treatment.
- Wwox loss led to increased homology-directed repair (HDR) and decreased non-homologous end-joining (NHEJ).
- Silencing Rad51 resensitized Wwox-deficient cells to radiation, and Wwox interacts with Brca1 to suppress HDR.
- Wwox deficiency in cancer patients correlated with shorter overall survival after radiation therapy.
Conclusions:
- Wwox acts as a genome caretaker by promoting NHEJ as the dominant DSB repair pathway.
- Loss of Wwox dysregulates DNA DSB repair, favoring mutagenic repair pathways.
- Reduced Wwox expression contributes to therapeutic resistance and poor outcomes in cancer patients, highlighting WWOX as a potential therapeutic target.
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