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Reduced hepatic tumor incidence in cyclin G1-deficient mice
Michael Rugaard Jensen1, Valentina M Factor, Anna Fantozzi
1Laboratory of Experimental Carcinogenesis, Center for Cancer Research, National Cancer Institute, National Institutes of Health, Bethesda, MD 20892, USA.
Abstract:
Cyclin G1 is a transcriptional target of the tumor suppressor p53, and its expression is increased after DNA damage. Recent data show that cyclin G1 can regulate the levels of p53 by a mechanism that involves dephosphorylation of Mdm2 by protein phosphatase 2A. To understand the biologic role of cyclin G1, we have generated cyclin G1-deficient mice. In agreement with previous results, we showed that these mice develop normally, and that proliferation and induction of cellular senescence in cyclin G1-deficient mouse embryo fibroblasts are indistinguishable from wild-type fibroblasts. However, we found that the p53 levels in the cyclin G1-deficient mice are 2-fold higher that in wild-type mice. Moreover, we showed that treatment of mice with the alkylating agent 1,4-bis[N,N'-di(ethylene)-phosphamide]piperazine (Dipin), followed by partial hepatectomy, decreased G1-S transition in cyclin G1-null hepatocytes as compared with wild type. Finally, we found a significant decrease in tumor incidence, mass, and malignancy in both male and female cyclin G1-null mice after treatment with the potent hepatocarcinogen N-diethylnitrosamine. Taken with recent published data, our results suggest that cyclin G1, together with Mdm2, constitute a part of a negative feedback system that attenuates the activity of p53. In conclusion, our data suggest that the decreased tumor susceptibility after loss of cyclin G1 function is caused by the increased tumor suppressor action of p53.
Insights
Cyclin G1 deficiency increases tumor suppressor p53 levels, reducing tumor incidence and malignancy. This suggests cyclin G1 and Mdm2 form a negative feedback loop regulating p53 activity.
Area of Science:
- Molecular Biology
- Oncology
- Genetics
Background:
- Cyclin G1 is a transcriptional target of the tumor suppressor p53, upregulated after DNA damage.
- Cyclin G1 influences p53 levels via Mdm2 dephosphorylation by protein phosphatase 2A.
Purpose of the Study:
- To elucidate the biological role of cyclin G1 by generating and analyzing cyclin G1-deficient mice.
- To investigate the impact of cyclin G1 deficiency on p53 levels, cell cycle progression, and tumor development.
Main Methods:
- Generation and analysis of cyclin G1-deficient mice.
- Assessment of p53 levels, cellular proliferation, senescence, and G1-S transition in hepatocytes.
- Evaluation of tumor incidence, mass, and malignancy following exposure to N-diethylnitrosamine.
Main Results:
- Cyclin G1-deficient mice exhibit twofold higher p53 levels compared to wild-type mice.
- Loss of cyclin G1 function impairs G1-S transition in hepatocytes and significantly reduces tumor development.
- Cell proliferation and senescence in cyclin G1-deficient fibroblasts are comparable to wild-type.
Conclusions:
- Cyclin G1, in conjunction with Mdm2, participates in a negative feedback mechanism that modulates p53 activity.
- Reduced tumor susceptibility in cyclin G1-null mice is attributed to enhanced tumor suppressor functions of p53.