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A nonproteolytic function of the proteasome is required for the dissociation of Cdc2 and cyclin B at the end of M phase.

Inactivation of cyclin B-Cdc2 kinase at the exit from M phase depends on the specific proteolysis of the cyclin B subunit, whereas the Cdc2 subunit remains present at nearly constant levels throughout the cell cycle. It is unknown how Cdc2 escapes degradation when cyclin B is destroyed. In Xenopus egg extracts that reproduce the exit from M phase in vitro, we have found that dissociation of the cyclin B-Cdc2 complex occurred under conditions where cyclin B was tethered to the 26S proteasome but not yet degraded. The dephosphorylation of Thr 161 on Cdc2 was unlikely to be necessary for the dissociation of the two subunits. However, the dissociation was dependent on the presence of a functional destruction box in cyclin B. Cyclin B ubiquitination was also, by itself, not sufficient for separation of Cdc2 and cyclin B. The 26S proteasome, but not the 20S proteasome, was capable of dissociating the two subunits. These results indicate that the cyclin B and Cdc2 subunits are separated by the proteasome through a mechanism that precedes proteolysis of cyclin B and is independent of proteolysis. As a result, cyclin B levels decrease on exit from M phase but Cdc2 levels remain constant.

Animals↗

Mitogen-responsive S6 kinase.

Many cell lines respond to mitogenic stimuli (serum, growth factors) with rapid phosphorylation of the ribosomal protein S6 at several serine sites. We have tried to identify the protein kinase(s) mediating this effect of growth stimuli. Examining post-DEAE chromatography fractions of S49 kin- cell extracts, we could detect a highly active effector-independent S6 kinase with specificity for serine residues. The study was extended to the presumably homologous human enzyme, using HeLa S3 cells as model system. Activity yields increased up to sevenfold when exhausted HeLa cells were supplied with fresh medium plus serum. The enzyme uses ATP, not GTP, as cosubstrate, 40-S or 80-S (reassociated from subunits) ribosomal particles being substrate. The optimal K+ concentration, measured at 3 mM Mg2+, is 35 mM. Under optimized assay conditions S6 phosphorylation proceeded faster in vitro than it appeared to do in vivo. The apparent Mr of the enzyme, as estimated by gel filtration on Sephadex G-100, is 56,000 (determination in the presence of 200 mM KCl in 25 mM phosphate buffer). Tighter binding to DEAE-Sephacel and higher specificity for S6 distinguishes this enzyme from the following S6-phosphorylating protein kinases: protein kinase C, protease-activated kinase II, histone-4 phosphotransferase and an enzyme with the properties of casein kinase I. In published summaries of observations shown here and in a follow-up study with chick embryo fibroblasts, the enzyme(s) has been referred to as mitogen-responsive S6 kinase(s) [Martini, O. H. W. and Lawen, A. (1985) in Hormones and cell regulation (Dumont, J. E., Hamprecht, B. and Nunez, J., eds) vol. 9, pp. 411-412, Elsevier Company, North-Holland, Amsterdam; Lawen, A. and Martini, O. H. W. (1985) FEBS Lett. 185, 272-276].

Adenosine Triphosphate↗

Direct interaction of p21 with p50, the small subunit of human DNA polymerase delta.

Using a yeast two-hybrid screening technique and the p50 subunit of human DNA polymerase delta (pol delta) as a bait, p21 was found to interact with the p50 subunit of pol delta. A direct interaction between p21 and p50 was confirmed by using ELISA and pull-down assays with purified proteins. The interaction sites between p50 and p21 were mapped by pull down assays with GST deletion mutants. Residues 127-193 constitute the primary interaction region on p50 to which p21 binds, while p50 binds to the C-terminal 26 residues of p21. A histone kinase activity was associated with the highly purified calf thymus pol delta and addition of purified recombinant p21 inhibited the kinase activity in a dose dependent manner. p50 is phosphorylated in vivo and can be phosphorylated by CDK2/cyclinA in vitro. In vivo evidence of p21 association with p50 was obtained by coimmunoprecipitation using MCF7 cells. It was also shown that the association of p21 with p50 and other components of the pol delta complex increased in MCF7 cells treated with adriamycin. Our results suggested that p50 might target or anchor p21 to pol delta complex upon certain DNA damage such as adriamycin treatment.

