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[Determination of cyclic AMP and protein kinases in the diagnosis of colonic tumors].

The cAMP level and the activity of cAMP-dependent and independent protein kinases were measured in adenomatous polyps, villous polyps (premalignant condition) and adenocarcinomas. The cAMP concentration and ratio of cAMP level versus cAMP-independent casein kinase activity were significantly lower in adenocarcinomas compared to adenomatous polyps, thus permitting differentiation between benign and malignant lesions. The cAMP versus cAMP-dependent histone kinase level ratio was used as a test for differentiation between malignancies and premalignant condition. It was markedly lower in adenocarcinomas than in villous polyps.

Adenocarcinoma↗

T-loop deletion of CDC2 from breast cancer tissues eliminates binding to cyclin B1 and cyclin-dependent kinase inhibitor p21.

The eukaryotic cell cycle is regulated by a highly conserved family of protein kinases, the cyclin-dependent kinases (CDKs). Monomeric free CDKs do not possess enzymatic activity, largely due to the steric hindrance caused by the T-loop at the entrance of the catalytic cleft, making ATP inaccessible to the substrate. Binding of a cyclin, primarily to the NH2-terminal lobe of the CDK that surrounds the PSTAIRE helix, induces a large conformational change in the PSTAIRE helix of the CDK and also causes the T-loop to move out of the way of the catalytic cleft. We identified from breast cancer tissues a novel variant of human CDC2, termed CDC2deltaT, that lacks 171 nucleotides corresponding to 57 amino acids, which compose most of the T-loop. CDC2deltaT was detected in 10 of 14 breast cancer tissues analyzed, whereas it was not detectable in diploid human fibroblast cell lines or in interleukin 2-stimulated normal human lymphocytes. CDC2deltaT protein is unable to complex with cyclin B1 and lacks histone H1 kinase activity. CDC2deltaT also fails to bind to the CDK inhibitor p21. These results indicate that the T-loop not only plays a key role in keeping a free CDK in its inactive state but also in facilitating CDK activation by promoting cyclin binding.

Alternative Splicing↗

Characterization of protein phosphorylation of the cytosol of AH-66 hepatoma ascites cells.

Endogenous phosphorylation reaction of the cytosol fraction of AH-66 hepatoma ascites cells in vitro was compared with that of normal rat liver. Cytosolic proteins with molecular weights of 125,000, 98,000, and 40,000 of AH-66 cells were heavily phosphorylated in a cyclic adenosine 3':5'-monophosphate-independent manner, but no counterpart was detected in normal liver cytosol. In order to examine whether these phosphoproteins were specifically present in AH-66 cytosol, cyclic adenosine 3':5'-monophosphate-independent protein kinases which phosphorylate these phosphoproteins were partially purified from AH-66 and liver cytosol by successive chromatography. Both kinase preparations were essentially free of endogenous protein substrates and catalyzed the phosphorylation of exogenous substrates, such as casein and phosvitin, but not histone and protamine. Both kinases markedly catalyzed the phosphorylation of the Mr 125,000, 98,000, and 40,000 proteins in AH-66 cytosol. The Mr 125,000, 98,000 and 40,000 proteins in liver cytosol were less intensely phosphorylated by the addition of the kinase from AH-66 cytosol. From these results, we conclude that these phosphoproteins are present in both AH-66 cytosol and liver cytosol but are highly concentrated in AH-66 cytosol.

Animals↗

Mitotic role for the Cdc28 protein kinase of Saccharomyces cerevisiae.

The Cdc28 protein kinase functions in the G1 to S phase transition of the cell cycle of the budding yeast Saccharomyces cerevisiae. This is in contrast with observations of the homologous protein kinase from a variety of metazoans, where activity and function are associated with the G2 to M phase transition. We present evidence that the Cdc28 protein kinase is also required for mitosis and that this function is executed in the G2 interval of the cell cycle. We show, in addition, that the protein kinase is highly active during this phase of the cell cycle. The dual role of the Cdc28 protein kinase in the S. cerevisiae cell cycle thus parallels that demonstrated for the cdc2 protein kinase of the fission yeast Schizosaccharomyces pombe.

