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Updated: Dec 7, 2025

Assessment of Global DNA Double-Strand End Resection using BrdU-DNA Labeling coupled with Cell Cycle Discrimination Imaging
Published on: April 28, 2021
Exploiting DNA repair defects in triple negative breast cancer to improve cell killing
Kevin J Lee1, Elise Mann2, Griffin Wright1
1College of Medicine, Mitchell Cancer Institute, University of South Alabama, Mobile, AL, USA.
Background:
The lack of molecular targets for triple negative breast cancer (TNBC) has limited treatment options and reduced survivorship. Identifying new molecular targets may help improve patient survival and decrease recurrence and metastasis. As DNA repair defects are prevalent in breast cancer, we evaluated the expression and repair capacities of DNA repair proteins in preclinical models.
Methods:
DNA repair capacity was analyzed in four TNBC cell lines, MDA-MB-157 (MDA-157), MDA-MB-231 (MDA-231), MDA-MB-468 (MDA-468), and HCC1806, using fluorescence multiplex host cell reactivation (FM-HCR) assays. Expression of DNA repair genes was analyzed with RNA-seq, and protein expression was evaluated with immunoblot. Responses to the combination of DNA damage response inhibitors and primary chemotherapy drugs doxorubicin or carboplatin were evaluated in the cell lines.
Results:
Defects in base excision and nucleotide excision repair were observed in preclinical TNBC models. Gene expression analysis showed a limited correlation between these defects. Loss in protein expression was a better indicator of these DNA repair defects. Over-expression of PARP1, XRCC1, RPA, DDB1, and ERCC1 was observed in TNBC preclinical models, and likely contributed to altered sensitivity to chemotherapy and DNA damage response (DDR) inhibitors. Improved cell killing was achieved when primary therapy was combined with DDR inhibitors for ATM, ATR, or CHK1.
Conclusion:
Base excision and nucleotide excision repair pathways may offer new molecular targets for TNBC. The functional status of DNA repair pathways should be considered when evaluating new therapies and may improve the targeting for primary and combination therapies with DDR inhibitors.
Insights
Triple-negative breast cancer (TNBC) shows DNA repair defects. Targeting base excision and nucleotide excision repair pathways, along with DNA damage response inhibitors, may improve TNBC treatment outcomes.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Triple-negative breast cancer (TNBC) lacks targeted therapies, leading to poor outcomes.
- DNA repair defects are common in breast cancer, suggesting potential therapeutic targets.
- Evaluating DNA repair protein expression and function is crucial for TNBC treatment strategies.
Purpose of the Study:
- To investigate DNA repair capacities and gene/protein expression in preclinical TNBC models.
- To identify potential molecular targets for improving TNBC treatment.
- To assess the efficacy of combining DNA damage response (DDR) inhibitors with chemotherapy.
Main Methods:
- Utilized fluorescence multiplex host cell reactivation (FM-HCR) assays to analyze DNA repair capacity in four TNBC cell lines.
- Performed RNA-sequencing for gene expression analysis and immunoblotting for protein expression.
- Assessed cell line responses to chemotherapy (doxorubicin, carboplatin) combined with DDR inhibitors (ATM, ATR, CHK1).
Main Results:
- Identified defects in base excision and nucleotide excision repair pathways in TNBC models.
- Observed that protein expression loss, not gene expression, correlated with DNA repair defects.
- Found overexpression of PARP1, XRCC1, RPA, DDB1, and ERCC1, impacting chemotherapy sensitivity.
- Demonstrated enhanced cancer cell killing by combining chemotherapy with DDR inhibitors.
Conclusions:
- Base excision and nucleotide excision repair pathways represent promising molecular targets for TNBC.
- The functional status of DNA repair pathways is critical for optimizing TNBC therapies.
- Combination therapies involving DDR inhibitors show potential for improved treatment efficacy in TNBC.
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