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Published on: January 31, 2018
Curcumin suppresses multiple DNA damage response pathways and has potency as a sensitizer to PARP inhibitor
Hideaki Ogiwara1, Ayako Ui, Bunsyo Shiotani
1Division of Genome Biology, National Cancer Center Research Institute, Tokyo 104-0045, Japan.
Abstract:
Inhibitors of poly(ADP-ribose) polymerase (PARP) are promising anticancer drugs, particularly for the treatment of tumors deficient in the DNA damage response (DDR). However, it is challenging to design effective therapeutic strategies for use of these compounds against cancers without DDR deficiencies. In this context, combination therapies in which PARP inhibitors are used alongside DDR inhibitors have elicited a great deal of interest. Curcumin, a component of turmeric (Curcuma longa), has been tested in clinical studies for its chemosensitizing potential; however, the mechanisms of chemosensitization by curcumin have not been fully elucidated. This study demonstrates that curcumin suppresses three major DDR pathways: non-homologous end joining (NHEJ), homologous recombination (HR) and the DNA damage checkpoint. Curcumin suppresses the histone acetylation at DNA double-strand break (DSB) sites by inhibiting histone acetyltransferase activity, thereby reducing recruitment of the key NHEJ factor KU70/KU80 to DSB sites. Curcumin also suppresses HR by reducing expression of the BRCA1 gene, which regulates HR, by impairing histone acetylation at the BRCA1 promoter. Curcumin also inhibits ataxia telangiectasia and Rad3-related protein (ATR) kinase (IC50 in vitro = 493 nM), resulting in impaired activation of ATR-CHK1 signaling, which is necessary for HR and the DNA damage checkpoint pathway. Thus, curcumin suppresses three DDR pathways by inhibiting histone acetyltransferases and ATR. Concordantly, curcumin sensitizes cancer cells to PARP inhibitors by enhancing apoptosis and mitotic catastrophe via inhibition of both the DNA damage checkpoint and DSB repair. Our results indicate that curcumin is a promising sensitizer for PARP inhibitor-based therapy.
Insights
Curcumin, a turmeric component, enhances PARP inhibitor effectiveness by suppressing DNA damage repair pathways. This natural compound sensitizes cancer cells, improving apoptosis and mitotic catastrophe for better therapeutic outcomes.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Poly(ADP-ribose) polymerase (PARP) inhibitors show promise for cancers with DNA damage response (DDR) deficiencies.
- Developing PARP inhibitor strategies for cancers lacking DDR deficiencies remains a challenge.
- Combination therapies involving PARP and DDR inhibitors are of significant interest.
Purpose of the Study:
- To elucidate the mechanisms by which curcumin, a turmeric component, sensitizes cancer cells to PARP inhibitors.
- To investigate curcumin's effects on major DNA damage response (DDR) pathways.
Main Methods:
- Assessed curcumin's impact on non-homologous end joining (NHEJ), homologous recombination (HR), and DNA damage checkpoint pathways.
- Investigated curcumin's inhibition of histone acetyltransferase activity and ATR kinase.
- Evaluated curcumin's effect on BRCA1 gene expression and ATR-CHK1 signaling.
Main Results:
- Curcumin suppresses NHEJ by inhibiting histone acetylation at DNA double-strand break (DSB) sites, reducing KU70/KU80 recruitment.
- Curcumin inhibits HR by decreasing BRCA1 gene expression via impaired histone acetylation at its promoter.
- Curcumin inhibits ATR kinase, disrupting ATR-CHK1 signaling essential for HR and the DNA damage checkpoint.
Conclusions:
- Curcumin suppresses three key DDR pathways: NHEJ, HR, and the DNA damage checkpoint, by inhibiting histone acetyltransferases and ATR kinase.
- Curcumin sensitizes cancer cells to PARP inhibitors, enhancing apoptosis and mitotic catastrophe.
- Curcumin is a potential sensitizer for PARP inhibitor-based cancer therapy.
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