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The oocyte nucleus isolated in oil retains in vivo structure and functions.

We describe a technique for isolating the nucleus of the giant amphibian oocyte under paraffin oil. The method precludes the losses of small solutes and proteins that accompany isolation of nuclei into aqueous media. An individual oocyte is blotted, placed under oil, punctured near the animal pole and then squeezed to gently extrude the nucleus into the oil, thereby avoiding exposure to any aqueous environment. Light and electron microscopy of the oil-isolated nucleus demonstrate that its in vivo morphology is preserved. We also describe techniques that facilitate the study of nuclear functions under oil. Oil-isolated oocyte nuclei retain many in vivo functions for several hours, including size-selective envelope permeability, RNA synthesis and the ability to break down in response to cdc2/cyclin meiotic maturation promoting factor.

Animals

Towards understanding the control of the division cycle in animal cells.

The author reviewed the historical process by which classical knowledge of cell division accumulated, to give rise to the molecular biology of the cell cycle, and discussed the perspective of this field of research. The study of the control of cell division began at the turn of the century. It was hypothesized that cell division was a physiological regulation necessary for growing cells to maintain a proper nucleocytoplasmic ratio to survive, which was later substantiated by the finding that amoeba cells could be prevented from dividing by repeated excision of the cytoplasm. However, the observation in Tetrahymena that heat-shocked cells grow exceedingly, but fail to divide, suggested that the cell required the accumulation of a labile "division protein" to initiate division. Mechanisms that control the cell cycle were studied in oocytes by nuclear transplantation and cytoplasmic transfer, and in cultured mammalian cells, protozoa, and Physarum plasmodia by cell fusion. These experiments demonstrated the existence of cytoplasmic factors that control the cell cycle. Maturation promoting factor (MPF) thus discovered in frog oocytes became known to be an ubiquitous cytoplasmic factor that causes the transition from interphase to metaphase in all organisms. The insight into the molecular control of cell growth and division was gained from yeast cell genetics. For biochemical analysis of the cell cycle control, the method to observe the cell cycle in vitro was developed using frog egg extracts. Thus, MPF was identified as a cdc2--cyclin protein complex. Its activity was found to depend on synthesis and phosphorylation of these proteins. However, recently it was found that there were cell cycle phenomena that were difficult to explain in these terms. Various other cellular factors, including nucleocytoplasmic ratio and microtubule assembly, were also found to control MPF, as well as the cell cycle. It remained open to future how these factors control MPF to alter the pattern of the cell cycle.

Animals

Control of microtubule nucleating activity in the cytoplasm of maturing mouse oocytes.

Taxol, a drug which promotes microtubule assembly, was used to assess the microtubule nucleating activity of pericentriolar material (PCM) in mouse oocytes prevented from undergoing germinal vesicle breakdown (GVBD), compared with oocytes allowed to proceed normally through GVBD and also in nucleate and anucleate oocyte fragments. Both immunofluorescence staining and ultrastructural analysis reveal that taxol induces aster formation in the cortex of oocytes undergoing GVBD, while formation of a continuous sheet of microtubule bundles parallel to the membrane is induced in metabolically GV-arrested oocytes. Since taxol also induces the formation of asters in anucleate as well as in nucleate oocyte fragments, provided they are not treated with activators of protein kinases A or C, it is concluded that microtubule nucleating activity is related to the acquisition of Maturation Promoting Factor (MPF) and does not require mixing between the nucleoplasm and cytoplasm.

1-Methyl-3-isobutylxanthine

Animal models in micromanipulation.

Micromanipulation is a useful technique for various studies of reproductive biology. Using this technique, we investigated the role of cAMP in the regulation of oocyte maturation. Anti cAMP serum was microinjected into oocyte cytoplasma. Immature oocytes resumed meiosis after microinjection and this result shows oocyte cAMP to be important for the intrafollicular meiotic arrest of oocyte and its decrease to cause resumption of meiosis. We also determined maturation promotion factor (MPF) activity in the mouse egg. Microinjection of cytoplasma from mature egg induced geminal vesicle break down of immature oocyte in the presence of dbcAMP. In addition, we detected MPF activity in cytoplasma of metaphase II oocyte. Some of the initial events of sperm-induced egg activation are accompanied by hydrolysis of phosphatidyl inositol which generates inositol trisphosphate (IP3). Mouse eggs microinjected with increasing concentration of IP3 revealed concentration dependent increase in conversion of the zona glycoprotein ZP2 to ZP2f. Modification of zona pellucida elicited by microinjection of IP3 are similar to those that occur following fertilisation. We also microinjected some cytoplasma of morula or 2 cell mouse embryo into 1 cell embryo of ICR mouse. After microinjection and culture, most of the embryo that reached 4 cells stage and 2 cell block of ICR mouse embryo was released significantly. These results suggest that some cytoplasmic factor(s) is a requisite for the development of embryo after fertilisation.

