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Alexandre, H., Van Cauwenberge, A., Tsukitani, Y. and Mulnard, J (1991). Pleiotropic effect of okadaic acid on maturing mouse oocytes. Development 112, 971-980.[Abstract]

Anderson, N. G., Maller, J. L., Tonks, N. K. and Sturgill, T. W (1990). Requirement for integration of signals from two distinct phosphorylation pathways for activation of MAP kinase. Nature 343, 651-653.[Medline]

Arion, D., Meijer, L., Brizuela, L. and Beach, D (1988). cdc2 is a component of the M phase-specific histone H1 kinase: Evidence for identity with MPF. Cell 55, 371-378.[Medline]

Atherton-Fessler, S., Parker, L. L., Geahlen, R. L. and Piwnica-Worms, H (1993). Mechanisms of p34cdc2regulation. Mol. Cell. Biol 13, 1675-1685.[Abstract/Free Full Text]

Bialojan, C. and Takai, A (1988). Inhibitory effect of a marine-sponge toxin, okadaic acid, on protein phosphatases. Biochem. J 256, 283-290.[Medline]

Brizuela, L., Draetta, G. and Beach, D (1987). p13suc1acts in the fission yeast cell division cycle as a component of the p34cdc2protein kinase. EMBO J 6, 3507-3514.[Medline]

Casillas, A. M., Amaral, K., Chegini-Farahani, S. and Nel, A. E (1993). Okadaic acid activates p42 mitogen-activated protein kinase (MAP kinase; ERK-2) in B-lymphocytes but inhibits rather than augments cellular proliferation: Contrast with phorbol 12-myristate 13-acetate. Biochem. J 290, 545-550.

Cho, W. K., Stern, S. and Biggers, J. D (1974). Inhibitory effect of dibutyrylcAMP on mouse oocyte maturation in vitro. J. Exp. Zool 187, 383-386.[Medline]

Choi, T., Aoki, F., Mori, M., Yamashita, M., Nagahama, Y. and Kohmoto, K (1991). Activation of p34cdc2protein kinase activity in meiotic and mitotic cell cycles in mouse oocytes and embryos. Development 113, 789-795.[Abstract]

Clarke, P. R., Hoffmann, I., Draetta, G. and Karsenti, E (1993). Dephosphorylation of cdc25-C by a type-2A protein phosphatase: Specific regulation during the cell cycle in Xenopus egg extracts. Mol. Biol. Cell 4, 397-411.[Abstract]

Cohen, P., Holmes, C. F. B. and Tsukitani, Y (1990). Okadaic acid: A new probe for the study of cellular regulation. Trends Biochem. Sci 15, 98-102.[Medline]

Cyert, M. S. and Kirschner, M. W (1988). Regulation of MPF activity in vitro. Cell 53, 185-195.[Medline]

Davies, F. M., Tsao, T. H., Fowler, S. K. and Rao, P. N (1983). Monoclonal antibodies to mitotic cells. Proc. Nat. Acad. Sci. USA 80, 2926-2930.[Abstract/Free Full Text]

Dessev, G., Iovcheva-Dessev, C., Bischoff, J. R., Beach, D. and Goldman, R (1991). A complex containing p34cdc2and cyclin B phosphorylates the nuclear lamin and disassembles nuclei of clam oocytes in vitro. J. Cell Biol 112, 523-533.[Abstract/Free Full Text]

Devault, A., Cavadore, J. C., Fesquet, D., Labbe, J. C., Lorca, T., Picard, A., Strausfeld, U. and Doree, M (1991). Concerted roles of cyclin A, cdc25+mitotic inducer, and type 2A phosphatase in activating the cyclin B/cdc2 protein kinase at the G2/M phase transition. Cold Spring Harbor Symp. Quant. Biol 56, 503-513.[Abstract/Free Full Text]

Doree, M (1990). Control of M-phase by maturation-promoting factor. Curr. Opin. Cell Biol 2, 269-273.[Medline]

Dunphy, W. G., Brizuela, L., Beach, D. and Newport, J. W (1988). The Xenopus cdc2 protein is a component of MPF, a cytoplasmic regulator of mitosis. Cell 54, 423-431.[Medline]

