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Detection of DNA Breaks in Dividing Human Cells by Neutral Comet Assay
Published on: August 23, 2024
The Forkhead Box M1 protein regulates BRIP1 expression and DNA damage repair in epirubicin treatment
L J Monteiro1, P Khongkow, M Kongsema
1Department of Surgery and Cancer, Imperial College London, Hammersmith Hospital Campus, London, UK.
Abstract:
FOXM1 is implicated in genotoxic drug resistance but its role and mechanism of action remain unclear. Here, we establish that γH2AX foci, indicative of DNA double-strand breaks (DSBs), accumulate in a time-dependent manner in the drug-sensitive MCF-7 cells but not in the resistant counterparts in response to epirubicin. We find that FOXM1 expression is associated with epirubicin sensitivity and DSB repair. Ectopic expression of FOXM1 can increase cell viability and abrogate DSBs sustained by MCF-7 cells following epirubicin, owing to an enhancement in repair efficiency. Conversely, alkaline comet and γH2AX foci formation assays show that Foxm1-null cells are hypersensitive to DNA damage, epirubicin and γ-irradiation. Furthermore, we find that FOXM1 is required for DNA repair by homologous recombination (HR) but not non-homologous end joining (NHEJ), using HeLa cell lines harbouring an integrated direct repeat green fluorescent protein reporter for DSB repair. We also identify BRIP1 as a direct transcription target of FOXM1 by promoter analysis and chromatin-immunoprecipitation assay. In agreement, depletion of FOXM1 expression by small interfering RNA downregulates BRIP1 expression at the protein and mRNA levels in MCF-7 and the epirubicin-resistant MCF-7 Epi(R) cells. Remarkably, the requirement for FOXM1 for DSB repair can be circumvented by reintroduction of BRIP1, suggesting that BRIP1 is an important target of FOXM1 in DSB repair. Indeed, like FOXM1, BRIP1 is needed for HR. These data suggest that FOXM1 regulates BRIP1 expression to modulate epirubicin-induced DNA damage repair and drug resistance.
Insights
FOXM1 enhances DNA repair and drug resistance by regulating BRIP1 expression, promoting homologous recombination repair of double-strand breaks induced by epirubicin.
Area of Science:
- Molecular Biology
- Cancer Research
- Genetics
Background:
- FOXM1's role in genotoxic drug resistance is unclear.
- DNA double-strand breaks (DSBs) are critical in drug response.
Purpose of the Study:
- To elucidate the mechanism of FOXM1 in epirubicin resistance and DNA damage repair.
- To identify FOXM1 targets involved in homologous recombination (HR).
Main Methods:
- γH2AX foci and alkaline comet assays to assess DSBs.
- Ectopic expression and siRNA-mediated depletion of FOXM1.
- Reporter assays for DNA repair pathway analysis (HR and NHEJ).
- Promoter analysis and ChIP assays to identify FOXM1 targets.
Main Results:
- FOXM1 expression correlates with epirubicin sensitivity and efficient DSB repair.
- FOXM1 enhances cell viability and abrogates DSBs by promoting HR.
- FOXM1 directly targets and upregulates BRIP1 expression.
- BRIP1 is essential for HR and can rescue FOXM1 deficiency in DSB repair.
Conclusions:
- FOXM1 is crucial for DNA double-strand break repair via homologous recombination.
- FOXM1 regulates BRIP1 expression, which is critical for its role in DNA repair and epirubicin resistance.
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