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Updated: Sep 28, 2026

Studying Cell Cycle-regulated Gene Expression by Two Complementary Cell Synchronization Protocols
Published on: June 6, 2017
E2F mediates sustained G2 arrest and down-regulation of Stathmin and AIM-1 expression in response to genotoxic stress
Shirley Polager1, Doron Ginsberg
1Department of Molecular Cell Biology, The Weizmann Institute of Science, Rehovot 76100, Israel.
Abstract:
Exposure of cells to genotoxic agents results in activation of checkpoint pathways leading to cell cycle arrest. These arrest pathways allow repair of damaged DNA before its replication and segregation, thus preventing accumulation of mutations. The tumor suppressor retinoblastoma (RB) is required for the G(1)/S checkpoint function. In addition, regulation of the G(2) checkpoint by the tumor suppressor p53 is RB-dependent. However, the molecular mechanism underlying the involvement of RB and its related proteins p107 and p130 in the G(2) checkpoint is not fully understood. We show here that sustained G(2)/M arrest induced by the genotoxic agent doxorubicin is E2F-dependent and involves a decrease in expression of two mitotic regulators, Stathmin and AIM-1. Abrogation of E2F function by dominant negative E2F abolishes the doxorubicin-induced down-regulation of Stathmin and AIM-1 and leads to premature exit from G(2). Expression of the E7 papilloma virus protein, which dissociates complexes containing E2F and RB family members, also prevents the down-regulation of these mitotic genes and leads to premature exit from G(2) after genotoxic stress. Furthermore, genotoxic stress increases the levels of nuclear E2F-4 and p130 as well as their in vivo binding to the Stathmin promoter. Thus, functional complexes containing E2F and RB family members appear to be essential for repressing expression of critical mitotic regulators and maintaining the G(2)/M checkpoint.
Insights
Genotoxic stress arrests the cell cycle at G2/M by repressing mitotic genes via E2F-RB complexes. This E2F-dependent mechanism maintains the G2/M checkpoint, preventing DNA damage accumulation.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- Genotoxic agents trigger cell cycle arrest to allow DNA repair, preventing mutations.
- The retinoblastoma (RB) protein is crucial for the G1/S checkpoint, and its regulation of the G2 checkpoint is p53-dependent.
- The precise role of RB and related proteins (p107, p130) in the G2 checkpoint remains unclear.
Purpose of the Study:
- To elucidate the molecular mechanisms of RB family proteins in regulating the G2/M checkpoint.
- To investigate the role of E2F transcription factors in genotoxic stress-induced G2/M arrest.
Main Methods:
- Cell cycle analysis following doxorubicin treatment.
- Western blotting to assess protein expression levels.
- Dominant-negative E2F and HPV E7 protein expression to abrogate E2F/RB function.
- Chromatin immunoprecipitation (ChIP) assays to study in vivo promoter binding.
Main Results:
- Doxorubicin-induced G2/M arrest is dependent on E2F and involves decreased expression of mitotic regulators Stathmin and AIM-1.
- Abrogating E2F function or disrupting E2F/RB complexes leads to premature G2/M exit.
- Genotoxic stress increases nuclear E2F-4/p130 levels and binding to the Stathmin promoter.
Conclusions:
- E2F-RB complexes are essential for repressing mitotic gene expression and maintaining the G2/M checkpoint.
- This pathway ensures proper DNA repair before cell division following genotoxic insult.
- Findings reveal a novel mechanism for cell cycle control under DNA damage conditions.
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