Disrupting DDB2-DNA Interaction by Lapatinib Enhances Chemotherapy Sensitivity
Shih-Chao Hsu1,2, Yu-Hao He1,3,4, Yun-Ju Chen5,6
1Graduate Institute of Biomedical Sciences, China Medical University, Taichung, 404333, Taiwan.
Abstract:
Chemoresistance remains an obstacle to effective cancer therapy across multiple tumor types. Damaged DNA-binding protein 2 (DDB2), a key component of the nucleotide excision repair (NER) pathway, contributes to chemoresistance by enhancing DNA repair and inhibiting apoptosis. Although the role of DDB2 in tumor progression is context-dependent, its upregulation has been associated with poor prognosis in various malignancies. In this study, elevated DDB2 levels found in breast, liver, cholangiocarcinoma, and lung cancers correlated with reduced patient survival. DDB2 confers resistance to chemotherapeutic agents. Through structure-based virtual screening and molecular dynamics simulations, lapatinib, an FDA-approved EGFR/HER2 inhibitor, was identified as a compound capable of disrupting the DDB2/DNA complex, which was confirmed by the cellular thermal shift assay and chromatin fractionation. Mechanistically, lapatinib binds to the DNA-binding region of DDB2, thereby reducing its chromatin association and promoting proteasomal degradation. Co-treatment with lapatinib and doxorubicin exhibited synergistic cytotoxicity in both cancer cell lines and patient-derived organoids. These findings reveal a previously unrecognized role for lapatinib in targeting DNA repair machinery, supporting its repurposing as a chemosensitizing agent. Our study highlights DDB2 as a critical mediator of chemoresistance and proposes disruption of DDB2-dependent DNA repair as a novel strategy for chemosensitization.
Insights
Damaged DNA-binding protein 2 (DDB2) drives chemoresistance by aiding DNA repair. The drug lapatinib disrupts DDB2, resensitizing cancer cells to chemotherapy and improving survival outcomes.
Area of Science:
- Molecular biology
- Cancer research
- Drug discovery
Background:
- Chemoresistance is a major challenge in cancer therapy.
- Damaged DNA-binding protein 2 (DDB2) is implicated in chemoresistance via DNA repair and apoptosis inhibition.
- Upregulation of DDB2 correlates with poor prognosis in several cancers.
Purpose of the Study:
- To investigate the role of DDB2 in chemoresistance.
- To identify novel therapeutic strategies targeting DDB2.
- To evaluate lapatinib as a DDB2 inhibitor and chemosensitizer.
Main Methods:
- Structure-based virtual screening and molecular dynamics simulations to identify DDB2 inhibitors.
- Cellular thermal shift assay and chromatin fractionation to confirm drug-target interaction.
- In vitro and ex vivo studies using cancer cell lines and patient-derived organoids to assess drug efficacy.
Main Results:
- Elevated DDB2 levels in breast, liver, cholangiocarcinoma, and lung cancers correlate with reduced patient survival.
- Lapatinib identified as a disruptor of the DDB2/DNA complex, reducing DDB2 chromatin association and promoting its degradation.
- Co-treatment with lapatinib and doxorubicin showed synergistic cytotoxicity in cancer models.
Conclusions:
- DDB2 is a critical mediator of chemoresistance.
- Lapatinib exhibits a novel mechanism of action by targeting DNA repair machinery.
- Repurposing lapatinib as a chemosensitizing agent offers a new strategy to overcome chemoresistance.
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