Dunphy, W. G. and Newport, J. W (1989). Fission yeast p13 blocks mitotic activation and tyrosine dephosphorylation of the Xenopus cdc2 protein kinase. Cell 58, 181-191.[Medline]

Dunphy, W. G. and Kumagai, A (1991). The cdc25 protein contains an intrinsic phosphatase activity. Cell 67, 189-196.[Medline]

Felix, M. A., Cohen, P. and Karsenti, E (1990). cdc2 H1 kinase is negatively regulated by a type 2A phosphatase in the Xenopus early embryonic cell cycle: Evidence from the effects of okadaic acid. EMBO J 9, 675-683.[Medline]

Ferrell, J. E., Jr, Wu, M., Gerhart, J. C. and Martin, G. S (1991). Cell cycle tyrosine phosphorylation of p34cdc2and a microtubule-associated protein kinase homolog in Xenopus oocytes and eggs. Mol. Cell. Biol 11, 1965-1971.[Abstract/Free Full Text]

Gautier, J. and Maller, J. L (1991). Cyclin B in Xenopus oocytes: implications for the mechanism of pre-MPF activation. EMBO J 10, 177-182.[Medline]

Gautier, J., Norbury, C., Lohka, M., Nurse, P. and Maller, J. L (1988). Purified maturation-promoting factor contains the product of a Xenopus homolog of the fission yeast cell cycle control gene cdc2+. Cell 54, 433-439.[Medline]

Gautier, J., Solomon, M. J., Booher, R. N., Bazan, J. F. and Kirschner, M. W (1991). cdc25 is a specific tyrosine phosphatase that directly activates p34cdc2. Cell 67, 197-211.[Medline]

Gavin, A. C., Tsukitani, Y. and Schorderet-Slatkine, S (1991). Induction of M-phase entry of prophase-blocked mouse oocytes through microinjection of okadaic acid, a specific phosphatase inhibitor. Exp. Cell Res 192, 75-81.[Medline]

Gavin, A. C., Vassalli, J. D., Cavadore, J.-C. and Schorderet-Slatkine, S (1992). Okadaic acid and p13suc1modulate the reinitiation of meiosis in mouse oocytes. Mol. Reprod. Dev 33, 287-296.[Medline]

Goris, J., Hermann, J., Hendrix, P., Ozon, R. and Merlevede, W (1989). Okadaic acid, a specific protein phosphatase inhibitor, induces maturation and MPF formation in Xenopus laevis oocytes. FEBS Lett 245, 91-94.[Medline]

Gotoh, Y., Nishida, E. and Sakai, H (1990). Okadaic acid activates microtubule-associated protein kinase in quiescent fibroblastic cells. Eur. J. Biochem 193, 671-674.[Medline]

Gotoh, Y., Nishida, E., Matsuda, S., Shiina, N., Kosako, H., Shiokawa, K.,Akiyama, T., Ohta, K. and Sakai, H (1991). In vitro effects on microtubule dynamics of purified Xenopus M phase-activated MAP kinase. Nature 349, 251-254.[Medline]

Haccard, O., Jessus, C., Cayla, X., Goris, J., Merlevede, W. and Ozon, R (1990). In vivo activation of a microtubule-associated protein kinase during meiotic maturation of the Xenopus oocyte. Eur. J. Biochem 192, 633-642.[Medline]

Hayles, J., Aves, S. and Nurse, P (1986). suc1 is an essential gene involved in both the cell cycle and growth in fission yeast. EMBO J 5, 3373-3379.[Medline]

Hindley, J., Phear, G. A., Stein, M. and Beach, D (1987). suc1+ encodes a predicted 13 kilodalton protein that is essential for cell viability and directly involved in the division cycle of Schizosaccharomyces pombe. Mol. Cell. Biol 7, 504-511.[Abstract/Free Full Text]

Hoffmann, I., Clarke, P. R., Jesus Marcote, M., Karsenti, E. and Draetta, G (1993). Phosphorylation and activation of human cdc25-C by cdc2-cyclin B and its involvement in the self-amplification of MPF at mitosis. EMBO J 12, 53-63.[Medline]