Hydroxyurea↗

A comment on the functional specificities of cyclic AMP-dependent and cyclic GMP-dependent protein kinases.

Cyclic AMP-dependent and cyclic GMP-dependent protein kinases (protein kinases A and G, respectively) utilize the same phosphate acceptor proteins when assayed in in vitro systems. Nevertheless, protein kinase A phosphorylates preferentially free histone, whereas protein kinase G greatly favors the histone which is associated with polydeoxyribonucleotide. On the other hand, when cytoplasmic soluble substrates such as phosphorylase kinase are used, the reactions are always more favorable for protein kinase A rather than for protein kinase G. Available evidence implies that the topographic relationship between enzyme and substrate may be an important determining factor for the functional specificities of these two classes of protein kinases.

Cyclic AMP↗

The cdc2-related protein p40MO15 is the catalytic subunit of a protein kinase that can activate p33cdk2 and p34cdc2.

Activation of the cyclin-dependent protein kinases p34cdc2 and p33cdk2 requires binding with a cyclin partner and phosphorylation on the first threonine residue in the sequence THEVVTLWYRAPE. We present evidence that this threonine residue, number 160 in p33cdk2, can be specifically phosphorylated by a cdc2-related protein kinase from Xenopus oocytes called p40MO15. Binding to cyclin A and phosphorylation of this threonine are both required to activate fully the histone H1 kinase activity of p33cdk2. In cell extracts, a portion of p40MO15 is found in a high molecular weight complex that is considerably more active than a lower molecular weight form. Wild-type MO15 protein expressed in bacteria does not possess kinase activity, but acquires p33cdk2-T160 kinase activity after incubation with cell extract and ATP. We conclude that p40MO15 corresponds to CAK (cdc2/cdk2 activating kinase) and speculate that, like p33cdk2 and p34cdc2, p40MO15 requires activation by phosphorylation and association with a companion subunit.

Adenosine Triphosphate↗

Adhesion-dependent control of cyclin E/cdk2 activity and cell cycle progression in normal cells but not in Ha-ras transformed NRK cells.

Loss of adhesion of NRK fibroblasts to an appropriate surface leads to cell cycle arrest in late G1 and failure to produce cyclin A. Previously, we showed that adhesion-dependent expression of cyclin A is transcriptionally regulated. In an effort to identify elements of the adhesion-mediated signal transduction cascade upstream of cyclin A activation, we investigated the expression of cyclin E and its associated kinase activity in adherent and suspended NRK cells. Expression of cyclin E was found to be unaffected by suspension. However, cyclin E complexes immunoprecipitated from extracts prepared from NRK cells 12 h after release from G0 arrest were found to be catalytically inactive in suspended but not in adherent cells. This suspension-induced inhibition of cyclin E-associated kinase activity was not observed in NRK cells transformed by a c-Ha-ras oncogene containing a G12V mutation. When G0-synchronized NRK cells were transfected with a cyclin A promoter:luciferase reporter construct along with expression vectors for either wild-type cdk2 or a dominant-negative cdk2 mutant, transcriptional activation of cyclin A was found to be dependent on catalytically active cdk2. Inhibition of cyclin E/cdk2 complexes has frequently been attributed to association of the cdk inhibitors p21(Cip1) and p27(Kip1). However, no differences between adherent and suspended cells could be observed for either expression or cdk2 association of p21(Cip1) or p27(Kip1), nor were any proteins specifically associated with cdk2 or cyclin E in immunoprecipitates from metabolically labeled cell extracts. These results define a pathway through which an adhesion-generated signal controls cyclin A expression by modulating cyclin E/cdk2 activity.

