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Published on: May 5, 2023
Low Expression of ECT2 Confers Radiation Therapy Resistance Through Transcription Coupled Nucleolar DNA Damage Repair
Yanfang Qiu1, Wenfeng Hu1, Ming Wen2
1Department of Oncology, Xiangya Cancer Center, Xiangya Hospital, Central South University, Changsha, China; Key Laboratory of Molecular Radiation Oncology Hunan Province, Changsha, China.
Purpose:
Radioresistance contributes to poor clinical therapeutic efficacy in most cancers. Emerging evidence shows that aberrant DNA damage repair is involved in radioresistance. This study aimed to elucidate the mechanism for radioresistance and explore the precise treatment to sensitize the radioresistant tumors.
Methods And Materials:
Real-time polymerase chain reaction and Western blot were used to confirm the differential expression of epithelial cell transforming 2 (ECT2) in irradiation-resistant and sensitive cell lines. Laser microirradiation was used to examine the ribosome DNA (rDNA) damage response of ECT2. Biotin-identification, in vivo, in vitro binding assay, and dot blotting were used to confirm the interaction of ECT2 and PARP1. The xenograft mouse model and cell survival assay were used to assess the irradiation sensitivity with or without PARP1 inhibitor.
Results:
We found the expression of ECT2 correlates with sensitivity to radiation therapy in both lung cancer and nasopharyngeal carcinoma. We demonstrated that low expression of ECT2 causes radioresistance, mainly by protecting rDNA in nucleoli from persistent irradiation exposure through transcriptional recovery prevention. ECT2 is recruited to the rDNA damage site in an ataxia-telangiectasia-mutated RNA polymerase I dependent manner. The recruited ECT2 interacts with PARP1 and facilitates the disassociation of PARP1 from rDNA in nucleoli. Thus, ECT2 deficiency results in sustained activation of PARP1, which subsequently inhibits nucleolar transcription and results in a low frequency of rDNA exposure under DNA damage. PARP inhibition synergized with irradiation can sensitize radioresistant tumors with low ECT2 expression.
Conclusions:
Our study provides a potential perspective for the application of PARP inhibitor to sensitize low-ECT2 expressing tumors to radiation therapy.
Insights
Low epithelial cell transforming 2 (ECT2) expression causes radioresistance by protecting ribosomal DNA. Combining PARP inhibition with radiation therapy sensitizes tumors with low ECT2 expression, offering a new treatment strategy.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Radioresistance remains a significant challenge in cancer therapy, often linked to aberrant DNA damage repair mechanisms.
- Understanding the molecular underpinnings of radioresistance is crucial for developing effective treatment strategies.
Purpose of the Study:
- To elucidate the mechanism by which epithelial cell transforming 2 (ECT2) influences radioresistance.
- To explore the potential of targeting ECT2 and PARP1 for sensitizing radioresistant tumors to radiation therapy.
Main Methods:
- Quantitative PCR and Western blotting to assess ECT2 expression in radioresistant and sensitive cell lines.
- Laser microirradiation and biochemical assays to investigate ECT2's role in DNA damage response and its interaction with PARP1.
- Xenograft mouse models and cell survival assays to evaluate the efficacy of combined irradiation and PARP1 inhibition.
Main Results:
- ECT2 expression inversely correlates with radioresistance in lung and nasopharyngeal carcinoma.
- Low ECT2 expression confers radioresistance by protecting ribosomal DNA (rDNA) in nucleoli from damage.
- ECT2 interacts with PARP1, preventing sustained PARP1 activation and nucleolar transcription inhibition.
- Combined irradiation and PARP1 inhibition effectively sensitizes radioresistant tumors with low ECT2 expression.
Conclusions:
- ECT2 plays a critical role in regulating radioresistance by modulating rDNA stability and nucleolar function.
- Targeting PARP1 in combination with radiation therapy presents a promising strategy for overcoming radioresistance in tumors with low ECT2 expression.
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