Hunt, T (1989). Maturation promoting factor, cyclin and the control of M-phase. Curr. Opin. Cell Biol 1, 268-274.[Medline]

Izumi, T., Walker, D. H. and Maller, J. L (1992). Periodic changes in phosphorylation of the Xenopus cdc25 phosphatase regulate its activity. Mol. Biol. Cell 3, 927-939.[Abstract]

Jessus, C., Ducommun, B. and Beach, D (1990). Direct activation of cdc2 with phosphatase: identification of p13suc1-sensitive and insensitive steps. FEBS Lett 266, 4-8.[Medline]

Jessus, C. and Beach, D (1992). Oscillation of MPF is accompanied by periodic association between cdc25 and cdc2-cyclin B. Cell 68, 323-332.[Medline]

Kalous, J., Sutovsky, P., Rimkevicova, Z., Shioya, Y., Lie, B. L. and Motlik, J (1993). Pig membrana granulosa cells prevent resumption of meiosis in cattle oocytes. Mol. Reprod. Dev 34, 58-64.[Medline]

Kobayashi, H., Minshull, J., Ford, C., Golsteyn, R., Poon, R. and Hunt, T (1991). On the synthesis and destruction of A-and B-type cyclins during oogenesis and meiotic maturation in Xenopus laevis. J. Cell Biol 114, 755-765.[Abstract/Free Full Text]

Krek, W. and Nigg, E. A (1991). Differential phosphorylation of vertebrate p34cdc2kinase at the G1/S and G2/M transitions of the cell cycle: identification of major phosphorylation sites. EMBO J 10, 305-316.[Medline]

Kuang, J., Zhao, J. Y., Wright, D. A., Saunders, G. F. and Rao, P. N (1989). Mitosis-specific monoclonal antibody MPM-2 inhibits Xenopus oocyte maturation and depletes maturation-promoting activity. Proc. Nat. Acad. Sci. USA 86, 4982-4986.[Abstract/Free Full Text]

Kumagai, A. and Dunphy, W. G (1992). Regulation of the cdc25 protein during the cell cycle in Xenopus extracts. Cell 70, 139-151.[Medline]

Labbe, J. C., Capony, J. P., Caput, D., Cavadore, J. C., Derancourt, J., Kaghad, M., Lelias, J. M., Picard, A. and Doree, M (1989). MPF from starfish oocytes at first meiotic metaphase is a heterodimer containing one molecule of cdc2 and one molecule of cycline B. EMBO J 8, 3053-3058.[Medline]

Labbe, J. C., Picard, A., Peaucellier, G., Cavadore, J. C., Nurse, P. and Doree, M (1989). Purification of MPF from starfish: identification as the H1 histone kinase p34cdc2and a possible mechanism for its periodic activation. Cell 57, 253-263.[Medline]

Labbe, J. C., Cavadore, J. C. and Doree, M (1991). M phase-specific cdc2 kinase: preparation from starfish oocytes and properties. Meth. Enzymol 200, 291-301.[Medline]

Laemmli, U. K (1970). Cleavage of structural proteins during the assembly of the head bacteriophage T4. Nature 227, 680-685.[Medline]

Lee, M. S., Ogg, S., Xu, M., Parker, L. L., Donoghue, D. J., Maller, J. L. and Piwnica-Worms, H (1992). cdc25+encodes a protein phosphatase that dephosphorylates p34cdc2. Mol. Biol. Cell 3, 73-84.[Abstract]

Lewin, B (1990). Driving the cell cycle: M phase kinase, its partners, and substrates. Cell 61, 743-752.[Medline]

Lohka, M. J (1989). Mitotic control by metaphase-promoting factor and cdc proteins. J. Cell Sci 92, 131-135.[Free Full Text]

Luscher, B., Brizuela, L., Beach, D. and Eisenman, R. N (1991). A role for the p34cdc2kinase and phosphatases in the regulation of phosphorylation and disassembly of lamin B2 during the cell cycle. EMBO J 10, 865-875.[Medline]