Animals↗

MPF is activated in growing immature Xenopus oocytes in the absence of detectable tyrosine dephosphorylation of P34cdc2.

Tyrosine-phosphorylated p34cdc2 and cyclin B2 are present and physically associated in small growing stage IV oocytes (800 microns in diameter) of Xenopus laevis. Microinjection of M-phase promoting factor (MPF) into stage IV oocytes induces germinal vesicle breakdown and the activation of the kinase activity of the p34cdc2/cyclin B2 complex measured on p13suc1 beads. During the in vivo activation of MPF in stage IV oocytes, p34cdc2 tyrosine dephosphorylation is not detectable, in contrast to stage VI oocytes. Addition of cycloheximide in MPF-injected stage IV oocytes induces neither the inhibition of histone H1 kinase activity nor the cyclin B2 degradation. Therefore, the activation mechanism of histone H1 kinase in stage IV oocytes does not require detectable tyrosine dephosphorylation of p34cdc2. It is suggested rather that the tyrosine phosphorylation of p34cdc2 plays a role in inhibiting cyclin B2 degradation.

Animals↗

Full activation of p34CDC28 histone H1 kinase activity is unable to promote entry into mitosis in checkpoint-arrested cells of the yeast Saccharomyces cerevisiae.

In most cells, mitosis is dependent upon completion of DNA replication. The feedback mechanisms that prevent entry into mitosis by cells with damaged or incompletely replicated DNA have been termed checkpoint controls. Studies with the fission yeast Schizosaccharomyces pombe and Xenopus egg extracts have shown that checkpoint controls prevent activation of the master regulatory protein kinase, p34cdc2, that normally triggers entry into mitosis. This is achieved through inhibitory phosphorylation of the Tyr-15 residue of p34cdc2. However, studies with the budding yeast Saccharomyces cerevisiae have shown that phosphorylation of this residue is not essential for checkpoint controls to prevent mitosis. We have investigated the basis for checkpoint controls in this organism and show that these controls can prevent entry into mitosis even in cells which have fully activated the cyclin B (Clb)-associated forms of the budding yeast homolog of p34cdc2, p34CDC28, as assayed by histone H1 kinase activity. However, the active complexes in checkpoint-arrested cells are smaller than those in cycling cells, suggesting that assembly of mitosis-inducing complexes requires additional steps following histone H1 kinase activation.

CDC28 Protein Kinase, S cerevisiae↗

Induction of A- and D-type cyclins and cdc2 kinase activity during recovery from short-term hyperoxic lung injury.

Hyperoxia causes a reproducible pattern of lung injury and repair in rodents, in which proliferation of alveolar epithelial cells (AEC) and fibroblasts is observed during recovery. We postulated that if quiescent cells are stimulated to reenter the cell cycle, then cyclin expression and cyclin-dependent protein kinase activity would be reactivated in AEC during the repair process after hyperoxic lung injury. To test this hypothesis, we exposed adult rats to short-term hyperoxia, followed by recovery for various times in room air. Cellular proliferation in vivo was confirmed by 1) flow cytometric analysis of DNA content (FACS) of freshly isolated AEC and 2) immunohistochemistry of proliferating cell nuclear antigen (PCNA) and bromodeoxyuridine (BrdU) incorporation into DNA on lung sections. The percentage of freshly isolated AEC in S phase and G2/M phase on FACS analysis increased twofold to a maximum of 16.5%, after 48 h in 100% oxygen and 48 h recovery in air. Cyclins A and D and p34cdc2 protein expression were also increased during the recovery period; while p33cdk2 and p34cdk4 increased only slightly. p34cdc2 histone H1 kinase activity, both in whole lung and in AEC, decreased initially after 48 h in oxygen. However, a marked increase in p34cdc2 kinase activity was observed at 48 h recovery in whole lung and returned to baseline by 72 h. In isolated and cultured AEC, p34cdc2 kinase activity was maximal at 24 h of recovery in air. We conclude that cyclins A and D and p34cdc2 protein expression and p34cdc2 kinase activity are increased in vivo during recovery from hyperoxic lung injury in both adult rat lungs and in AEC isolated from these lungs. We speculate that the induction of cyclin-dependent protein kinase activity is a key event in mediating the proliferative cellular repair response to lung injury.