Animals

A novel homo-oligomeric protein responsible for an MPF-dependent microtubule-severing activity.

An activity that severs stable microtubules has previously been detected in M phase extracts, but not in interphase extracts, of Xenopus eggs. We show that incubation of interphase extracts with purified MPF rapidly increases the microtubule-severing activity. We then report the identification and purification of a novel protein factor responsible for this MPF-dependent microtubule-severing activity. The purified microtubule-severing factor is a homo-oligomeric protein composed of 56 kDa polypeptide subunits. These subunits appear to assemble into a pentagonal loop, forming a doughnut-shaped molecule whose overall contours resemble a flattened ball. The microtubule-severing activity of the purified factor does not require ATP or divalent cations, and is inhibited by monomeric tubulin. The purified factor is capable of binding to both monomeric tubulin and microtubules. This factor is thus a novel kind of microtubule-binding protein in both structure and function, and may play an important role in the cell cycle-dependent change in microtubule organization.

Animals

Regulation of the G2-mitosis transition.

The cell cycle is regulated by pathways composed of a dependent series of steps, by timers, and by checkpoint controls which ensure the completion of one event before the initiation of another. This review focuses on the regulation of the initiation of mitosis, with particular emphasis on the regulation of p34cdc2 activity at this point in the cell cycle. The review draws on data from various organisms, but strongly emphasizes the genetic framework as seen in the fission yeast Schizosaccharomyces pombe and the biology and biochemistry of maturation promoting factor in frog oocytes. An attempt is made to include all known genes and proteins where a link can be made to the initiation event. The nutritional size control and its major known controlling elements, the wee1/mik1 protein kinases, and cdc25 protein tyrosine phosphatase are considered in detail along with their regulation. In addition, the checkpoint control pathways which mediate G2 delay in response to failure of DNA replication or DNA damage are examined.

Animals

Sister chromatid separation in frog egg extracts requires DNA topoisomerase II activity during anaphase.

We have produced metaphase spindles and induced them to enter anaphase in vitro. Sperm nuclei were added to frog egg extracts, allowed to replicate their DNA, and driven into metaphase by the addition of cytoplasm containing active maturation promoting factor (MPF) and cytostatic factor (CSF), an activity that stabilizes MPF. Addition of calcium induces the inactivation of MPF, sister chromatid separation and anaphase chromosome movement. DNA topoisomerase II inhibitors prevent chromosome segregation at anaphase, demonstrating that the chromatids are catenated at metaphase and that decatenation occurs at the start of anaphase. Topoisomerase II activity towards exogenous substrates does not increase at the metaphase to anaphase transition, showing that chromosome separation at anaphase is not triggered by a bulk activation of topoisomerase II.

Anaphase

cdc25+ encodes a protein phosphatase that dephosphorylates p34cdc2.

To determine how the human cdc25 gene product acts to regulate p34cdc2 at the G2 to M transition, we have overproduced the full-length protein (cdc25Hs) as well as several deletion mutants in bacteria as glutathione-S-transferase fusion proteins. The wild-type cdc25Hs gene product was synthesized as an 80-kDa fusion protein (p80GST-cdc25) and was judged to be functional by several criteria: recombinant p80GST-cdc25 induced meiotic maturation of Xenopus oocytes in the presence of cycloheximide; p80GST-cdc25 activated histone H1 kinase activity upon addition to extracts prepared from Xenopus oocytes; p80GST-cdc25 activated p34cdc2/cyclin B complexes (prematuration promoting factor) in immune complex kinase assays performed in vitro; p80GST-cdc25 stimulated the tyrosine dephosphorylation of p34cdc2/cyclin complexes isolated from Xenopus oocyte extracts as well as from overproducing insect cells; and p80GST-cdc25 hydrolyzed p-nitrophenylphosphate. In addition, deletion analysis defined a functional domain residing within the carboxy-terminus of the cdc25Hs protein. Taken together, these results suggest that the cdc25Hs protein is itself a phosphatase and that it may function directly in the tyrosine dephosphorylation and activation of p34cdc2 at the G2 to M transition.

Animals

Relocation and distinct subcellular localization of p34cdc2-cyclin B complex at meiosis reinitiation in starfish oocytes.