Masui, Y. and Markert, C. L (1971). Cytoplasmic control of nuclear behavior during maturation of frog oocytes. J. Exp. Zool 177, 129-146.[Medline]

Meijer, L., Arion, D., Golsteyn, R., Pines, J., Brizuela, L., Hunt, T. and Beach, D (1989). Cyclin is a component of the sea urchin egg M-phase specific histone H1 kinase. EMBO J 8, 2275-2282.[Medline]

Millar, J. B. A. and Russell, P (1992). The cdc25 M-phase inducer: An unconventional protein phosphatase. Cell 68, 407-410.[Medline]

Minshull, J., Murray, A., Colman, A. and Hunt, T (1991). Xenopus oocyte maturation does not require new cyclin synthesis. J. Cell Biol 114, 767-772.[Abstract/Free Full Text]

Miyasaka, T., Miyasaka, J. and Saltiel, A. R (1990). Okadaic acid stimulates the activity of microtubule associated protein kinase in PC-12 pheochromocytoma cells. Biochem. Biophys. Res. Commun 168, 1237-1243.[Medline]

Morla, A. O., Draetta, G., Beach, D. and Wang, J. Y. J (1989). Reversible tyrosine phosphorylation of cdc2: Dephosphorylation accompanies activation during entry into mitosis. Cell 58, 193-203.[Medline]

Murray, A. W. and Kirschner, M. W (1989). Cyclin synthesis drives the early embryonic cell cycle. Nature 339, 275-280.[Medline]

Murray, A. W., Solomon, M. J. and Kirschner, M. W (1989). The role of cyclin synthesis and degradation in the control of maturation promoting factor activity. Nature 339, 280-286.[Medline]

Murray, A. W (1993). Turning on mitosis. Curr. Biol 3, 291-293.

Nebreda, A. R. and Hunt, T (1993). The c-mos proto-oncogene protein kinase turns on and maintains the activity of MAP kinase, but not MPF, in cell-free extracts of Xenopus oocytes and eggs. EMBO J 12, 1979-1986.[Medline]

Norbury, C., Blow, J. and Nurse, P (1991). Regulatory phosphorylation of the p34cdc2protein kinase in vertebrates. EMBO J 10, 3321-3329.[Medline]

Nurse, P (1990). Universal control mechanism regulating onset of M-phase. Nature 344, 503-508.[Medline]

Paules, R. S., Buccione, R., Moschel, R. C., Vande Woude, G. F. and Eppig, J. J (1989). Mouse Mos protooncogene product is present and functions during oogenesis. Proc. Nat. Acad. Sci. USA 86, 5395-5399.[Abstract/Free Full Text]

Peter, M., Sanghera, J. S., Pelech, S. L. and Nigg, E. A (1992). Mitogen-activated protein kinases phosphorylate nuclear lamins and display sequence specificity overlapping that of mitotic protein kinase p34cdc2. Eur. J. Biochem 205, 287-294.[Medline]

Picard, A., Capony J. P., Brautigan, D. L. and Doree, M (1989). Involvement of protein phosphatases 1 and 2A in the control of M phase-promoting factor activity in starfish. J. Cell Biol 109, 3347-3354.[Abstract/Free Full Text]

Picard, A., Cavadore, J. C., Lory, P., Bernengo, J. C., Ojeda, C. and Doree, M (1990). Microinjection of a conserved peptide sequence of p34cdc2induces a Ca2+transient in oocytes. Science 247, 327-329.[Abstract/Free Full Text]

Picard, A., Labbe, J. C., Barakat, H., Cavadore, J. C. and Doree, M (1991). Okadaic acid mimics a nuclear component required for cyclin B-cdc2 kinase microinjection to drive starfish oocytes into M phase. J. Cell Biol 115, 337-344.[Abstract/Free Full Text]

Pines, J. and Hunter, T (1990). p34cdc2: the S and M kinase. New Biol 2, 389-401.[Medline]

Pondaven, P., Meijer, L. and Beach, D (1990). Activation of M-phase-specific histone H1 kinase by modification of the phosphorylation of its p34cdc2and cyclin components. Genes Dev 4, 9-17.[Abstract/Free Full Text]

