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ROS-Induced DNA Damage Enhances Sensitivity to PARP Inhibition in HSC3 and SCC25 Head and Neck Squamous Cell
1Medical Laboratory Techniques, Vocational School of Health Services, Istanbul Aydin University, Istanbul 34295, Turkey.
Background:
Head and neck squamous cell carcinoma (HNSCC) remains a highly aggressive malignancy with poor clinical outcomes. Although poly(ADP-ribose) polymerase (PARP) inhibitors have shown promising activity in tumors with homologous recombination deficiency, their efficacy in BRCA wild-type HNSCC remains limited. Reactive oxygen species (ROS)-induced DNA damage may increase cellular dependence on DNA repair pathways and thereby enhance sensitivity to PARP inhibition. This study investigated whether ROS-mediated DNA damage could sensitize BRCA wild-type HNSCC cells to the PARP inhibitor olaparib.
Methods:
BRCA wild-type HSC-3 and SCC-25 HNSCC cell lines were exposed to H2O2 to induce oxidative stress. Intracellular ROS levels were quantified using DCFDA assays, DNA double-strand breaks were evaluated by γ-H2AX ELISA, PARP activity was assessed by ELISA, and cell viability was determined using MTT assays. Expression levels of DNA repair genes (PARP1, PARP2, BRCA1, BRCA2, RAD51, and MLH1), checkpoint kinases (ATM, ATR, and CHK1), the homologous recombination regulator FANCD2, and redox defense genes (NQO1, GPX4, and SLC7A11) were analyzed by qRT-PCR. Therapeutic selectivity was assessed using HGF-1 normal human gingival fibroblasts as a normal cell control. Apoptosis was measured through caspase-3/7 activity assays, and drug interactions were evaluated using the Chou-Talalay method.
Results:
H2O2 treatment increased intracellular ROS levels in both cell lines, accompanied by significant induction of DNA damage as demonstrated by elevated γ-H2AX levels. ROS induction markedly enhanced olaparib sensitivity, significantly reducing IC50 values in both HSC-3 and SCC-25 cells. Combined H2O2 and olaparib treatment produced strong synergistic cytotoxicity, suppressed DNA repair, checkpoint kinase, and redox defense gene expression, and increased caspase-3/7 activity compared with control cells. Importantly, the combination demonstrated selective cytotoxicity toward cancer cells, with normal HGF-1 cells retaining significantly higher viability.
Conclusions:
ROS-induced DNA damage significantly enhances the anti-tumor activity of olaparib in BRCA wild-type HNSCC cells through a functional synthetic lethal-like interaction involving the simultaneous collapse of DNA repair capacity, checkpoint activation, and oxidative stress buffering, culminating in apoptosis induction. These findings support the rationale for combining ROS-generating therapies with PARP inhibitors in HNSCC treatment.
Insights
Generating reactive oxygen species (ROS) DNA damage enhances the effectiveness of olaparib in head and neck squamous cell carcinoma (HNSCC) treatment. This combination therapy shows selective toxicity towards cancer cells, supporting its clinical potential.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Head and neck squamous cell carcinoma (HNSCC) is an aggressive cancer with limited treatment options.
- Poly(ADP-ribose) polymerase (PARP) inhibitors are effective in homologous recombination-deficient tumors but show limited efficacy in BRCA wild-type HNSCC.
- Reactive oxygen species (ROS)-induced DNA damage may sensitize cancer cells to PARP inhibitors by increasing dependence on DNA repair pathways.
Purpose of the Study:
- To investigate if ROS-mediated DNA damage can sensitize BRCA wild-type HNSCC cells to the PARP inhibitor olaparib.
- To evaluate the synergistic effects and underlying mechanisms of combining ROS induction with olaparib treatment in HNSCC.
- To assess the therapeutic selectivity of this combination therapy in cancer versus normal cells.
Main Methods:
- BRCA wild-type HNSCC cell lines (HSC-3, SCC-25) were treated with hydrogen peroxide (H2O2) to induce oxidative stress.
- ROS levels, DNA double-strand breaks (γ-H2AX), PARP activity, and cell viability (MTT assays) were quantified.
- Gene expression analysis (qRT-PCR) of DNA repair, checkpoint, and redox defense genes was performed. Apoptosis and drug interactions were assessed.
Main Results:
- H2O2 treatment increased ROS levels and DNA damage (elevated γ-H2AX) in HNSCC cells.
- ROS induction significantly enhanced olaparib sensitivity, reducing IC50 values and demonstrating synergistic cytotoxicity.
- The combination suppressed DNA repair and checkpoint gene expression, increased apoptosis (caspase-3/7 activity), and showed selective toxicity against cancer cells over normal fibroblasts.
Conclusions:
- ROS-induced DNA damage potentiates olaparib's anti-tumor activity in BRCA wild-type HNSCC.
- This occurs via a synthetic lethal-like interaction, collapsing DNA repair, checkpoint activation, and oxidative stress buffering, leading to apoptosis.
- Combining ROS-generating agents with PARP inhibitors is a promising therapeutic strategy for HNSCC.
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