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Studying Cell Cycle-regulated Gene Expression by Two Complementary Cell Synchronization Protocols
Published on: June 6, 2017
Repression of the Arf tumor suppressor by E2F3 is required for normal cell cycle kinetics
Aaron Aslanian1, Phillip J Iaquinta, Raluca Verona
1Center for Cancer Research, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.
Abstract:
Tumor development is dependent upon the inactivation of two key tumor-suppressor networks, p16(Ink4a)-cycD/cdk4-pRB-E2F and p19(Arf)-mdm2-p53, that regulate cellular proliferation and the tumor surveillance response. These networks are known to intersect with one another, but the mechanisms are poorly understood. Here, we show that E2F directly participates in the transcriptional control of Arf in both normal and transformed cells. This occurs in a manner that is significantly different from the regulation of classic E2F-responsive targets. In wild-type mouse embryonic fibroblasts (MEFs), the Arf promoter is occupied by E2F3 and not other E2F family members. In quiescent cells, this role is largely fulfilled by E2F3b, an E2F3 isoform whose function was previously undetermined. E2f3 loss is sufficient to derepress Arf, triggering activation of p53 and expression of p21(Cip1). Thus, E2F3 is a key repressor of the p19(Arf)-p53 pathway in normal cells. Consistent with this notion, Arf mutation suppresses the activation of p53 and p21(Cip1) in E2f3-deficient MEFs. Arf loss also rescues the known cell cycle re-entry defect of E2f3(-/-) cells, and this correlates with restoration of appropriate activation of classic E2F-responsive genes. Our data also demonstrate a direct role for E2F in the oncogenic activation of Arf. Specifically, we observe recruitment of the endogenous activating E2Fs, E2F1, and E2F3a, to the Arf promoter. Thus, distinct E2F complexes directly contribute to the normal repression and oncogenic activation of Arf. We propose that monitoring of E2F levels and/or activity is a key component of Arf's ability to respond to inappropriate, but not normal cellular proliferation.
Insights
E2F3 acts as a tumor suppressor by repressing Arf, a key protein in the p53 pathway. Loss of E2F3 activates Arf, leading to cell cycle arrest, while oncogenic E2Fs activate Arf in cancer cells.
Area of Science:
- Molecular biology
- Cellular biology
- Cancer research
Background:
- Tumor development involves inactivation of tumor-suppressor networks like p16(Ink4a)-cyclin D/cdk4-pRB-E2F and p19(Arf)-mdm2-p53.
- The interaction mechanisms between these networks are not fully understood.
Purpose of the Study:
- To investigate the role of E2F transcription factors in the regulation of the Arf tumor suppressor.
- To elucidate the distinct mechanisms of Arf regulation by different E2F complexes in normal and cancer cells.
Main Methods:
- Analysis of E2F binding to the Arf promoter in mouse embryonic fibroblasts (MEFs).
- Assessment of Arf, p53, and p21(Cip1) expression in wild-type and E2f3-deficient MEFs.
- Investigation of E2F recruitment to the Arf promoter in oncogenic activation contexts.
Main Results:
- E2F3 directly binds to and represses the Arf promoter in normal cells, particularly the E2F3b isoform in quiescent cells.
- Loss of E2F3 leads to Arf derepression, p53 activation, and p21(Cip1) expression, causing cell cycle arrest.
- Distinct E2F complexes, including E2F1 and E2F3a, are recruited to the Arf promoter for oncogenic activation.
Conclusions:
- E2F3 functions as a critical repressor of the p19(Arf)-p53 pathway in normal cells.
- E2F transcription factors play dual roles in Arf regulation: repression in normal cells and activation in oncogenic contexts.
- Arf's response to cellular proliferation may involve monitoring of E2F levels and activity.
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