Cyclin-Dependent Kinase 2↗

The role of proteolysis in cell cycle progression in Schizosaccharomyces pombe.

A cell-free system derived from Xenopus eggs was used to identify the 'destruction box' of the Schizosaccharomyces pombe B-type cyclin, Cdc13, as residues 59-67: RHALDDVSN. Expression of indestructible Cdc13 from a regulated promoter in S.pombe blocked cells in anaphase and inhibited septation, showing that destruction of Cdc13 is necessary for exit from mitosis, but not for sister chromatid separation. In contrast, strong expression of a polypeptide comprising the N-terminal 70 residues of Cdc13, which acts as a competitive inhibitor of destruction box-mediated proteolysis, inhibited both sister chromatid separation and the destruction of Cdc13, whereas an equivalent construct with a mutated destruction box did not. Appropriately timed expression of this N-terminal fragment of Cdc13 overcame the G1 arrest seen in cdc10 mutant strains, suggesting that proteins required for the initiation of S phase are subject to destruction by the same proteolytic machinery as cyclin.

Amino Acid Sequence↗

The effect of triiodothyronine on myocardial protein kinases.

Rats treated with T3 (triiodothyronine) showed an increased heart weight after 3 days reaching 100% after 3 weeks of treatment compared to untreated controls. Cytosol protein kinases were not significantly different in the T3 treated rats compared to controls. The protein kinase activity of the NHP (nonhistone proteins) increased after 2 hours and doubled after 3 days for each substrate tested. After 1 week of T3 treatment the protein kinase activity returned to the control value and remained at the control level for the remainder of the 3 week experimental period. A study of the distribution of protein kinase activity in the NHP by disc gel electrophoresis showed that there was a difference in the distribution of some peaks in the T3 treated animals compared to the controls. T3 in concentrations from 10(-11) to 10(-3) M had no in vitro effect on the phosvitin kinase activity of NHP and of cytosol.

Animals↗

Cyclic AMP-dependent and independent protein kinases in Ascaridia galli.

The occurrence of multiple protein kinases, distinguished with respect to molecular weight and preference for acceptor proteins, was demonstrated in Ascaridia galli. The molecular weights of the cyclic AMP-dependent protein kinase and of phosvitin kinase I and II - both independent of cyclic AMP-were determined to be 160000, greater than 200000 and 40000, respectively. The cyclic AMP-dependent protein kinase preferred histones and kemptide as acceptor substrates; stimulation of enzyme activity was up to 4-fold by cyclic AMP. The activities of phosvitin kinase I and II were found to be effectively inhibited by suramin. The inhibition constants were calculated to be 2 microM and 5 microM, respectively. In addition, stibophen turned out to be a potent inhibitor of phosvitin kinase I; the inhibition constant was determined to be 10 microM.

Animals↗

Characterization and follicle stimulating hormone activation of Sertoli cell cyclic AMP-dependent protein kinases.

The Sertoli cell of the rat testis contains two cytoplasmic forms of adenosine 3',5' monophosphate (cyclic AMP)-dependent protein kinase, designated as Peak I and Peak II, which change in relative proportion during Sertoli cell maturation. Peak I and Peak II differ in their subunit interaction. Thus, while the substrates, ATP and histone, affect cyclic AMP binding to Peak I, neither of these compounds affect the binding of cyclic AMP to the Peak II enzyme. The effects of cyclic AMP binding to Peak I appear to be due to the fact that histone and high ionic strength cause dissociation of the Peak I holoenzyme, whereas ATP stabilizes the holoenzyme complex against dissociation. The Peak II holoenzyme is not affected by either salt of histone and is only dissociated by cyclic AMP. Once dissociated, the subunits of Peak II will rapidly reassociate under low salt conditions whereas the subunits of Peak I will not reassociate. By utilizing the distinct properties of Peak I and Peak II, it is possible to demonstrate the activation of both Peak I and Peak II Sertoli cell protein kinase in response to FSH.

Animals↗

Protein kinases in neutrophils: a review.

