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Ku-DNA binding inhibitors modulate the DNA damage response in response to DNA double-strand breaks
Pamela L Mendoza-Munoz1, Navnath S Gavande2,3, Pamela S VanderVere-Carozza1
1Department of Medicine, Indiana University School of Medicine, Indianapolis, IN 46202, USA.
Abstract:
The DNA-dependent protein kinase (DNA-PK) plays a critical role in the DNA damage response (DDR) and non-homologous end joining (NHEJ) double-strand break (DSB) repair pathways. Consequently, DNA-PK is a validated therapeutic target for cancer treatment in certain DNA repair-deficient cancers and in combination with ionizing radiation (IR). We have previously reported the discovery and development of a novel class of DNA-PK inhibitors with a unique mechanism of action, blocking the Ku 70/80 heterodimer interaction with DNA. These Ku-DNA binding inhibitors (Ku-DBi's) display nanomolar activity in vitro, inhibit cellular DNA-PK, NHEJ-catalyzed DSB repair and sensitize non-small cell lung cancer (NSCLC) cells to DSB-inducing agents. In this study, we demonstrate that chemical inhibition of the Ku-DNA interaction potentiates the cellular effects of bleomycin and IR via p53 phosphorylation through the activation of the ATM pathway. This response is concomitant with a reduction of DNA-PK catalytic subunit (DNA-PKcs) autophosphorylation at S2056 and a time-dependent increase in H2AX phosphorylation at S139. These results are consistent with Ku-DBi's abrogating DNA-PKcs autophosphorylation to impact DSB repair and DDR signaling through a novel mechanism of action, and thus represent a promising anticancer therapeutic strategy in combination with DNA DSB-inducing agents.
Insights
Novel DNA-PK inhibitors block Ku-DNA binding, enhancing cancer therapy. These Ku-DNA binding inhibitors (Ku-DBi
Area of Science:
- Molecular Biology
- Cancer Therapeutics
- DNA Repair Mechanisms
Background:
- DNA-dependent protein kinase (DNA-PK) is crucial for DNA damage response (DDR) and double-strand break (DSB) repair via non-homologous end joining (NHEJ).
- DNA-PK is a therapeutic target for cancer, particularly in DNA repair-deficient cancers and when combined with ionizing radiation (IR).
- Previous work identified novel Ku-DNA binding inhibitors (Ku-DBi's) targeting the Ku 70/80 heterodimer interaction with DNA.
Purpose of the Study:
- To investigate the potentiation of cellular effects of DNA-damaging agents by chemical inhibition of the Ku-DNA interaction.
- To elucidate the downstream signaling pathways affected by Ku-DBi's, including ATM activation and p53 phosphorylation.
- To assess the impact of Ku-DBi's on DNA-PKcs and H2AX phosphorylation as indicators of DSB repair and DDR modulation.
Main Methods:
- Utilized chemical inhibitors targeting the Ku-DNA interaction (Ku-DBi's).
- Assessed cellular responses to bleomycin and IR in the presence of Ku-DBi's.
- Measured p53 and H2AX phosphorylation, and DNA-PKcs autophosphorylation at S2056.
Main Results:
- Ku-DBi's potentiated the cellular effects of bleomycin and IR, leading to p53 phosphorylation via ATM pathway activation.
- Inhibition of Ku-DNA interaction reduced DNA-PKcs autophosphorylation at S2056.
- Observed a time-dependent increase in H2AX phosphorylation at S139, indicating DDR activation.
Conclusions:
- Ku-DBi's abrogate DNA-PKcs autophosphorylation, impacting DSB repair and DDR signaling through a novel mechanism.
- These inhibitors represent a promising strategy for enhancing anticancer therapy when combined with DNA DSB-inducing agents.
- The findings support Ku-DBi's as a novel therapeutic approach for specific cancer treatments.
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