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DNA-Dependent Protein Kinase As Molecular Target for Radiosensitization of Neuroblastoma Cells
M Emmy M Dolman1, Ida van der Ploeg1, Jan Koster1
1Department of Oncogenomics, Academic Medical Center, University of Amsterdam, Amsterdam, the Netherlands.
Abstract:
Tumor cells might resist therapy with ionizing radiation (IR) by non-homologous end-joining (NHEJ) of IR-induced double-strand breaks. One of the key players in NHEJ is DNA-dependent protein kinase (DNA-PK). The catalytic subunit of DNA-PK, i.e. DNA-PKcs, can be inhibited with the small-molecule inhibitor NU7026. In the current study, the in vitro potential of NU7026 to radiosensitize neuroblastoma cells was investigated. DNA-PKcs is encoded by the PRKDC (protein kinase, DNA-activated, catalytic polypeptide) gene. We showed that PRKDC levels were enhanced in neuroblastoma patients and correlated with a more advanced tumor stage and poor prognosis, making DNA-PKcs an interesting target for radiosensitization of neuroblastoma tumors. Optimal dose finding for combination treatment with NU7026 and IR was performed using NGP cells. One hour pre-treatment with 10 μM NU7026 synergistically sensitized NGP cells to 0.63 Gy IR. Radiosensitizing effects of NU7026 increased in time, with maximum effects observed from 96 h after IR-exposure on. Combined treatment of NGP cells with 10 μM NU7026 and 0.63 Gy IR resulted in apoptosis, while no apoptotic response was observed for either of the therapies alone. Inhibition of IR-induced DNA-PK activation by NU7026 confirmed the capability of NGP cells to, at least partially, resist IR by NHEJ. NU7026 also synergistically radiosensitized other neuroblastoma cell lines, while no synergistic effect was observed for low DNA-PKcs-expressing non-cancerous fibroblasts. Results obtained for NU7026 were confirmed by PRKDC knockdown in NGP cells. Taken together, the current study shows that DNA-PKcs is a promising target for neuroblastoma radiosensitization.
Insights
DNA-PKcs inhibition with NU7026 enhances radiosensitivity in neuroblastoma cells by blocking DNA repair. This combination therapy induces apoptosis, offering a promising strategy for treating neuroblastoma tumors.
Area of Science:
- Oncology
- Molecular Biology
- Radiotherapy
Background:
- Tumor cells can resist ionizing radiation (IR) therapy through DNA repair mechanisms like non-homologous end-joining (NHEJ).
- DNA-dependent protein kinase (DNA-PK), specifically its catalytic subunit DNA-PKcs, is crucial for NHEJ.
- Elevated PRKDC gene expression, encoding DNA-PKcs, correlates with advanced neuroblastoma stages and poor prognosis.
Purpose of the Study:
- To investigate the potential of the small-molecule inhibitor NU7026 to radiosensitize neuroblastoma cells in vitro.
- To evaluate DNA-PKcs as a therapeutic target for enhancing neuroblastoma radiosensitization.
Main Methods:
- Neuroblastoma cell lines (NGP) were treated with NU7026 and ionizing radiation (IR).
- Dose-finding studies were performed to determine optimal combination treatment parameters.
- Apoptosis assays and PRKDC knockdown were used to assess treatment efficacy and mechanism.
Main Results:
- Pre-treatment with NU7026 synergistically sensitized NGP cells to IR, with maximum effects observed 96 hours post-exposure.
- Combined NU7026 and IR treatment induced apoptosis in neuroblastoma cells, unlike single treatments.
- NU7026 demonstrated synergistic radiosensitization in multiple neuroblastoma cell lines but not in non-cancerous fibroblasts.
Conclusions:
- DNA-PKcs is a viable target for radiosensitizing neuroblastoma.
- Inhibition of DNA-PKcs by NU7026 enhances the efficacy of ionizing radiation therapy in neuroblastoma.
- Combined inhibition of DNA-PKcs and IR presents a promising therapeutic strategy for neuroblastoma treatment.
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