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Berridge, M. J. and Dupont, G (1994). Spatial and temporal signalling by calcium. Curr. Opin. Cell Biol 6, 267-274.[Medline]

Bos-Mikich, A., Whittingham, D. G. and Jones, K. T (1997). Meiotic and mitotic calcium oscillations affect cell composition in resulting blastocysts. Dev. Biol 182, 172-179.[Medline]

Ciapa, B. and Whitaker, M (1986). Two phases of inositol polyphosphate and diacyglycerol production at fertilisation. FEBSLett 195, 347-351.[Medline]

Chiri, S., De Nadai, C. and Ciapa, C (1998). Evidence for MAP kinase activation during mitotic division. J. Cell Sci 111, 2519-2527.[Abstract]

Cobb, M. H., Boulton, T. G. and Robbins, D. J (1991). Extracellular signal-regulated kinases-ERKs in progress. Cell Regul 2, 965-978.[Medline]

Collas, P., Chang, T., Long, C. and Robl, J. M (1995). Inactivation of histone H1 kinase by calcium in rabbit oocytes. Mol. Reprod. Dev 40, 253-258.[Medline]

Colledge, W. H., Carlton, M. B. L., Udy, G. B. and Evans, M. J (1994). Disruption of c-mos causes parthenogentic development of unfertilised mouse eggs. Nature 370, 65-68.[Medline]

Cuthbertson, K. S. R., Whittingham, D. G. and Cobbold, P. H (1981). Free calcium increases in exponential phases during mouse oocyte activation. Nature 294, 754-757.[Medline]

Deguchi, R. and Osanai, K (1994). Meiosis reinitiation from first prophase is dependent on the levels of intracellular calcium and pH in oocytes of the bivalves Mactra chinensis and Limaria hakodatensis. Dev. Biol 166, 587-599.[Medline]

Eckberg, W. R. and Miller, A. L (1995). Propagated and nonpropagated calcium transients during egg activation in the Annelid, Chaetopterus. Dev. Biol 172, 654-664.[Medline]

Evans, J. P. and Kopf, G. S (1998). Molecular mechanisms of sperm-egg interactions and egg activation. Andrologia 30, 297-307.[Medline]

Evans, T., Rosenthal, E. T., Younglow, J., Distel, D. and Hunt, T (1983). Cyclin: A protein specified by maternal mRNA in sea urchin eggs is destroyed at each cleavage division. Cell 33, 389-396.[Medline]

Favata, M. F., Horiuchi, K, Y., Manos, E. J., Daulerio, A. J., Stradley, D. A., Feeser, W. S., Van Dyk, D, E., Pitts, W, J., Earl, R. A., Hobbs, F., Copeland, R, A., Magolda, R. L., Scherle, P, A. and Trzaskos, J. M (1998). Identification of a novel inhibitor of mitogen-activated protein kinase kinase. J. Biol. Chem 273, 18623-18632.[Abstract/Free Full Text]

Gautier, J., Norbury, C., Lohka, M., Nurse, P. and Maller, J (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]

Glotzer, M., Murray, A. W. and Kirschner, M. W (1991). Cyclin is degraded by the ubiquitin pathway. Nature 349, 132-138.[Medline]

Goudeau, M. and Goudeau, H (1996). External magnesium triggers oscillations and a sustained level of intracellular free calcium, correlated with changes in membrane conductance in the oocyte of the prawn Palaemon serratus. Dev. Biol 177, 178-189.[Medline]

Groigno, L. and Whitaker, M (1998). An anaphase calcium signal controls chromosome disjunction in early sea urchin embryos. Cell 92, 193-204.[Medline]

Hashimoto, N., Watanabe, N., Furuta, Y., Tamemoto, H., Sagata, N., Yokoyama, M., Okazaki, K., Nagoyoshi, M., Takeda, N., Ikawa, Y. and Aizawa, S (1994). Parthenogenetic activation of oocytes in c-mos-deficient mice. Nature 370, 68-71.[Medline]

