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Summary Anatomy Item Literature (14672) Expression Attributions Wiki
XB-ANAT-213

Papers associated with central nervous system (and cdk1)

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The distinct stage-specific effects of 2-(p-amylcinnamoyl)amino-4-chlorobenzoic acid on the activation of MAP kinase and Cdc2 kinase in Xenopus oocyte maturation., Islam A., Cell Signal. April 1, 2005; 17 (4): 507-23.


The Polo-like kinase Plx1 interacts with and inhibits Myt1 after fertilization of Xenopus eggs., Inoue D., EMBO J. March 9, 2005; 24 (5): 1057-67.


Involvement of Xtr (Xenopus tudor repeat) in microtubule assembly around nucleus and karyokinesis during cleavage in Xenopus laevis., Hiyoshi M., Dev Growth Differ. February 1, 2005; 47 (2): 109-17.      


Cdk2 activity is essential for the first to second meiosis transition in porcine oocytes., Sugiura K., J Reprod Dev. February 1, 2005; 51 (1): 143-9.


Measurement of Wee kinase activity., Mueller PR., Methods Mol Biol. January 1, 2005; 296 299-328.


Maintenance of sister chromatid attachment in mouse eggs through maturation-promoting factor activity., Madgwick S., Dev Biol. November 1, 2004; 275 (1): 68-81.


A Xenopus tribbles orthologue is required for the progression of mitosis and for development of the nervous system., Saka Y., Dev Biol. September 15, 2004; 273 (2): 210-25.                      


Scc2 couples replication licensing to sister chromatid cohesion in Xenopus egg extracts., Gillespie PJ., Curr Biol. September 7, 2004; 14 (17): 1598-603.


Mos mediates the mitotic activation of p42 MAPK in Xenopus egg extracts., Yue J., Curr Biol. September 7, 2004; 14 (17): 1581-6.


Role of Polo-like kinase in the degradation of early mitotic inhibitor 1, a regulator of the anaphase promoting complex/cyclosome., Moshe Y., Proc Natl Acad Sci U S A. May 25, 2004; 101 (21): 7937-42.


Phosphorylation of CDC25B by Aurora-A at the centrosome contributes to the G2-M transition., Dutertre S., J Cell Sci. May 15, 2004; 117 (Pt 12): 2523-31.


Cyclin A/Cdk2 complexes regulate activation of Cdk1 and Cdc25 phosphatases in human cells., Mitra J., Oncogene. April 22, 2004; 23 (19): 3361-7.


How does Xenopus oocyte acquire its competence to undergo meiotic maturation?, Jessus C., Biol Cell. April 1, 2004; 96 (3): 187-92.


Oocyte maturation and cell cycle control: a farewell symposium for Pr Marcel Dorée., Prigent C., Biol Cell. April 1, 2004; 96 (3): 181-5.


Ca(2+)(cyt) negatively regulates the initiation of oocyte maturation., Sun L., J Cell Biol. April 1, 2004; 165 (1): 63-75.              


Regulation of binding of lamin B receptor to chromatin by SR protein kinase and cdc2 kinase in Xenopus egg extracts., Takano M., J Biol Chem. March 26, 2004; 279 (13): 13265-71.


Activation of Cdc2 kinase during meiotic maturation of axolotl oocyte., Vaur S., Dev Biol. March 15, 2004; 267 (2): 265-78.


Homologue disjunction in mouse oocytes requires proteolysis of securin and cyclin B1., Herbert M., Nat Cell Biol. November 1, 2003; 5 (11): 1023-5.


Regulation of Cdc2/cyclin B activation in Xenopus egg extracts via inhibitory phosphorylation of Cdc25C phosphatase by Ca(2+)/calmodulin-dependent protein [corrected] kinase II., Hutchins JR., Mol Biol Cell. October 1, 2003; 14 (10): 4003-14.


A kinetic model of the cyclin E/Cdk2 developmental timer in Xenopus laevis embryos., Ciliberto A., Biophys Chem. July 1, 2003; 104 (3): 573-89.


Regulation of EDEN-dependent deadenylation of Aurora A/Eg2-derived mRNA via phosphorylation and dephosphorylation in Xenopus laevis egg extracts., Detivaud L., J Cell Sci. July 1, 2003; 116 (Pt 13): 2697-705.              


A requirement for MAP kinase in the assembly and maintenance of the mitotic spindle., Horne MM., J Cell Biol. June 23, 2003; 161 (6): 1021-8.          


Cdc2-cyclin B triggers H3 kinase activation of Aurora-A in Xenopus oocytes., Maton G., J Biol Chem. June 13, 2003; 278 (24): 21439-49.


Dual phosphorylation controls Cdc25 phosphatases and mitotic entry., Bulavin DV., Nat Cell Biol. June 1, 2003; 5 (6): 545-51.


