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Published on: November 15, 2010
The BRUCE-ATR Signaling Axis Is Required for Accurate DNA Replication and Suppression of Liver Cancer Development
Chunmin Ge1, Chrystelle L Vilfranc1, Lixiao Che1
1Department of Cancer and Cell Biology, University of Cincinnati, Cincinnati, OH.
Abstract:
Replication fork stability during DNA replication is vital for maintenance of genomic stability and suppression of cancer development in mammals. ATR (ataxia-telangiectasia mutated [ATM] and RAD3-related) is a master regulatory kinase that activates the replication stress response to overcome replication barriers. Although many downstream effectors of ATR have been established, the upstream regulators of ATR and the effect of such regulation on liver cancer remain unclear. The ubiquitin conjugase BRUCE (BIR Repeat containing Ubiquitin-Conjugating Enzyme) is a guardian of chromosome integrity and activator of ATM signaling, which promotes DNA double-strand break repair through homologous recombination. Here we demonstrate the functions for BRUCE in ATR activation in vitro and liver tumor suppression in vivo. BRUCE is recruited to induced DNA damage sites. Depletion of BRUCE inhibited multiple ATR-dependent signaling events during replication stress, including activation of ATR itself, phosphorylation of its downstream targets CHK1 and RPA, and the mono-ubiquitination of FANCD2. Consequently, BRUCE deficiency resulted in stalled DNA replication forks and increased firing of new replication origins. The in vivo impact of BRUCE loss on liver tumorigenesis was determined using the hepatocellular carcinoma model induced by genotoxin diethylnitrosamine. Liver-specific knockout of murine Bruce impaired ATR activation and exacerbated inflammation, fibrosis and hepatocellular carcinoma, which exhibited a trabecular architecture, closely resembling human hepatocellular carcinoma (HCC). In humans, the clinical relevance of BRUCE down-regulation in liver disease was found in hepatitis, cirrhosis, and HCC specimens, and deleterious somatic mutations of the Bruce gene was found in human hepatocellular carcinoma in the Cancer Genome Atlas database. Conclusion: These findings establish a BRUCE-ATR signaling axis in accurate DNA replication and suppression of liver cancer in mice and humans and provides a clinically relevant HCC mouse model.
Insights
The ubiquitin conjugase BRUCE is crucial for activating ATR signaling, ensuring DNA replication fork stability and suppressing liver cancer development in mice and humans.
Area of Science:
- Molecular Biology
- Genetics
- Oncology
Background:
- Replication fork stability is essential for genomic integrity and cancer prevention.
- ATR kinase regulates the replication stress response, but its upstream regulators and role in liver cancer are not fully understood.
- BRUCE, a ubiquitin conjugase, is known to protect chromosome integrity and activate ATM signaling.
Purpose of the Study:
- To investigate the role of BRUCE in ATR activation.
- To determine the function of BRUCE in liver tumor suppression.
- To elucidate the BRUCE-ATR signaling axis in DNA replication and liver cancer.
Main Methods:
- Recruitment of BRUCE to DNA damage sites was observed.
- BRUCE depletion effects on ATR-dependent signaling (ATR activation, CHK1/RPA phosphorylation, FANCD2 ubiquitination) were assessed during replication stress.
- Hepatocellular carcinoma was induced in mice using diethylnitrosamine, and liver-specific Bruce knockout was performed.
- BRUCE expression and somatic mutations were analyzed in human liver disease and hepatocellular carcinoma samples.
Main Results:
- BRUCE depletion inhibited ATR activation and downstream signaling, leading to stalled replication forks and increased origin firing.
- Liver-specific knockout of BRUCE in mice exacerbated diethylnitrosamine-induced liver inflammation, fibrosis, and hepatocellular carcinoma.
- BRUCE downregulation and deleterious somatic mutations were found in human hepatitis, cirrhosis, and hepatocellular carcinoma.
Conclusions:
- BRUCE acts as a crucial activator of ATR signaling, maintaining DNA replication fidelity.
- The BRUCE-ATR axis plays a significant role in suppressing liver tumorigenesis in both mice and humans.
- This study establishes a clinically relevant mouse model for hepatocellular carcinoma research.
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