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Targeted disruption of CDK4 delays cell cycle entry with enhanced p27(Kip1) activity
T Tsutsui1, B Hesabi, D S Moons
1Department of Molecular Genetics, Cancer Center, University of Illinois College of Medicine, Chicago, Illinois 60607, USA.
Abstract:
The mechanism by which cyclin-dependent kinase 4 (CDK4) regulates cell cycle progression is not entirely clear. Cyclin D/CDK4 appears to initiate phosphorylation of retinoblastoma protein (Rb) leading to inactivation of the S-phase-inhibitory action of Rb. However, cyclin D/CDK4 has been postulated to act in a noncatalytic manner to regulate the cyclin E/CDK2-inhibitory activity of p27(Kip1) by sequestration. In this study we investigated the roles of CDK4 in cell cycle regulation by targeted disruption of the mouse CDK4 gene. CDK4(-/-) mice survived embryogenesis and showed growth retardation and reproductive dysfunction associated with hypoplastic seminiferous tubules in the testis and perturbed corpus luteum formation in the ovary. These phenotypes appear to be opposite to those of p27-deficient mice such as gigantism and gonadal hyperplasia. A majority of CDK4(-/-) mice developed diabetes mellitus by 6 weeks, associated with degeneration of pancreatic islets. Fibroblasts from CDK4(-/-) mouse embryos proliferated similarly to wild-type embryonic fibroblasts under conditions that promote continuous growth. However, quiescent CDK4(-/-) fibroblasts exhibited a substantial ( approximately 6-h) delay in S-phase entry after serum stimulation. This cell cycle perturbation by CDK4 disruption was associated with increased binding of p27 to cyclin E/CDK2 and diminished activation of CDK2 accompanied by impaired Rb phosphorylation. Importantly, fibroblasts from CDK4(-/-) p27(-/-) embryos displayed partially restored kinetics of the G(0)-S transition, indicating the significance of the sequestration of p27 by CDK4. These results suggest that at least part of CDK4's participation in the rate-limiting mechanism for the G(0)-S transition consists of controlling p27 activity.
Insights
Cyclin-dependent kinase 4 (CDK4) controls cell cycle progression by regulating p27 activity. CDK4 disruption delays cell cycle entry and impacts reproductive and metabolic functions.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- The precise role of cyclin-dependent kinase 4 (CDK4) in cell cycle regulation remains incompletely understood.
- CDK4 is implicated in retinoblastoma protein (Rb) phosphorylation and potentially in sequestering p27(Kip1).
Purpose of the Study:
- To elucidate the function of CDK4 in cell cycle control through gene disruption in mice.
- To investigate the interaction between CDK4 and p27(Kip1) in cell cycle regulation.
Main Methods:
- Targeted disruption of the mouse CDK4 gene to create CDK4 knockout (CDK4(-/-)) mice.
- Analysis of developmental, reproductive, and metabolic phenotypes in CDK4(-/-) mice.
- Cell cycle analysis of primary fibroblasts from CDK4(-/-) and CDK4(-/-) p27(-/-) mouse embryos.
Main Results:
- CDK4(-/-) mice exhibited growth retardation, reproductive dysfunction, and diabetes mellitus.
- Quiescent CDK4(-/-) fibroblasts showed delayed S-phase entry, increased p27 binding to cyclin E/CDK2, and reduced CDK2 activation.
- Simultaneous deletion of p27 in CDK4(-/-) fibroblasts partially restored G(0)-S transition kinetics.
Conclusions:
- CDK4 plays a critical role in the G(0)-S transition by regulating p27 activity through sequestration.
- CDK4's function extends beyond Rb phosphorylation to include modulation of cyclin E/CDK2 activity via p27.
- CDK4 is essential for normal development, reproduction, and metabolic homeostasis.