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Updated: Jan 24, 2026

Identifying the Effects of BRCA1 Mutations on Homologous Recombination using Cells that Express Endogenous Wild-type BRCA1
Published on: February 17, 2011
Cediranib suppresses homology-directed DNA repair through down-regulation of BRCA1/2 and RAD51
Alanna R Kaplan1,2, Susan E Gueble1,2, Yanfeng Liu1
1Department of Therapeutic Radiology, Yale University School of Medicine, New Haven, CT 06511, USA.
Abstract:
Combining the anti-angiogenic agent cediranib with the poly(ADP-ribose) polymerase (PARP) inhibitor olaparib improves progression-free survival compared to olaparib alone in ovarian cancer patients through an unknown mechanism. PARP inhibitors are used primarily in the treatment of patients with DNA repair-associated (BRCA1/2) mutated cancers because these mutations cause a deficit in homology-directed DNA repair (HDR) that confers sensitivity to these agents. However, the combination of cediranib and olaparib was effective in patients without BRCA1/2 mutations. We report here that cediranib confers sensitivity to olaparib by down-regulating HDR in tumor cells. This occurs partially as a result of cediranib inducing hypoxia, which suppresses expression of the HDR factors BRCA1/2 and RAD51 recombinase (RAD51). However, we also observed that cediranib has a direct effect on HDR independent of its ability to induce tumor hypoxia. This direct effect occurs through platelet-derived growth factor receptor (PDGFR) inhibition, activation of protein phosphatase 2A (PP2A), and E2F transcription factor 4 (E2F4)/RB transcriptional corepressor like 2 (RB2/p130)-mediated repression of BRCA1/2 and RAD51 gene expression. This down-regulation was seen in mouse tumor xenografts but not in mouse bone marrow, providing a therapeutic window for combining cediranib and olaparib in cancer therapy. Our work reveals a treatment strategy by which DNA repair can be manipulated in human tumors to induce synthetic lethality, broadening the potential therapeutic scope of cediranib based on its activity as a DNA repair inhibitor.
Insights
Cediranib enhances olaparib
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Olaparib, a PARP inhibitor, is effective in BRCA1/2-mutated cancers due to impaired homology-directed DNA repair (HDR).
- Combining cediranib (anti-angiogenic) with olaparib improves progression-free survival in ovarian cancer, irrespective of BRCA1/2 mutation status.
- The mechanism by which cediranib enhances olaparib efficacy, particularly in non-BRCA-mutated cancers, remains unclear.
Purpose of the Study:
- To elucidate the mechanism by which cediranib confers sensitivity to olaparib in ovarian cancer.
- To investigate the impact of cediranib on DNA repair pathways, specifically HDR.
- To explore the potential of targeting DNA repair for cancer therapy.
Main Methods:
- In vivo studies using mouse tumor xenografts and bone marrow.
- Analysis of gene expression for HDR factors (BRCA1/2, RAD51).
- Investigation of cediranib's effects on tumor hypoxia, PDGFR, PP2A, and E2F4/RB pathways.
Main Results:
- Cediranib down-regulates HDR in tumor cells, conferring sensitivity to olaparib.
- Cediranib induces tumor hypoxia, suppressing BRCA1/2 and RAD51 expression.
- Cediranib also directly inhibits HDR via PDGFR/PP2A/E2F4-RB signaling, independent of hypoxia.
Conclusions:
- Cediranib enhances olaparib efficacy by down-regulating HDR through both hypoxia-dependent and -independent mechanisms.
- This DNA repair inhibition occurs in tumors but not bone marrow, suggesting a therapeutic window.
- Cediranib's activity as a DNA repair inhibitor broadens its therapeutic potential, enabling synthetic lethality strategies.
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