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.

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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