Cyclin A-CDK activity during G1 phase impairs MCM chromatin loading and inhibits DNA synthesis in mammalian cells
Leroy W Wheeler1, Nathan H Lents, Joseph J Baldassare
1Department of Pharmacological Sciences at Saint Louis University, St. Louis, Missouri 63104, USA.
Abstract:
Progression through the mammalian cell division cycle is regulated by the sequential activation of cyclin-dependent kinases, CDKs, at specific phases of the cell cycle. Cyclin A-CDK2 and cyclin A-CDK1 phosphorylate nuclear substrates during S and G(2) phases, respectfully. However, the DNA helicase complex, MCM2-7, is loaded onto the origin of replications in G(1), prior to the normally scheduled induction of cyclin A. It has previously been shown that cyclin A-CDKs phosphorylate MCM2 and MCM4 in vitro, thereby diminishing helicase activity. Thus, in this study we hypothesize that, in vivo, cyclin A-CDK activity during G(1) would result in an inhibition of progression into the S phase. To test this, we establish an in vivo method of inducing cyclin A-CDK activity in G(1) phase and observe that activation of cyclin A-CDK, but not cyclin E-CDK complexes, inhibit DNA synthesis without affecting other G(1) events such as cyclin D synthesis, E2F activation and cdc6 loading onto chromatin. We further report that the mechanism of this S phase inhibition occurs, at least in part, through impaired loading of MCM onto chromatin, presumably due to decreased levels of cdt1 and premature phosphorylation of MCM by cyclin A-CDK. In addition to providing in vivo confirmation of in vitro predictions regarding cyclin A-CDK phosphorylation of the MCM complex, our results provide insight into the cellular effects of unscheduled cyclin A-CDK activity in mammalian cells.
Insights
Unscheduled cyclin A-CDK activity in G(1) phase inhibits DNA synthesis by impairing MCM loading onto chromatin. This study confirms in vitro findings in vivo, revealing cell cycle regulation insights.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Cell cycle progression relies on sequential cyclin-dependent kinase (CDK) activation.
- Cyclin A-CDK complexes typically act in S and G2 phases.
- The MCM2-7 helicase complex loads onto replication origins in G1, before cyclin A induction.
Purpose of the Study:
- To investigate the in vivo effect of cyclin A-CDK activity during G1 phase on cell cycle progression.
- To determine if cyclin A-CDK activity in G1 inhibits entry into S phase.
- To elucidate the mechanism by which cyclin A-CDK might affect DNA replication initiation.
Main Methods:
- Developed an in vivo method to induce cyclin A-CDK activity specifically in G1 phase.
- Monitored DNA synthesis, G1 events (cyclin D synthesis, E2F activation, cdc6 loading), and MCM loading.
- Assessed the impact of cyclin A-CDK activation versus cyclin E-CDK activation.
Main Results:
- Induced cyclin A-CDK activity in G1 inhibited DNA synthesis.
- This inhibition occurred without affecting other G1 events.
- Mechanism involves impaired MCM loading, potentially due to decreased cdt1 and premature MCM phosphorylation.
Conclusions:
- In vivo cyclin A-CDK activity during G1 phase inhibits S phase entry.
- Impaired MCM loading is a key mechanism for this inhibition.
- Provides in vivo evidence for cyclin A-CDK's role in regulating DNA replication initiation.
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