Cyclin D- and E-dependent kinases and the p57(KIP2) inhibitor: cooperative interactions in vivo
E Gómez Lahoz1, N J Liegeois, P Zhang
1Department of Microbiology and Immunology and Department of Medicine, Albert Einstein College of Medicine, Bronx, New York 10461, USA.
Abstract:
This study examines in vivo the role and functional interrelationships of components regulating exit from the G1 resting phase into the DNA synthetic (S) phase of the cell cycle. Our approach made use of several key experimental attributes of the developing mouse lens, namely its strong dependence on pRb in maintenance of the postmitotic state, the down-regulation of cyclins D and E and up-regulation of the p57(KIP2) inhibitor in the postmitotic lens fiber cell compartment, and the ability to target transgene expression to this compartment. These attributes provide an ideal in vivo context in which to examine the consequences of forced cyclin expression and/or of loss of p57(KIP2) inhibitor function in a cellular compartment that permits an accurate quantitation of cellular proliferation and apoptosis rates in situ. Here, we demonstrate that, despite substantial overlap in cyclin transgene expression levels, D-type and E cyclins exhibited clear functional differences in promoting entry into S phase. In general, forced expression of the D-type cyclins was more efficient than cyclin E in driving lens fiber cells into S phase. In the case of cyclins D1 and D2, ectopic proliferation required their enhanced nuclear localization through CDK4 coexpression. High nuclear levels of cyclin E and CDK2, while not sufficient to promote efficient exit from G1, did act synergistically with ectopic cyclin D/CDK4. The functional differences between D-type and E cyclins was most evident in the p57(KIP2)-deficient lens wherein cyclin D overexpression induced a rate of proliferation equivalent to that of the pRb null lens, while overexpression of cyclin E did not increase the rate of proliferation over that induced by the loss of p57(KIP2) function. These in vivo analyses provide strong biological support for the prevailing view that the antecedent actions of cyclin D/CDK4 act cooperatively with cyclin E/CDK2 and antagonistically with p57(KIP2) to regulate the G1/S transition in a cell type highly dependent upon pRb.
Insights
Cyclin D proteins are more effective than cyclin E in driving cell cycle entry in mouse lenses. Their actions cooperate with cyclin E/CDK2 and oppose p57(KIP2) to control the G1/S transition.
Area of Science:
- Cell Biology
- Molecular Biology
- Developmental Biology
Background:
- The cell cycle's G1 to S phase transition is tightly regulated.
- The mouse lens provides a unique in vivo model for studying cell cycle control due to its dependence on pRb and specific cyclin/inhibitor expression patterns.
Purpose of the Study:
- To investigate the distinct roles of D-type and E cyclins in G1/S phase progression.
- To elucidate the interplay between cyclins, CDK inhibitors (like p57KIP2), and cell cycle regulators (like pRb) in vivo.
Main Methods:
- Utilizing transgenic mouse lens models to control cyclin D/E expression and p57KIP2 function.
- Quantifying cellular proliferation and apoptosis rates in situ within the lens fiber cell compartment.
Main Results:
- D-type cyclins (D1, D2) were more potent than cyclin E in inducing S phase entry, often requiring CDK4 coexpression for nuclear localization and activity.
- Cyclin E/CDK2 complexes synergized with cyclin D/CDK4 but were insufficient alone for efficient G1 exit.
- In p57KIP2-deficient lenses, cyclin D overexpression significantly increased proliferation, unlike cyclin E overexpression.
Conclusions:
- D-type cyclins initiate G1/S transition more effectively than cyclin E in this specific cell type.
- The findings support a model where cyclin D/CDK4 acts upstream of cyclin E/CDK2 and antagonizes p57KIP2 to regulate the G1/S checkpoint.
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