Unmasking the S-phase-promoting potential of cyclin B1., Moore JD., Science. May 9, 2003; 300 (5621): 987-90.


Deregulation of Cdc2 kinase induces caspase-3 activation and apoptosis., Gu L., Biochem Biophys Res Commun. March 7, 2003; 302 (2): 384-91.          


Phosphorylation of the cyclin b1 cytoplasmic retention sequence by mitogen-activated protein kinase and Plx., Walsh S., Mol Cancer Res. February 1, 2003; 1 (4): 280-9.


DIF-1, an anti-tumor substance found in Dictyostelium discoideum, inhibits progesterone-induced oocyte maturation in Xenopus laevis., Kubohara Y., Eur J Pharmacol. January 24, 2003; 460 (2-3): 93-8.


G2 arrest in Xenopus oocytes depends on phosphorylation of cdc25 by protein kinase A., Duckworth BC., Proc Natl Acad Sci U S A. December 24, 2002; 99 (26): 16794-9.


Roles of aurora-A kinase in mitotic entry and G2 checkpoint in mammalian cells., Marumoto T., Genes Cells. November 1, 2002; 7 (11): 1173-82.            


Multiple Cdk1 inhibitory kinases regulate the cell cycle during development., Leise W., Dev Biol. September 1, 2002; 249 (1): 156-73.                                        


Initial activation of cyclin-B1-cdc2 kinase requires phosphorylation of cyclin B1., Peter M., EMBO Rep. June 1, 2002; 3 (6): 551-6.


Co-ordinating retinal histogenesis: early cell cycle exit enhances early cell fate determination in the Xenopus retina., Ohnuma S., Development. May 1, 2002; 129 (10): 2435-46.            


Human Speedy: a novel cell cycle regulator that enhances proliferation through activation of Cdk2., Porter LA., J Cell Biol. April 29, 2002; 157 (3): 357-66.                    


Timing of events in mitosis., Georgi AB., Curr Biol. January 22, 2002; 12 (2): 105-14.          


Patched1 interacts with cyclin B1 to regulate cell cycle progression., Barnes EA., EMBO J. May 1, 2001; 20 (9): 2214-23.


Polo-like kinase 1 phosphorylates cyclin B1 and targets it to the nucleus during prophase., Toyoshima-Morimoto F., Nature. March 8, 2001; 410 (6825): 215-20.


Combinatorial control of cyclin B1 nuclear trafficking through phosphorylation at multiple sites., Yang J., J Biol Chem. February 2, 2001; 276 (5): 3604-9.


Control of mitosis by changes in the subcellular location of cyclin-B1-Cdk1 and Cdc25C., Takizawa CG., Curr Opin Cell Biol. December 1, 2000; 12 (6): 658-65.


Nuclei and microtubule asters stimulate maturation/M phase promoting factor (MPF) activation in Xenopus eggs and egg cytoplasmic extracts., Pérez-Mongiovi D., J Cell Biol. September 4, 2000; 150 (5): 963-74.                  


Localised MPF regulation in eggs., Beckhelling C., Biol Cell. July 1, 2000; 92 (3-4): 245-53.


MEK and Cdc2 kinase are sequentially required for Golgi disassembly in MDCK cells by the mitotic Xenopus extracts., Kano F., J Cell Biol. April 17, 2000; 149 (2): 357-68.                      


Cyclin F regulates the nuclear localization of cyclin B1 through a cyclin-cyclin interaction., Kong M., EMBO J. March 15, 2000; 19 (6): 1378-88.


Regulation of microtubule organization during interphase and M phase., Shiina N., Cell Struct Funct. October 1, 1999; 24 (5): 385-91.


mini spindles: A gene encoding a conserved microtubule-associated protein required for the integrity of the mitotic spindle in Drosophila., Cullen CF., J Cell Biol. September 6, 1999; 146 (5): 1005-18.                  


Fission yeast condensin complex: essential roles of non-SMC subunits for condensation and Cdc2 phosphorylation of Cut3/SMC4., Sutani T., Genes Dev. September 1, 1999; 13 (17): 2271-83.


A maternal form of the phosphatase Cdc25A regulates early embryonic cell cycles in Xenopus laevis., Kim SH., Dev Biol. August 15, 1999; 212 (2): 381-91.            


Phosphorylation and glycosylation of nucleoporins., Miller MW., Arch Biochem Biophys. July 1, 1999; 367 (1): 51-60.


Maintenance of G2 arrest in the Xenopus oocyte: a role for 14-3-3-mediated inhibition of Cdc25 nuclear import., Yang J., EMBO J. April 15, 1999; 18 (8): 2174-83.


Nuclear import of Cdk/cyclin complexes: identification of distinct mechanisms for import of Cdk2/cyclin E and Cdc2/cyclin B1., Moore JD., J Cell Biol. January 25, 1999; 144 (2): 213-24.              

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