Cyclin-dependent kinases (CDKs) are CDC2 (116940)-related kinases that bind to cyclin to form active holoenzymes that play a pivotal role in the regulation of the eukaryotic cell cycle.
General function
Cell cycle regulation
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Cellular localization
Cytoskeleton
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Ovarian function
Oogenesis
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Cdk5/p35 expression in the mouse ovary.
Lee KY, et al .
Cyclin-dependent kinase 5 (Cdk5) is primarily associated with brain development but it is also implicated in lens and muscle differentiation. We found that Cdk5 is also expressed in mouse ovary, and explored the possibility that it plays a role in that tissue. We show by Western blotting and immunohistochemistry that the known Cdk5 activator, p35, is also present in the mouse ovary. Cdk5 and p35 were detected in oocytes at all stages of the follicle. While Cdk5 was present in the cytoplasm and nucleus of the oocyte, p35 was observed only in the cytoplasm. Both proteins were detected in the cytoplasm of luteinized cells in the corpus luteum. Immunoprecipitation and histone H1 kinase assays revealed that they form an ovarian complex with considerable kinase activity. Phosphorylation assays showed that several ovarian proteins are substrates for Cdk5/p35 in vitro. Together our findings suggest that p35-associated Cdk5 activity plays an important role in the ovary, where it may regulate cell differentiation and apoptosis as it does in the brain.
CDK5 is present in sea urchin and starfish eggs and embryos and can interact with p35, cyclin E and cyclin B3. Lozano JC et al. While most cyclin-dependent kinases (CDKs) are involved in cell cycle control, CDK5 is mostly known for crucial functions in neurogenesis. However, we cloned sea urchin CDK5 from a two-cell stage cDNA library and found that the protein is present in eggs and embryos, up to the pluteus stage, but without associated kinase activity. To investigate the potential for nonneuronal roles, we screened a starfish cDNA library with the yeast two-hybrid system, for possible CDK5 partners. Interactions with clones expressing part of cyclin B3 and cyclin E proteins were found and the full-length cyclins were cloned. These interactions were verified in vitro but not in extracts of starfish oocytes and embryos, at any stages, despite the presence of detectable amounts of CDK5, cyclin B3, and cyclin E. We then looked for p35, the CDK5-specific activator, and cloned the sea urchin ortholog. A sea urchin-specific anomaly in the amino acid sequence is the absence of N-terminal myristoylation signal, but nucleotide environment analysis suggests a much higher probability of translation initiation on the second methionine(Met44), that is associated with a conserved myristoylation signal. p35 was found to associate with CDK5 and, when bacterially produced, to confer protein kinase activity to CDK5 immunoprecipitated from sea urchin eggs and embryos. However, p35 mRNA expression was found to begin only at the end of the blastula stage, and the protein was undetectable at any embryonic stage, suggesting a neuronal role beginning in late larval stages. Mol. Reprod. Dev. (c) 2010 Wiley-Liss, Inc.
Expression regulated by
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Ovarian localization
Oocyte, Luteal cells
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Characterization of a novel human CDK5 splicing variant that inhibits Wnt/beta-catenin signaling. Li Q et al. The cyclin-dependent kinases (CDKs) are a family of serine/threonine kinases, playing an essential role in regulating cell-cycle progression. In our present work, human CDK5 and a novel CDK5 splicing variant, named as CDK5-SV, were cloned from the cDNA library of human testis. CDK5-SV lacking the exon 7 of CDK5 encodes a protein of 260 amino acids. Through RT-PCR analysis in different human tissues, CDK5-SV was found to be expressed in testis, skeletal muscle, colon, bone marrow and ovary, while CDK5 was ubiquitously expressed. Immunofluorescence experiment in HeLa cells showed that the subcellular localizations of CDK5-SV and CDK5 were totally different. CDK5 mainly located in the cytoplasm, while CDK5-SV accumulated in nucleus. Reporter gene assay showed that when co-transfected with beta-catenin, CDK5 and CDK5-SV could both strongly inhibit the Wnt/beta-catenin signaling pathway. Consistently, CDK5-SV could also interact with beta-catenin as CDK5 does. Taken together, our findings suggest that CDK5-SV might also be a negative regulator of Wnt/beta-catenin signaling pathway.