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Published on: August 12, 2015
RNF4 silencing induces cell growth arrest and DNA damage by promoting nuclear targeting of p62 in hepatocellular
Bin Lv1, Yida Pan1, Daisen Hou2,3
1Department of Digestive Diseases, Huashan Hospital, Fudan University, 12 Middle Wulumuqi Road, Shanghai, China.
Abstract:
Hepatocellular carcinoma (HCC) is one of the largest causes of cancer-related deaths worldwide owing to the limitation of effective treatment options. The ubiquitin-proteasome system has been rapidly recognized as a frequent target of deregulation leading to cancers. Enhanced DNA damage response (DDR) promotes HCC growth and prevents chemosensitivity, and ubiquitin E3 ligases are key modulators in DDR. Therefore, a better understanding of how E3 ligases regulate cell growth and DNA damage may provide novel insights in understanding the oncogenic mechanism and improving the efficacy of DNA damage therapeutic agents. Here, we performed a high-content RNAi screening targeting 52 DDR-related E3 ligases in HCC and found that ring finger protein 4 (RNF4) was essential for HCC growth. RNF4 was highly expressed in HCC tissues, and the expression levels of RNF4 were associated with poor outcomes. RNF4 silencing significantly suppressed the cell growth, and subsequently induced G2/M arrest and apoptosis of HCC cells in vitro; RNF4 silencing also demonstrated the tumor-suppressive efficacy on HCC in vivo. Moreover, RNF4 silencing increased DNA damage, and rendered HCC cells more sensitive to DNA damage drugs and radiation. We found RNF4 functionally interacts with p62, and mechanistic analyses indicated that RNF4 silencing triggered the nuclear enrichment of p62. Moreover, the p62 nuclear targeting was required for increased DNA damage and growth suppression mediated by RNF4 silencing. Thus, our findings suggest RNF4 is essential for HCC proliferation via preventing nuclear translocation of p62. RNF4 silencing promotes DNA damage and may serve as a novel strategy to suppress cell growth and increase the sensitivity of DNA damage therapeutic agents in HCC.
Insights
Ring finger protein 4 (RNF4) is crucial for liver cancer (HCC) growth by blocking p62
Area of Science:
- Molecular Biology
- Oncology
- Biochemistry
Background:
- Hepatocellular carcinoma (HCC) is a leading cause of cancer mortality globally, with limited effective treatments.
- The ubiquitin-proteasome system and DNA damage response (DDR) pathways are frequently dysregulated in cancers.
- Ubiquitin E3 ligases are critical regulators of DDR, influencing cancer cell growth and treatment sensitivity.
Purpose of the Study:
- To investigate the role of DDR-related E3 ligases in HCC pathogenesis.
- To identify novel therapeutic targets for HCC treatment.
- To elucidate the mechanism by which E3 ligases regulate HCC cell proliferation and DNA damage.
Main Methods:
- High-content RNA interference (RNAi) screening of 52 DDR-related E3 ligases in HCC cells.
- In vitro and in vivo studies assessing the effects of RNF4 silencing on HCC growth, cell cycle, apoptosis, and DNA damage.
- Mechanistic studies to investigate the interaction between RNF4, p62, and DNA damage pathways.
Main Results:
- Ring finger protein 4 (RNF4) was identified as essential for HCC growth, with high expression correlating with poor prognosis.
- RNF4 silencing suppressed HCC cell proliferation, induced G2/M arrest and apoptosis in vitro, and demonstrated tumor-suppressive effects in vivo.
- RNF4 silencing increased DNA damage, enhanced sensitivity to chemotherapy and radiation, and promoted nuclear translocation of p62.
Conclusions:
- RNF4 is a critical driver of HCC proliferation by inhibiting the nuclear translocation of p62.
- RNF4 silencing represents a potential therapeutic strategy to suppress HCC growth.
- Targeting RNF4 may enhance the efficacy of DNA damage-based therapies in HCC treatment.
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