M phase promoting factor (MPF) is a major element controlling entry into the M phase of the eukaryotic cell cycle. MPF is composed of two subunits, p34cdc2 and cyclin B. Using indirect immunofluorescence staining with specific antibody against starfish cyclin B, we monitored the dynamics of the subcellular distribution of MPF during meiosis reinitiation in starfish oocytes. We found that all of the cyclin B is already associated with p34cdc2 in immature oocytes arrested at the G2/M border and that this inactive complex is present exclusively in the cytoplasm. After its activation, part of the p34cdc2-cyclin B complex moves into the germinal vesicle before nuclear envelope breakdown, independently of either microtubules or actin filaments. Thereafter, some part of the complex accumulates in the nucleolus and condensed chromosomes. Another portion of the complex accumulates on meiotic asters and spindles, while the rest is still present throughout the cytoplasm. As these patterns of localization are detected in the detergent-extracted oocytes, we propose at least four distinct subcellular states of the p34cdc2-cyclin B complex: freely soluble, microtubule-associated, detergent-resistant cytoskeleton-associated and chromosome-associated. Thus, in addition to the intramolecular modification of p34cdc2-cyclin B complex, its intracellular relocation plays a key role in promoting the M phase.

Animals

Dephosphorylation of cdc2 on threonine 161 is required for cdc2 kinase inactivation and normal anaphase.

Exit from metaphase of the cell cycle requires inactivation of MPF, a stoichiometric complex between the cdc2 catalytic and the cyclin B regulatory subunits, as well as that of cyclin A-cdc2 kinase. Inactivation of both complexes depends on proteolytic degradation of the cyclin subunit, yet cyclin proteolysis is not sufficient to inactivate the H1 kinase activity of cdc2. Genetic evidence strongly suggests that type 1 phosphatase plays a key role in the metaphase-anaphase transition of the cell cycle. Here we report that inhibition of both type 1 and type 2A phosphatases by okadaic acid allows cyclin degradation to occur, but prevents cdc2 kinase inactivation. Complete inhibition of type 2A phosphatase alone is not sufficient to prevent cdc2 kinase inactivation following cyclin proteolysis. We show further that residue 161 of cdc2 is phosphorylated in active cyclin A or cyclin B complexes at metaphase, whilst unassociated cdc2 is not phosphorylated. Proteolysis of cyclin releases a free cdc2 subunit, which subsequently undergoes dephosphorylation and then migrates more slowly than its Thr161 phosphorylated counterpart in Laemmli gels. Removal of phosphothreonine 161 requires cyclin proteolysis. However, it does not occur even after cyclin proteolysis, when both type 1 and type 2A phosphatases are inhibited. We conclude that both cyclin degradation and dephosphorylation of Thr161 on cdc2, catalysed at least in part by type 1 phosphatase, are required to inactivate either cyclin B- or cyclin A-cdc2 kinases and thus for cells to exit from M phase.

Amino Acid Sequence

Regulation of a major microtubule-associated protein by MPF and MAP kinase.

The interphase-M phase transition of microtubule dynamics is thought to be induced by phosphorylation reactions mediated by MPF and by MAP kinase functioning downstream of MPF. We have now identified and purified from Xenopus eggs a major microtubule-associated protein, p220, that may be a target protein for these two M phase-activated kinases. p220, when purified from interphase cells, potently bound to microtubules and stimulated tubulin polymerization, whereas p220 purified from M phase cells showed little or no such activities. Cell staining with a monoclonal anti-p220 antibody revealed that p220 is localized on cytoplasmic microtubule networks during interphase, while it is distributed rather diffusely throughout the cell during M phase. We have further found that p220 is phosphorylated specifically in M phase. Moreover, p220 purified from interphase cells served as a good substrate for MAP kinase and MPF in vitro, and two-dimensional phosphopeptide mapping pattern of the p220 phosphorylated in vitro was very similar to that of p220 phosphorylated at M phase in vivo. These results suggest that the drastic change in p220 activity during the transition from interphase to M phase may be induced by its phosphorylation in M phase probably catalyzed by MAP kinase and MPF.

Animals

The fall of biological maturation promoting factor (MPF) and histone H1 kinase activity during anaphase and telophase in mouse oocytes.

Cell fusions have been used to determine the biological activity of the MPF complex in murine oocytes during their progression through anaphase and telophase to metaphase II. Oocytes (1) at metaphase I, (2) during the anaphase-telophase transition, or (3) at metaphase II were fused to germinal vesicle-staged (immature) oocytes. The hybrids were cultured for 1 h in the presence of db cAMP before fixation and nuclear evaluation. Metaphase I oocytes invariably induced germinal vesicle breakdown (GVBD) in the immature partner. By contrast, anaphase/telophase oocytes never induced GVBD in immature oocytes. The capacity to induce GVBD reappears after the formation of the second metaphase plate. In a second study, histone H1 kinase activity was measured during mouse oocyte maturation in single oocytes. H1 kinase activity was low in GV oocytes, increased sharply at MI, declined during anaphase and telophase and increased again at MII. After egg activation, H1 kinase activity was reduced to basal levels. These results provide direct evidence that a drop in activity of MPF in murine oocytes occurs concomitantly with the exit from metaphase I; MPF activity remains low until the cell re-enters metaphase.