Acute Disease↗

Contrasting patterns of protein kinase activities among normal peripheral blood lymphocyte subpopulations and lymphoid cell lines.

Human peripheral mononuclear cell suspensions were separated into E-rosette-positive (T cell) and E-rosette-negative (non-T cell) fractions and assayed for cAMP binding activity and histone and casein kinase activity, in the presence and absence of cAMP. Each of these activities was higher in E-rosette-positive than E-rosette-negative fractions. Cyclic AMP binding and histone kinase activities were further noted to be higher in T lymphoblastoid cell lines when compared to lines of non-T lymphoid cell origin. In addition. DEAE-cellulose chromatography revealed a qualitative contrast of isoenzymic composition of protein kinase from these cell lines. Cyclic AMP-independent casein kinase activity was high in both types of cell lines. These results suggest that high protein kinase activity is characteristic of T cells and may be related to their higher sensitivity to cAMP agonists in comparison to non-T cells. This study also provides further evidence for an association between increased cAMP-independent protein kinase activity and the transformed state, which has been noted for a variety of other cell types.

Binding Sites↗

Role of nuclear histone-H1 kinase in regeneration of rat liver.

The activities of nuclear histone-H1 kinase and C-kinase as well as the amount of phosphate bound to histone-H1 following partial hepatectomy were studied in rat. It was found that the nuclear histone-H1 kinase activity increased twice within 80 h, first 20 to 30 h, and second at 50 to 70 h after partial hepatectomy. The timing of increase of the enzyme activity correlated with increased amount of bound phosphate. On the other hand, the increase of the C-kinase activities occurred between 5 and 15 h after partial hepatectomy. Antibodies raised against human cdk2, human cyclin-A and mouse cdc2 kinase showed no detectable effect on the nuclear histone H1 kinase activity. These results suggest that phosphorylation of histone-H1 in liver regeneration may be catalysed by a putative kinase(s).

Animals↗

Cdk4 integrates growth stimulatory and inhibitory signals during G1 phase of hematopoietic cells.

Proliferation of hematopoietic cells is controlled by both growth stimulatory and inhibitory cytokines acting primarily in G1, but the mechanisms which integrate these disparate signals are unknown. In a myeloid cell line dependent on interleukin-3 (IL-3) for proliferation, expression of the cyclin dependent kinase Cdk4 and D-type cyclin partners, D2 and D3, in mid G1 was found to be directly related to the concentration of IL-3. TGF beta 1, which induces cell cycle arrest in mid-G1, blocked IL-3-induced expression of Cdk4, but had no effect on expression of cyclins D2 or D3. Sublines made to constitutively express Cdk4, but not lines constitutively expressing cyclins D2 or D3, were hyper responsive to IL-3 and resistant to TGF beta 1. Using an in vitro kinase assay with recombinant retinoblastoma protein (Rb) as a substrate, cyclin D2-associated kinase activity was shown to be induced in G1 by IL-3 and inhibited by TGF beta 1. Constitutive expression of Cdk4, but not cyclin D2 or D3, increased cyclin D2-associated Rb kinase activity and this activity could no longer be inhibited by TGF beta 1. Also, in vivo phosphorylation of Rb was inhibited by TGF beta 1 in wild type but not in Cdk4 lines. Cdk2 kinase activity was also decreased by TGF beta 1, and restored by overexpression of Cdk4. These results implicate Cdk4 activity as a mid G1 checkpoint sensitive to both growth stimulatory and inhibitory cytokines.

Animals↗