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DDB2 expression lights the way for precision radiotherapy response in PDAC cells, with or without olaparib
Julie Dardare1,2, Andréa Witz3,4, Margaux Betz3,4
1Université de Lorraine, Centre National de la Recherche Scientifique (CNRS), Unité Mixte de Recherche (UMR) 7039 Centre de Recherche en Automatique de Nancy (CRAN), Nancy, France. j.dardare@nancy.unicancer.fr.
Abstract:
Pancreatic ductal adenocarcinoma (PDAC) is one of the deadliest cancers. Therapeutic options for PDAC are primarily restricted to surgery in the early stages of the disease or chemotherapy in advanced disease. Only a subset of patients with germline defects in BRCA1/2 genes can potentially benefit from personalized therapy, with the PARP inhibitor olaparib serving as a maintenance treatment for metastatic disease. Although the role of radiotherapy in PDAC remains controversial, the use of radiosensitizers offers hope for improving cancer management. Previously, we have shown that damage-specific DNA binding protein 2 (DDB2) is a potential prognostic and predictive biomarker for chemotherapy response in PDAC. In this study, we investigated the function of DDB2 in radiotherapy response, with and without radiosensitization by olaparib in PDAC cells. Our findings demonstrated DDB2 resistance to radiation effects, thereby improving cell survival and enhancing the repair of ionizing radiation-induced DNA double-strand breaks. We observed that DDB2 expression enhances the cell cycle arrest in the G2 phase by phosphorylating Chk1 and Chk2 cell cycle checkpoints. Additionally, we identified a novel link between DDB2 and PARP1 in the context of radiotherapy, which enhances the expression and activity of PARP1. Our findings highlight the potential of low-DDB2 expression to potentiate the radiosensitization effect of olaparib in PDAC cells. Collectively, this study provides novel insights into the impacts of DDB2 in the radiotherapy response in PDAC, enabling its employment as a potential biomarker to predict resistance to radiation. Furthermore, DDB2 represents a significant step forward in precision radiotherapy by widening the scope of patients who can be benefiting from olaparib as a radiosensitizer. Hence, this research has the potential to enrich the limited use of radiotherapy in the care of patients with PDAC.
Insights
Damage-specific DNA binding protein 2 (DDB2) promotes pancreatic cancer cell survival after radiation. Low DDB2 expression may enhance olaparib
Area of Science:
- Oncology
- Molecular Biology
- Radiotherapy Research
Background:
- Pancreatic ductal adenocarcinoma (PDAC) has limited therapeutic options.
- PARP inhibitors like olaparib show promise for BRCA-mutated PDAC.
- Damage-specific DNA binding protein 2 (DDB2) is a known chemotherapy biomarker.
Purpose of the Study:
- To investigate DDB2's role in PDAC response to radiotherapy.
- To explore DDB2's interaction with olaparib as a radiosensitizer.
Main Methods:
- Studied DDB2 function in PDAC cells under radiation and olaparib treatment.
- Assessed DNA double-strand break repair and cell cycle checkpoints (Chk1/Chk2).
- Investigated the relationship between DDB2 and PARP1.
Main Results:
- DDB2 expression confers resistance to radiation by enhancing DNA repair and cell survival.
- DDB2 promotes G2 cell cycle arrest via Chk1/Chk2 phosphorylation.
- DDB2 upregulates PARP1 expression and activity.
- Low DDB2 expression potentiates olaparib's radiosensitizing effect in PDAC cells.
Conclusions:
- DDB2 acts as a resistance factor to radiotherapy in PDAC.
- DDB2 is a potential biomarker for predicting radiation resistance.
- Targeting DDB2 or exploiting low DDB2 expression could improve olaparib-based radiosensitization strategies in PDAC.
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