In chemotactic factor-stimulated neutrophils, rapid increases of intracellular levels of cyclic AMP, calcium, and diacylglycerol have been observed and may be linked to protein kinase activation. The study of the physiological role and regulation of protein kinases in the neutrophil and the identification of their substrates has provided valuable information on the molecular mechanism of neutrophil activation. The focus of this review is on those aspects of protein kinases that are relevant to neutrophil activation and on the substrate proteins for these protein kinases. The possible role of protein phosphorylation in neutrophil function is also discussed.

Animals↗

Identification of multiple protein kinases in normal human lymphocytes.

The protein kinase activity of a 10,000 g supernatant of purified human lymphocytes can be resolved by DEAE-cellulose chromatography into six protein kinase fractions: three of them phosphorylate casein preferentially, and three histones. The same procedure with the corresponding nuclear fraction yields only two casein kinases. All these fractions, except one casein kinase of the cytosol, have been studied with respect to protein and nucleotide specificity, effect of salts and of cyclic nucleotides, sedimentation, etc. The results obtained indicate that the enzyme fractions of the cytosol have distinct characteristics, suggesting that they are different protein kinases, and that the nuclear kinases are similar to the two main casein kinases of the cytosol.

Caseins↗

Role of GTPase activating protein in mitogenic signalling through phosphatidylcholine-hydrolysing phospholipase C.

Recent evidence has accumulated showing that activation of PLC-catalysed hydrolysis of phosphatidylcholine (PC-PLC) is a critical step in mitogenic signal transduction both in fibroblasts and in oocytes from Xenopus laevis. The products of ras genes activate PC-PLC, bind guanine nucleotides, have intrinsic GTPase activity, and are regulated by a GTPase-activating protein (GAP). It has been suggested that, in addition to its regulatory properties, GAP may also be necessary for ras function as a downstream effector molecule. In this study, evidence is presented that strongly suggests that the functional interaction between ras p21 and GAP is sufficient and necessary for activation of maturation promoting factor (MPF) H1-kinase activity in oocytes, and that PC hydrolysis is critically involved in this mechanism. Therefore, we identify GAP as a further step required for signalling through PC-PLC, and necessary for the control of oocyte maturation in response to ras p21/insulin but not to progesterone.

Animals↗

Regulatory phosphorylation of the p34cdc2 protein kinase in vertebrates.

The p34cdc2 protein kinase is a conserved regulator of the eukaryotic cell cycle. Here we show that residues Thr14 and Tyr15 of mouse p34cdc2 become phosphorylated as mouse fibroblasts proceed through the cell cycle. We have mutated these residues and measured protein kinase activity of the p34cdc2 variants in a Xenopus egg extract. Phosphorylation of residues 14 and 15, which lie within the presumptive ATP-binding region of p34cdc2, normally restrains the protein kinase until it is specifically dephosphorylated and activated at the G2/M transition. Regulation by dephosphorylation of Tyr15 is conserved from fission yeast to mammals, while an extra level of regulation of mammalian p34cdc2 involves Thr14 dephosphorylation. In the absence of phosphorylation on these two residues, the kinase still requires cyclin B protein for its activation. Inhibition of DNA synthesis inhibits activation of wild-type p34cdc2 in the Xenopus system, but a mutant which cannot be phosphorylated at residues 14 and 15 escapes this inhibition, suggesting that these phosphorylation events form part of the pathway linking completion of DNA replication to initiation of mitosis.

3T3 Cells↗

Activation of cyclin E-dependent kinase by DNA-damage signals during apoptosis.

Preexposure of HL-60 cells to a DNA-damaging agent, cytosine arabinoside (Ara-C), dramatically induced the levels of H1 kinase activities associated with cyclin E (CycE-H1K) but not cyclin A. This induction was cell cycle-independent and accompanied by loss of cell viability, a late event in apoptosis. When an Ara-C-resistant variant of HL-60 cells were treated with Ara-C at a low concentration, neither CycE-H1K nor apoptosis were observed. Both events were induced in the resistant cells but only after treatment with Ara-C at a much higher concentration for a longer period. The DNA-damage-induced CycE-H1K is proposed to be involved in a late apoptosis checkpoint.

Antimetabolites, Antineoplastic↗