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Regulation of the G2/M transition by p53
1Department of Molecular Biology, Lerner Research Insititute, The Cleveland Clinic Foundation, 9500 Euclid Avenue, Cleveland, Ohio 44195, USA.
Abstract:
p53 protects mammals from neoplasia by inducing apoptosis, DNA repair and cell cycle arrest in response to a variety of stresses. p53-dependent arrest of cells in the G1 phase of the cell cycle is an important component of the cellular response to stress. Here we review recent evidence that implicates p53 in controlling entry into mitosis when cells enter G2 with damaged DNA or when they are arrested in S phase due to depletion of the substrates required for DNA synthesis. Part of the mechanism by which p53 blocks cells at the G2 checkpoint involves inhibition of Cdc2, the cyclin-dependent kinase required to enter mitosis. Cdc2 is inhibited simultaneously by three transcriptional targets of p53, Gadd45, p21, and 14-3-3 sigma. Binding of Cdc2 to Cyclin B1 is required for its activity, and repression of the cyclin B1 gene by p53 also contributes to blocking entry into mitosis. p53 also represses the cdc2 gene, to help ensure that cells do not escape the initial block. Genotoxic stress also activates p53-independent pathways that inhibit Cdc2 activity, activation of the protein kinases Chk1 and Chk2 by the protein kinases Atm and Atr. Chk1 and Chk2 inhibit Cdc2 by inactivating Cdc25, the phosphatase that normally activates Cdc2. Chk1, Chk2, Atm and Atr also contribute to the activation of p53 in response to genotoxic stress and therefore play multiple roles. p53 induces transcription of the reprimo, B99, and mcg10 genes, all of which contribute to the arrest of cells in G2, but the mechanisms of cell cycle arrest by these genes is not known. Repression of the topoisomerase II gene by p53 helps to block entry into mitosis and strengthens the G2 arrest. In summary, multiple overlapping p53-dependent and p53-independent pathways regulate the G2/M transition in response to genotoxic stress.
Insights
The tumor suppressor p53 protein controls cell cycle G2 arrest, preventing mitosis with damaged DNA. It inhibits key proteins like Cdc2, crucial for cell division, ensuring genomic stability.
Area of Science:
- Molecular Biology
- Cell Biology
- Cancer Research
Background:
- The p53 protein is a critical tumor suppressor in mammals.
- p53 induces apoptosis, DNA repair, and cell cycle arrest in response to cellular stress.
- p53-dependent G1 cell cycle arrest is vital for stress response.
Purpose of the Study:
- To review evidence implicating p53 in controlling the G2/M cell cycle transition.
- To explore p53's role in preventing mitosis when cells have damaged DNA or are in S-phase arrest.
- To detail the molecular mechanisms by which p53 regulates the G2 checkpoint.
Main Methods:
- Review of existing scientific literature on p53 and cell cycle regulation.
- Analysis of molecular pathways involving p53, Cdc2, and other cell cycle regulators.
- Examination of transcriptional targets of p53 and their roles in cell cycle arrest.
Main Results:
- p53 inhibits Cdc2, a key kinase for mitosis entry, via transcriptional targets Gadd45, p21, and 14-3-3 sigma.
- p53 represses cyclin B1 and cdc2 genes, further blocking mitotic entry.
- p53-independent pathways involving ATM/ATR, Chk1/Chk2, and Cdc25 also regulate the G2/M transition.
- p53 induces reprimo, B99, and mcg10 genes, contributing to G2 arrest.
- p53 represses topoisomerase II, reinforcing the G2 arrest.
Conclusions:
- p53 plays a multifaceted role in regulating the G2/M cell cycle transition.
- Both p53-dependent and p53-independent pathways converge to control mitotic entry under genotoxic stress.
- Understanding these pathways is crucial for cancer prevention and therapy.
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