Irninger, S., Piatti, S., Michaelis, C. and Naysmith, K (1995). Genes involved in sister chromatid separation are needed for B-type cyclin proteolysis in budding yeast. Cell 81, 269-278.[Medline]

Jones, K. T., Carroll, J., Merriman, J. A., Whittingham, D. G. and Kono, T (1995). Repetitive sperm-induced calcium transients in mouse oocytes are cell cycle dependent. Development 121, 3259-3266.[Abstract]

Jones, K. T., Cruttwell, C., Parrington, J. and Swann, K (1998). A mammalian sperm cytosolic phospholipase C generates inositol trisphosphate and causes calcium release in sea urchin egg homogenates. FEBS Lett 437, 297-300.[Medline]

Jones, K. T (1998). Calcium oscillations in the activation of the egg and development of the embryo in mammals. Int. J. Dev. Biol 42, 1-10.[Medline]

Kawahara, H. and Yokasawa, H (1994). Intracellular calcium mobilisation regulates the activity of 26 S proteasome during the metaphase-anaphase transition in the ascidian meiotic cell cycle. Dev. Biol 166, 623-633.[Medline]

King, R. W., Peters, J. M., Tugendreich, S., Rolfe, M., Hieter, P. and Kirschner, M. W (1995). A 20S complex containing CDC27 and CDC16 catalyzes the mitosis-specific conjugation of ubiquitin to cyclin B. Cell 81, 279-288.[Medline]

King, R. W., Glotzer, M. and Kirschner, M (1996). Mutagenic analysis of the destruction signal of mitotic cyclins and structural characterisation of ubiquitinated intermediates. Mol. Biol. Cell 7, 1343-1357.[Abstract]

Kono, T., Carrol, J., Swann, K. and Whittingham, D. G (1995). Nuclei from fertilised mouse embryos have Ca2+releasing activity. Development 121, 1123-1128.[Abstract]

Kono, T., Jones, K. T., Bos-Mikich, A., Whittingham, D. G. and Carroll, J (1996). A cell cycle-associated change in calcium releasing activity leads to the generation of calcium transients in mouse embryos during the first mitotic division. J. Cell Biol 132, 915-923.[Abstract/Free Full Text]

Kyozuka, K., Deguchi, R., Mohri, T. and Miyazaki, S (1998). Injection of sperm extract mimics spatiotemporal dynamics of calcium responses and progression of meiosis at fertilisation of ascidian oocytes. Development 125, 4099-4105.[Abstract]

Labbe, J.-C., Capony, J.-P., Caput, D., Cavadore, J., Derancourt, M., 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 cyclin B. EMBO J 8, 3053-3058.[Medline]

Lawrence, Y., Ozil, J.-P. and Swann, K (1998). The effects of calcium chelator and heavy-metal-ion chelators upon calcium oscillations and activation at fertilisation in mouse eggs suggests a role for repetitive calcium increases. Biochem. J 335, 335-342.

Lemaire, P., Garrett, N. and Gurdon, J. B (1995). Expression cloning of Siamois, a new Xenopus homeobox gene expressed in dorsal vegetal cells of blastulae and capable of inducing a complete secondary axis. Cell 81, 85-94.[Medline]

Lohka, M. J., Hayes, M. K. and Maller, J. L (1988). Purification of maturation promoting factor, an intracellular regulator of early mitotic events. Proc. Natl. Acad. Sci. USA 85, 3009-3013.[Abstract/Free Full Text]

Lorca, T., Cruzalegui, F. H., Fesquet, D., Cavadore, J.-C., Mery, J., Means, A. and Doree, M (1993). Calmodulin-dependent protein kinase II mediates inactivation of MPF and CSF upon fertilisation of Xenopus eggs. Nature 366, 270-273.[Medline]

Masui, Y. and Markert, C. L (1971). Cytoplasmic control of nuclear behaviour during meiotic maturation of frog oocytes. J. Exp. Zool 177, 1219-145.

Masui, Y (1974). A cytostatic factor in amphibian oocytes: its extraction and partial characterisation. J. Exp. Zool 187, 141-147.[Medline]

Masui, Y (1991). The role of cytostatic factor (CSF) in the control of oocyte cell cycles; A summary of 20 years of study. Dev. Growth Diff 33, 543-551.

