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Published on: April 25, 2018
Long non-coding RNA ROR confers arsenic trioxide resistance to HepG2 cells by inhibiting p53 expression
Xinyang Li1, Donglei Sun1, Tianhe Zhao1
1West China School of Public Health and West China Fourth Hospital, Sichuan University, Chengdu, People's Republic of China.
Abstract:
Arsenic trioxide is an effective drug in the treatment of hematologic malignancies, but it has no obvious therapeutic effect on liver cancer. Long non-coding RNA ROR is a newly found long-noncoding RNA that has been reported to get involved in the regulation of chemo-resistance in multiple cancers. However, whether and how long non-coding RNA ROR gets involved in the resistance to arsenic trioxide in liver cancer has not been explored. In this study, We found that cellular apoptosis was increased by arsenic trioxide in liver cancer HepG2 cells; P53 expression was also increased by arsenic trioxide at both mRNA level and protein level, indicating that P53-dependent apoptosis is the main mechanism for arsenic trioxide to induce cytotoxicity in liver cancer HepG2 cells. Meanwhile, we found an obvious increase in the level of long non-coding RNA ROR in arsenic trioxide-treated HepG2 cells. By measuring the level of reactive oxygen species, glutathione, superoxide dismutase, and malondialdehyde, the product of lipid peroxidation, we further demonstrated that oxidative stress was a potential factor for both the activation of P53 expression and the increase in long non-coding RNA ROR expression. Through the knock-down of long non-coding RNA ROR by siRNA, we revealed that the activated long non-coding RNA ROR ameliorated arsenic trioxide-induced apoptosis by inhibiting P53 expression. Together, our study reported that long non-coding RNA ROR conferred arsenic trioxide resistance to liver cancer cells through inhibiting P53 expression, and long non-coding RNA ROR might be a novel sensitizing target for liver cancer treatment.
Insights
Long non-coding RNA ROR increases arsenic trioxide resistance in liver cancer by inhibiting P53 expression. This finding suggests long non-coding RNA ROR as a potential target for improving liver cancer treatment.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Arsenic trioxide effectively treats hematologic malignancies but shows limited efficacy in liver cancer.
- Long non-coding RNA ROR (lncRNA ROR) is implicated in chemo-resistance across various cancers.
- The role of lncRNA ROR in arsenic trioxide resistance in liver cancer remains unexplored.
Purpose of the Study:
- To investigate the involvement of lncRNA ROR in arsenic trioxide resistance in liver cancer.
- To elucidate the mechanism by which lncRNA ROR influences arsenic trioxide's efficacy.
- To identify potential therapeutic targets for enhancing liver cancer treatment.
Main Methods:
- Treatment of liver cancer HepG2 cells with arsenic trioxide.
- Assessment of cellular apoptosis, P53 expression (mRNA and protein), reactive oxygen species, glutathione, superoxide dismutase, and malondialdehyde levels.
- Knock-down of lncRNA ROR using small interfering RNA (siRNA).
Main Results:
- Arsenic trioxide induced P53-dependent apoptosis in HepG2 cells.
- Arsenic trioxide treatment increased lncRNA ROR levels and induced oxidative stress.
- Knock-down of lncRNA ROR reversed arsenic trioxide-induced apoptosis by increasing P53 expression.
Conclusions:
- lncRNA ROR confers arsenic trioxide resistance in liver cancer cells by suppressing P53 expression.
- Oxidative stress is a potential mediator for P53 and lncRNA ROR activation.
- lncRNA ROR represents a novel therapeutic target for sensitizing liver cancer to arsenic trioxide treatment.
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