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Cdk2-dependent and -independent pathways in E2F-mediated S phase induction
1Graduate School of Biological Sciences, Nara Institute of Science and Technology, 8916-5 Takayama, Ikoma, Nara 630-0101, Japan.
Abstract:
The transcription factor E2F plays an important role in G(1) to S phase transition in the higher eukaryotic cell cycle. Although a number of E2F-inducible genes have been identified, the biochemical cascades from E2F to the S phase entry remain to be investigated. In this study, we generated stably transfected mouse NIH3T3 cells that express exogenous human E2F-1 under the control of a heavy metal-inducible metallothionein promoter and analyzed the molecular mechanism of the E2F-1-mediated initiation of chromosomal DNA replication. Ectopic E2F-1 expression in cells arrested in G(0)/G(1) by serum deprivation enabled them to progress through G(1) and to enter S phase. During the G(1) progression, mouse cyclin E, but little of cyclin D1, was induced to express, which subsequently activated Cdk2. Experiments using the Cdk inhibitory proteins p27, p18, and p19 proved that the activity of Cdk2, but not of Cdk4, was required for S phase entry mediated by E2F-1. Minichromosome maintenance proteins (MCM) 4 and 7, the components of the DNA-replication initiation complex (RC), were constitutively expressed during the cell cycle, although the MCM genes are well known E2F-inducible genes. However, tight association of these two proteins with chromatin depended upon ectopic E2F-1 expression. In contrast, the Cdc45 protein, another RC component, which turned out to be a transcriptional target of E2Fs, was induced to express and subsequently bound to chromatin in response to E2F-1. Experiments utilizing a chemical Cdk-specific inhibitor, butyrolactone I, revealed that Cdk2 activity was required only for chromatin binding of the Cdc45 proteins, and not for the expression of Cdc45 or chromatin binding of MCM4 and -7. These results indicate that at least two separate pathways function downstream of E2F to initiate S phase; one depends upon the activity of Cdk2 and the other does not.
Insights
The transcription factor E2F initiates DNA replication by activating two distinct pathways. One pathway requires cyclin-dependent kinase 2 (Cdk2) activity, while the other does not, revealing new insights into cell cycle regulation.
Area of Science:
- Molecular Biology
- Cell Cycle Regulation
- DNA Replication
Background:
- The transcription factor E2F is crucial for the G(1) to S phase transition in eukaryotic cell cycles.
- While E2F-inducible genes are known, the precise molecular mechanisms linking E2F to S phase entry require further elucidation.
- Understanding these pathways is key to comprehending DNA replication initiation.
Purpose of the Study:
- To investigate the molecular mechanisms by which E2F-1 mediates the initiation of chromosomal DNA replication.
- To identify the specific downstream pathways activated by E2F-1 that lead to S phase entry.
- To differentiate the roles of Cdk2 and other factors in E2F-1-induced DNA replication.
Main Methods:
- Generated stably transfected mouse NIH3T3 cells expressing human E2F-1 under a metallothionein promoter.
- Analyzed G(1) to S phase progression, cyclin and Cdk activity, and the chromatin association of replication proteins.
- Utilized Cdk inhibitory proteins (p27, p18, p19) and a Cdk-specific inhibitor (butyrolactone I).
Main Results:
- Ectopic E2F-1 expression induced G(1) progression and S phase entry, with induced expression of cyclin E and activation of Cdk2.
- Cdk2 activity, but not Cdk4, was essential for E2F-1-mediated S phase entry.
- Ectopic E2F-1 expression was required for the chromatin association of Minichromosome maintenance proteins (MCM) 4 and 7, and induced expression and chromatin binding of Cdc45.
- Cdk2 activity was necessary for Cdc45 chromatin binding but not for Cdc45 expression or MCM4/7 chromatin binding.
Conclusions:
- E2F-1 initiates S phase through at least two distinct downstream pathways.
- One pathway is dependent on Cdk2 activity, likely for Cdc45 recruitment to chromatin.
- The second pathway is independent of Cdk2 activity, potentially regulating MCM4 and MCM7 chromatin association.