McDougall, A. and Sardet, C (1995). Function and characteristics of repetitive calcium waves associated with meiosis. Curr. Biol 5, 318-328.[Medline]

McDougall, A. and Levasseur, M (1998). Sperm triggered calcium oscillations during meiosis in ascidian oocytes first pause, restart then stop: correlations with cell cycle kinase activity. Development 125, 4451-4459.[Abstract]

Mehlmann, L. M and Kline, D (1994). Regulation of intracellular calcium release in the mouse egg: calcium release in response to sperm or inositol trisphosphate is enhanced after meiotic maturation. Biol. Reprod 51, 1088-1098.[Abstract]

Moos, J., Schultz, R. M. and Kopf, G. S (1996). Regulation of nuclear envelope disassembly by MAP kinase. Dev. Biol 175, 358-361.[Medline]

Morgan, D. O (1997). Cyclin-dependent kinases: Engines, clocks, and microprocessors. Annu. Rev. Cell Dev. Biol 13, 261-291.[Medline]

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

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

Newport, J. W. and Kirschner, M (1984). Regulation of the cell cycle during early Xenopus development. J. Cell Biol 98, 1247-1255.[Abstract/Free Full Text]

Nurse, P. and Thuriaux, P (1980). Regulatory genes controlling mitosis in the fission yeast Schizosaccharomyces pombe. Genetic 96, 627-637.

Ozil, J.-P (1990). The parthenogentic development of rabbit oocytes after repetitive pulsatile electrical stimulation. Development 109, 117-127.[Abstract]

Parrington, J., Swann, K., Shevchenko, V. I., Sesay, A. K. and Lai, F. A (1996). Calcium oscillations in mammalian eggs triggered by a soluble sperm protein. Nature 379, 364-368.[Medline]

Parrington, J., Brind, S., De Smedt, H., Gangeswaran, R., Lai, F. A., Wojcikiewicz, R. and Carroll, J (1998). Expression of inositol 1,4,5-trisphosphate receptors in mouse oocytes and early embryos: the type I isoform is upregulated in oocytes and downregulated after fertilisation. Dev. Biol 203, 451-461.[Medline]

Payne, D. M., Rossomando, A. J., Martino, P., Erickson, A. K. Her, J.-H., Shabanowitz, J., Hunt, D. F., Weber, M. J. and Sturgill, T. W (1991). Identification of regulatory phosphorylation sites in pp42/mitogen-activated protein kinase (MAP kinase). EMBO J 10, 885-892.[Medline]

Philipova, R. and Whitaker, M (1998). MAP kinase activity increases during mitosis in early sea urchin embryos. J. Cell Sci 111, 2497-2505.[Abstract]

Pines, J (1996). Cyclin from sea urchins to HeLas: making the human cell cycle. Biochem. Soc. Trans 24, 15-.[Medline]

Russo, G. L., Kyozuka, K., Antonazzo, L., Tosti, E. and Dale, B (1996). Maturation promoting factor in ascidian oocytes is regulated by different intracellular signals at meiosis I and II. Development 122, 1995-2003.[Abstract]

Sardet, C., Speksnijder, J., Inoue, S, and Jaffe, L (1989). Fertilisation and ooplasmic movements in the ascidian. Development 105, 237-249.[Abstract]

Sardet, C., Roegiers, F., Dumollard, R., Rouiere, C. and McDougall, A (1998). Ca2+waves and oscillations in eggs. Biophys. Chem 72, 131-140.