Anaphase

Okadaic acid and p13suc1 modulate the reinitiation of meiosis in mouse oocytes.

Short-term exposure to okadaic acid (OA), a specific inhibitor of protein phosphatases 1 and 2A, induced resumption of meiosis, including metaphase spindle formation, in mouse oocytes treated with a phosphodiesterase inhibitor, while long incubations with OA arrested oocyte maturation at a step prior to spindle formation. To explore the basis for this difference, the overall patterns of protein synthesis and phosphorylation and the production of tissue-type plasminogen activator (tPA), the synthesis of which is induced after germinal vesicle breakdown (GVBD), were analyzed under various OA treatments. Short-term exposure to OA led to tPA production and did not greatly affect the maturation-associated changes in protein phosphorylation. By contrast, a long application of OA did not result in tPA production and induced more marked changes in protein phosphorylation. Microinjection into prophase oocytes of the product of the fission yeast gene p13suc1, known to inhibit p34cdc2 kinase activation and/or activity, prevented meiotic reinitiation. This effect was overcome by microinjection of OA, at concentrations higher than those required for induction of maturation in the absence of p13suc1. These observations suggest that inhibition of phosphatase 1 or 2A or both triggers meiotic resumption by acting at the same site or at a site proximal to the p13suc1-sensitive step of cdc2 kinase activation.

Animals

Isolation and characterization of goldfish cdk2, a cognate variant of the cell cycle regulator cdc2.

This paper reports the nucleotide and predicted amino acid sequences of the goldfish cdk2, a cognate variant of the cell cycle regulator cdc2. The predicted protein sequence shows strong homology to the other known cdk2 (88% for Xenopus and 90% for human). A monoclonal antibody against the C-terminal sequence of goldfish cdk2 recognized a 34-kDa protein in extracts from various goldfish tissues. The protein level was high in such tissues as testis and ovary containing actively dividing cells. Protein cdk2 binds to p13sucl, the fission yeast suc1+ gene product, but not to cyclin B, with which cdc2 forms a complex. The kinase activity of cdk2 increased 30-fold when oocytes matured, although its protein level did not remarkably change. Anti-cdk2 immunoprecipitates from 32P-labeled mature oocyte extracts contained a 47-kDa protein, which was not recognized by either anti-cyclin A or anti-cyclin B antibody, indicating complex formation of cdk2 with a protein other than cyclins A or B.

Amino Acid Sequence

The cell cycle then and now.

In the last few years a general model of cell cycle control has been established for all eukaryotic cells. Experiments from a variety of organisms and from a variety of experimental approaches have identified a protein kinase and its unstable regulatory subunit as the activator of mitosis; related molecules seem to be involved in the activation of chromosome replication. The identification of the biochemical components of these important regulatory pathways is providing several new insights into homeostatic and developmental control mechanisms in higher organisms.

Animals

Phosphorylation of myosin-II regulatory light chain by cyclin-p34cdc2: a mechanism for the timing of cytokinesis.

To understand how cytokinesis is regulated during mitosis, we tested cyclin-p34cdc2 for myosin-II kinase activity, and investigated the mitotic-specific phosphorylation of myosin-II in lysates of Xenopus eggs. Purified cyclin-p34cdc2 phosphorylated the regulatory light chain of cytoplasmic and smooth muscle myosin-II in vitro on serine-1 or serine-2 and threonine-9, sites known to inhibit the actin-activated myosin ATPase activity of smooth muscle and nonmuscle myosin (Nishikawa, M., J. R. Sellers, R. S. Adelstein, and H. Hidaka. 1984. J. Biol. Chem. 259:8808-8814; Bengur, A. R., A. E. Robinson, E. Appella, and J. R. Sellers. 1987. J. Biol. Chem. 262:7613-7617; Ikebe, M., and S. Reardon. 1990. Biochemistry. 29:2713-2720). Serine-1 or -2 of the regulatory light chain of Xenopus cytoplasmic myosin-II was also phosphorylated in Xenopus egg lysates stabilized in metaphase, but not in interphase. Inhibition of myosin-II by cyclin-p34cdc2 during prophase and metaphase could delay cytokinesis until chromosome segregation is initiated and thus determine the timing of cytokinesis relative to earlier events in mitosis.

Amino Acid Sequence