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G1 cyclin/cyclin-dependent kinase-coordinated phosphorylation of endogenous pocket proteins differentially regulates
Joaquim Calbó1, Matilde Parreño, Elena Sotillo
1Fels Institute for Cancer Research and Molecular Biology and Department of Biochemistry, Temple University School of Medicine, Philadelphia, Pennsylvania 19140, USA.
Abstract:
Mitogenic stimulation leads to activation of G(1) cyclin-dependent kinases (CDKs), which phosphorylate pocket proteins and trigger progression through the G(0)/G(1) and G(1)/S transitions of the cell cycle. However, the individual role of G(1) cyclin-CDK complexes in the coordinated regulation of pocket proteins and their interaction with E2F family members is not fully understood. Here we report that individually or in concert cyclin D1-CDK and cyclin E-CDK complexes induce distinct and coordinated phosphorylation of endogenous pocket proteins, which also has distinct consequences in the regulation of pocket protein interactions with E2F4 and the expression of p107 and E2F1, both E2F-regulated genes. The up-regulation of these two proteins and the release of p130 and pRB from E2F4 complexes allows formation of E2F1 complexes not only with pRB but also with p130 and p107 as well as the formation of p107-E2F4 complexes. The formation of these complexes occurs in the presence of active cyclin D1-CDK and cyclin E-CDK complexes, indicating that whereas phosphorylation plays a role in the abrogation of certain pocket protein/E2F interactions, these same activities induce the formation of other complexes in the context of a cell expressing endogenous levels of pocket and E2F proteins. Of note, phosphorylated p130 "form 3," which does not interact with E2F4, readily interacts with E2F1. Our data also demonstrate that ectopic overexpression of either cyclin is sufficient to induce mitogen-independent growth in human T98G and Rat-1 cells, although the effects of cyclin D1 require downstream activation of cyclin E-CDK2 activity. Interestingly, in T98G cells, cyclin D1 induces cell cycle progression more potently than cyclin E. This suggests that cyclin D1 activates pathways independently of cyclin E that ensure timely progression through the cell cycle.
Insights
Cyclin D1-CDK and cyclin E-CDK complexes differentially regulate pocket proteins and E2F interactions, impacting cell cycle progression. Cyclin D1 promotes cell growth independently of cyclin E, highlighting distinct roles in cell cycle control.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Cell cycle progression relies on G(1) cyclin-dependent kinases (CDKs) phosphorylating pocket proteins.
- The precise roles of individual G(1) cyclin-CDK complexes in regulating pocket proteins and E2F interactions remain unclear.
Purpose of the Study:
- To elucidate the distinct and coordinated roles of cyclin D1-CDK and cyclin E-CDK complexes in pocket protein phosphorylation.
- To investigate the impact of these phosphorylations on pocket protein interactions with E2F family members.
- To determine the effect of these complexes on the expression of E2F-regulated genes and cell cycle progression.
Main Methods:
- Analysis of endogenous pocket protein phosphorylation induced by cyclin D1-CDK and cyclin E-CDK complexes.
- Assessment of pocket protein interactions with E2F4 and E2F1.
- Measurement of p107 and E2F1 gene expression.
- Evaluation of mitogen-independent cell growth upon ectopic cyclin overexpression.
Main Results:
- Cyclin D1-CDK and cyclin E-CDK complexes induce distinct pocket protein phosphorylation patterns.
- These phosphorylations alter pocket protein interactions with E2F4 and E2F1, leading to the formation of novel complexes.
- Phosphorylated p130 (form 3) interacts with E2F1 but not E2F4.
- Ectopic cyclin D1 or cyclin E overexpression drives mitogen-independent growth, with cyclin D1 showing greater potency in T98G cells.
Conclusions:
- G(1) cyclin-CDK complexes play coordinated yet distinct roles in regulating pocket protein function and E2F interactions.
- Phosphorylation by these complexes can both disrupt and promote specific protein-protein interactions.
- Cyclin D1 can activate pathways independent of cyclin E to drive cell cycle progression, suggesting a more potent role in certain contexts.