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Published on: March 30, 2019
MicroRNA-320 regulates the radiosensitivity of cervical cancer cells C33AR by targeting β-catenin
Chun-Xu Yang1, Shi-Min Zhang1, Jie Li1
1Department of Radiation and Medical Oncology, Zhongnan Hospital, Wuhan University, Wuhan, Hubei 430071, P.R. China.
Abstract:
Cervical cancer is the second most common malignancy in women worldwide and always has recurrence owing to radioresistance. MicroRNA (miRNA or miR) has been identified to relate to the sensitivity of cancer radiotherapy. Here, we investigated the potential of miRNA-320 as a biomarker for radiosensitivity by targeting β-catenin in cervical cancer. A radioresistant cervical cancer cell line, C33AR, was established, and the radioresistance of C33AR cells was confirmed by a colony-formation assay. The expression of miRNA-320 was detected by reverse transcription-quantitative polymerase chain reaction, and compared between C33A and C33AR. β-catenin, the target of miRNA-320, was determined at the protein level by western blotting after transfecting the inhibitor of miRNA-320. The expression of miRNA-320 was markedly decreased in C33AR cells, which appeared to be more radioresistant, compared with its parental cell line C33A. Target prediction suggested that miRNA-320 negatively regulated the expression of β-catenin. Knockdown of β-catenin increased C33AR radiosensitivity, which revealed that the inhibition of β-catenin could rescue the miRNA-320-mediated cell radioresistance. On the other hand, overexpressing miRNA-320 increased C33AR radiosensitivity. In conclusion, miRNA-320 regulated the radiosensitivity of C33AR cells by targeting β-catenin. This finding provides evidence that miRNA-320 may be a potential biomarker of radiosensitivity in cervical cancer.
Insights
MicroRNA-320 downregulation increases radioresistance in cervical cancer by upregulating beta-catenin. Restoring microRNA-320 levels enhances radiosensitivity, suggesting its potential as a biomarker for cervical cancer radiotherapy.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Cervical cancer recurrence is often linked to radioresistance.
- MicroRNAs (miRNAs) play a role in cancer radiotherapy sensitivity.
- Identifying biomarkers for radiosensitivity is crucial for effective treatment.
Purpose of the Study:
- To investigate microRNA-320 (miRNA-320) as a potential biomarker for radiosensitivity in cervical cancer.
- To explore the role of miRNA-320 targeting beta-catenin in radioresistant cervical cancer cells.
Main Methods:
- Established a radioresistant cervical cancer cell line (C33AR).
- Quantified miRNA-320 expression using reverse transcription-quantitative polymerase chain reaction.
- Assessed beta-catenin protein levels via western blotting.
- Performed colony-formation assays to evaluate radiosensitivity.
Main Results:
- C33AR cells exhibited decreased miRNA-320 expression compared to parental C33A cells.
- miRNA-320 was predicted to negatively regulate beta-catenin.
- Knockdown of beta-catenin enhanced C33AR cell radiosensitivity.
- Overexpression of miRNA-320 increased C33AR cell radiosensitivity.
Conclusions:
- miRNA-320 regulates radiosensitivity in cervical cancer by targeting beta-catenin.
- miRNA-320 may serve as a predictive biomarker for radiosensitivity in cervical cancer patients.
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