Posada, J. and Cooper, J. A (1992). Requirements for phosphorylation of MAP kinase during meiosis in Xenopus oocytes. Science 255, 212-215.[Abstract/Free Full Text]

Posada, J., Yew, N., Ahn, N. G., Vande Woude, G. F. and Cooper, J. A (1993). Mos stimulates MAP kinase in Xenopus oocytes and activates a MAP kinase kinase in vitro. Mol. Cell. Biol 13, 2546-2553.[Abstract/Free Full Text]

Ray, L. B. and Sturgill, T. W (1987). Rapid stimulation by insulin of a serine/threonine kinase in 3T3-L1 adipocytes that phosphorylates microtubule-associated protein 2 in vitro. Proc. Nat. Acad. Sci. USA 84, 1502-1506.[Abstract/Free Full Text]

Redpath, N. T. and Proud, C. G (1989). The tumour promoter okadaic acid inhibits reticulocyte-lysate protein synthesis by increasing the net phosphorylation of elongation factor 2. Biochem. J 262, 69-75.[Medline]

Rime, H. and Ozon, R (1990). Protein phosphatases are involved in the in vivo activation of histone H1 kinase in mouse oocyte. Dev. Biol 141, 115-122.[Medline]

Sanghera, J. S., McNabb, C. K., Tonks, N. and Pelech, S. L (1991). Tyrosyl phosphorylation and activation of the myelin basic protein kinase p44 mpk during sea star oocyte maturation. Biochim. Biophys. Acta 1095, 153-160.[Medline]

Schwartz, D. A. and Schultz, R. M (1991). Stimulatory effect of okadaic acid, an inhibitor of protein phosphatases, on nuclear envelope breakdown and protein phosphorylation in mouse oocytes and one-cell embryos. Dev. Biol 145, 119-127.[Medline]

Shibuya, E. K., Boulton, T. G., Cobb, M. H. and Ruderman, J. V (1992). Activation of p42 MAP kinase and the release of oocytes from cell cycle arrest. EMBO J 11, 3963-3975.[Medline]

Sobajima, T., Aoki, F. and Kohmoto, K (1993). Activation of mitogen-activated protein kinase during meiotic maturation in mouse oocytes. J. Reprod. Fertil 97, 389-394.[Abstract/Free Full Text]

Solomon, M. J., Glotzer, M., Lee, T. H., Philippe, M. and Kirschner, M. W (1990). Cyclin activation of p34cdc2. Cell 63, 1013-1024.[Medline]

Strausfeld, U., Labbe, J. C., Fesquet, D., Cavadore, J.-C., Picard, A., Sadhu, K., Russell, P. and Doree, M (1991). Dephosphorylation and activation of a p34cdc2/cyclin B complex in vitro by human CDC25 protein. Nature 351, 242-245.[Medline]

Vandre, D. D. and Wills, V. L (1992). Inhibition of mitosis by okadaic acid: Possible involvement of a protein phosphatase 2A in the transition from metaphase to anaphase. J. Cell Sci 101, 79-91.[Abstract/Free Full Text]

Verlhac, M. H., De Pennart, H., Maro, B., Cobb, M. H. and Clarke, H. J (1993). MAP kinase becomes stably activated at metaphase and is associated with microtubule-organizing centers during meiotic maturation of mouse oocytes. Dev. Biol 158, 330-340.[Medline]

Westendorf, J. M., Swenson, K. I. and Ruderman, J. V (1989). The role of cyclin B in meiosis I. J. Cell Biol 108, 1431-1444.[Abstract/Free Full Text]

Yamashita, K., Yasuda, H., Pines, J., Yasumoto, K., Nishitani, H., Ohtsubo, M., Hunter, T., Sugimura, T. and Nishimoto, T (1990). Okadaic acid, a potent inhibitor of type 1 and type 2A protein phosphatases, activates cdc2/H1 kinase and transiently induces a premature mitosis-like state in BHK21 cells. EMBO J 9, 4331-4338.[Medline]

Zhao, X., Singh, B. and Batten, B. E (1991). The role of c-mos proto-oncoprotein in mammalian meiotic maturation. Oncogene 6, 43-49.[Medline]


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