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A cyclin-dependent kinase-mediated phosphorylation switch of disordered protein condensation. , Valverde JM., Nat Commun. October 9, 2023; 14 (1): 6316.
Rif1 restrains the rate of replication origin firing in Xenopus laevis. , Haccard O ., Commun Biol. July 29, 2023; 6 (1): 788.
Polo-like kinase 1 (Plk1) regulates DNA replication origin firing and interacts with Rif1 in Xenopus. , Ciardo D., Nucleic Acids Res. September 27, 2021; 49 (17): 9851-9869.
Bora phosphorylation substitutes in trans for T-loop phosphorylation in Aurora A to promote mitotic entry. , Tavernier N., Nat Commun. March 26, 2021; 12 (1): 1899.
Bistable, Biphasic Regulation of PP2A- B55 Accounts for the Dynamics of Mitotic Substrate Phosphorylation. , Kamenz J., Curr Biol. February 22, 2021; 31 (4): 794-808.e6.
Phosphatase 1 Nuclear Targeting Subunit (PNUTS) Regulates Aurora Kinases and Mitotic Progression. , Wang F., Mol Cancer Res. January 1, 2019; 17 (1): 10-19.
Protein phosphatase 1 and phosphatase 1 nuclear targeting subunit-dependent regulation of DNA-dependent protein kinase and non-homologous end joining. , Zhu S., Nucleic Acids Res. October 13, 2017; 45 (18): 10583-10594.
Cell cycle-dependent regulation of Greatwall kinase by protein phosphatase 1 and regulatory subunit 3B. , Ren D., J Biol Chem. June 16, 2017; 292 (24): 10026-10034.
Reversal of DDK-Mediated MCM Phosphorylation by Rif1- PP1 Regulates Replication Initiation and Replisome Stability Independently of ATR/ Chk1. , Alver RC., Cell Rep. March 7, 2017; 18 (10): 2508-2520.
The cell proliferation antigen Ki-67 organises heterochromatin. , Sobecki M., Elife. March 7, 2016; 5 e13722.
Xenopus Cdc7 executes its essential function early in S phase and is counteracted by checkpoint-regulated protein phosphatase 1. , Poh WT., Open Biol. January 8, 2014; 4 (1): 130138.
Metabolic regulation of CaMKII protein and caspases in Xenopus laevis egg extracts. , McCoy F., J Biol Chem. March 29, 2013; 288 (13): 8838-48.
Inhibitor-2 induced M-phase arrest in Xenopus cycling egg extracts is dependent on MAPK activation. , Khandani A., Cell Mol Biol Lett. December 1, 2011; 16 (4): 669-88.
Repo-man controls a protein phosphatase 1-dependent threshold for DNA damage checkpoint activation. , Peng A ., Curr Biol. March 9, 2010; 20 (5): 387-96.
Aurora B kinase and protein phosphatase 1 have opposing roles in modulating kinetochore assembly. , Emanuele MJ., J Cell Biol. April 21, 2008; 181 (2): 241-54.
Nuclear envelope precursor vesicle targeting to chromatin is stimulated by protein phosphatase 1 in Xenopus egg extracts. , Ito H., Exp Cell Res. May 15, 2007; 313 (9): 1897-910.
Protein phosphatase 1 regulates the stability of the circadian protein PER2. , Gallego M., Biochem J. October 1, 2006; 399 (1): 169-75.
Src kinase induces calcium release in Xenopus egg extracts via PLCgamma and IP3-dependent mechanism. , Tokmakov AA., Cell Calcium. July 1, 2002; 32 (1): 11-20.
Aurora-B phosphorylates Histone H3 at serine28 with regard to the mitotic chromosome condensation. , Goto H., Genes Cells. January 1, 2002; 7 (1): 11-7.
Protein phosphatase 2A and its B56 regulatory subunit inhibit Wnt signaling in Xenopus. , Li X., EMBO J. August 1, 2001; 20 (15): 4122-31.
Chromatin-associated protein phosphatase 1 regulates aurora-B and histone H3 phosphorylation. , Murnion ME., J Biol Chem. July 13, 2001; 276 (28): 26656-65.
Hydrogen peroxide induces Src family tyrosine kinase-dependent activation of Xenopus eggs. , Sato K ., Dev Growth Differ. February 1, 2001; 43 (1): 55-72.
Tyrosine kinase-dependent activation of phospholipase Cgamma is required for calcium transient in Xenopus egg fertilization. , Sato K ., Dev Biol. August 15, 2000; 224 (2): 453-69.
Chromatin binding and polymerization of the endogenous Xenopus egg lamins: the opposing effects of glycogen and ATP. , Lourim D., J Cell Sci. December 18, 1998; 111 ( Pt 24) 3675-86.
Distinct roles of PP1 and PP2A-like phosphatases in control of microtubule dynamics during mitosis. , Tournebize R., EMBO J. September 15, 1997; 16 (18): 5537-49.
Protein phosphatase 1 regulates the cytoplasmic dynein-driven formation of endoplasmic reticulum networks in vitro. , Allan V., J Cell Biol. March 1, 1995; 128 (5): 879-91.