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Updated: May 21, 2026

Assessment of Global DNA Double-Strand End Resection using BrdU-DNA Labeling coupled with Cell Cycle Discrimination Imaging
Published on: April 28, 2021
[Poly(ADP-ribose) polymerase (PARP) inhibitors in BRCA1/2 cancer therapy]
Katarzyna Kluzek1, Aneta Białkowska, Aleksandra Koczorowska
1Katedra i Zakład Genetyki Molekularnej Komórki, Uniwersytet Mikołaja Kopernika w Toruniu, Collegium Medicum im. Ludwika Rydygiera w Bydgoszczy. kluzek@cm.umk.pl
Abstract:
A majority of currently used anticancer drugs belong to a group of chemical agents that damage DNA. The efficiency of the treatment is limited by effective DNA repair systems functioning in cancer cells. Many chemotherapeutic compounds cause strong systemic toxicity. Therefore, there is still a need for new anticancer agents which are less toxic for nontransformed cells and selectively kill cancer cells. One of the most promising molecular targets in cancer therapy is poly(ADP-ribose) polymerases (PARP). PARP play an essential role in repairing DNA strand breaks. Small molecule inhibitors of these enzymes have been developed and have proved to be extremely toxic for cancer cells that lack the functional BRCA1 and BRCA2 proteins that are involved in homologous recombination, a complex repair mechanism of DNA double strand breaks. Mutations in BRCA1/2 genes are associated with genetically inherited breast and ovarian cancers. Therefore PARP inhibitors may prove to be very effective and selective in the treatment of these cancer types. This review is focused on the function of BRCA1/2 proteins and poly(ADP-ribose) polymerases in DNA repair systems, especially in the homologous recombination process. A short history of the studies that led to synthesis of high specificity small molecule PARP inhibitors is also presented, as well as the results of clinical trials concerning the most effective PARP inhibitors in view of their potential application in oncological treatment, particularly breast cancers.
Insights
PARP inhibitors are promising anticancer agents that target DNA repair mechanisms. They are particularly effective against BRCA1/2 deficient cancers, offering selective toxicity and reduced side effects for breast and ovarian cancer treatment.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- DNA-damaging anticancer drugs face resistance from cancer cell repair systems.
- Current chemotherapies often cause significant systemic toxicity.
- Targeting DNA repair pathways offers a strategy for selective cancer cell killing.
Purpose of the Study:
- To review the role of BRCA1/2 proteins and poly(ADP-ribose) polymerases (PARP) in DNA repair.
- To discuss the development and efficacy of small molecule PARP inhibitors.
- To explore the potential of PARP inhibitors in treating BRCA1/2-associated cancers, especially breast cancer.
Main Methods:
- Literature review of DNA repair mechanisms.
- Analysis of studies on homologous recombination and its role in cancer.
- Examination of clinical trial data for PARP inhibitors.
Main Results:
- PARP enzymes are crucial for repairing DNA strand breaks.
- PARP inhibitors demonstrate high toxicity towards cancer cells with deficient BRCA1/2 proteins.
- BRCA1/2 mutations are linked to inherited breast and ovarian cancers, suggesting PARP inhibitors' selectivity.
Conclusions:
- PARP inhibitors represent a targeted therapy approach for specific cancer types.
- Their efficacy is pronounced in cancers with homologous recombination repair defects, such as those with BRCA1/2 mutations.
- Further clinical application, particularly in breast cancer, shows significant promise.
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