Seger, R., Ahn, N. G., Boulton, T. G., Yancopoulos, G. D., Panayotatos, N., Radziejewska, E., Ericsson, L., Bratlien, R., Cobb, M. H. and Krebs, E. G (1991). Microtubule-associated protein 2 kinases, ERK1 and ERK2, undergo autophosphorylation on both tyrosine and threonine residues: implications for their mechanism of activation. Proc. Natl. Acad. Sci. USA 88, 6142-6146.[Abstract/Free Full Text]

Sette, C., Bevilacqua, A., Geremia, R. and Rossi, P (1998). Involvement of PLC1 in mouse egg activation induced by a truncated form of the C-kit tyrosine kinase present in spermatozoa. J. Cell Biol 142, 1063-1074.[Abstract/Free Full Text]

Shapiro, P. S., Vaisberg, E., Hunt, A. J., Tolwinski, N. S., Whalen, A. M., McIntosh, J. R. and Ahn, N. G (1998). Activation of the MKK/ERK pathway during somatic cell mitosis: direct interactions of active ERK with kinetochores and regulation of the mitotic 3F3/2 phosphoantigen. J. Cell Biol 142, 1533-1545.[Abstract/Free Full Text]

Speksnijder, J. E., Corson, W., Sardet, C. and Jaffe, L. F (1989). Free calcium pulses follow fertilisation in the ascidian egg. Dev. Biol 135, 182-190.[Medline]

Steinhardt, R., Zucker, R. and Schatten, G (1977). Intracellular calcium release at fertilisation in the sea urchin egg. Dev. Biol 58, 185-196.[Medline]

Stricker, S. A (1996). Retetitive calcium waves induced by fertilisation in the Nemertean worm Cerabratulus lacteus. Dev. Biol 176, 243-263.[Medline]

Stricker, S. A (1997). Intracellular injections of a soluble sperm factor trigger calcium oscillations and meiotic maturation in unfertilised oocytes of a marine worm. Dev. Biol 186, 185-201.[Medline]

Sudakin, V., Ganoth, D., Dahan, A., Heller, H., Hershko, J., Luca, F. C., Ruderman, J. V. and Hershko, A (1995). The cyclosome, a large complex containing cyclin-selective ubiquitin ligase activity, targets cyclins for destruction at the end of mitosis. Mol. Biol. Cell 62, 185-198.

Swann, K (1990). A cytosolic sperm factor stimulates repetitive calcium increases and mimics fertilisation in hamster eggs. Development 110, 1295-1302.[Abstract/Free Full Text]

Swann, K. and Ozil, J.-P (1994). Dynamics of the calcium signal that triggers egg activation. Int. Rev. of Cytol 152, 183-222.[Medline]

Verlhac, M.-H., Kubiak, J. Z., Clarke, H. J. and Maro, B (1994). Microtubule and chromatin behaviour follow MAP kinase but not MPFactivity during meiosis in mouse oocytes. Development 120, 1017-1025.[Abstract]

Verlhac, M.-H., Kubiak, J. Z., Clarke, H. J. and Maro, B (1996). Mos is required for MAP kinase activation and is involved in microtubule organization during meiotic maturation in the mouse. Development 122, 815-822.[Abstract]

Whitaker, M. and Swann, K (1993). Lighting the fuse at fertilisation. Development 117, 1-12.[Abstract]

Wu, H., He, Cc-L., Jehn, B., Black, S. J. and Fissore, R. A (1998). Partial purification of the calcium-releasing activity of porcine sperm cytosolic extracts. Dev. Biol 203, 369-381.[Medline]

Yamano, H., Tsurumi, C., Gannon, J. and Hunt, T (1998). The role of the destruction box and its neighbouring lysine residues in cyclin B for anaphase ubiquitin-dependent proteolysis in fission yeast: defining the D box receptor. EMBO J 17, 5670-5678.[Medline]

Yoshida, M., Sensui, N., Inoue, T., Morisawa, M. and Mikoshiba, K (1998). Role of two series of calcium oscillations in activated ascidian eggs. Dev. Biol 203, 122-133.[Medline]

Zernicka-Goetz, M., Pines, M., Ryan, K., Siemering, K. R., Haseloff, J., Evans, M. J. and Gurdon, J. B (1996). An indelible lineage marker for Xenopus using a mutated green fluorescent protein. Development 122, 3719-3724.[Abstract]

Zernicka-Goetz, M., Pines, M., Dixon, J., Hunter, S., Siemering, K. R., Haseloff, J. and Evans, M. J (1997). Following cell fate in the living mouse embryo. Development 124, 1133-1137.[Abstract]




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