Redox Regulation of Cdc25B by Cell-Active Quinolinediones
暂无分享,去创建一个
Peter Wipf | Billy W Day | John S Lazo | P. Wipf | J. Lazo | B. Day | M. Brisson | Caleb Foster | C. Foster | Marni Brisson | Theresa Nguyen | Beomjun Joo | John S Skoko | Emanuel M Schreiber | Pallavi Bansal | B. Joo | Theresa Nguyen | Emanuel M. Schreiber | Pallavi Bansal | John S. Skoko | J. Skoko | Beomjun Joo
[1] M. Loda,et al. Role of the Cdc 25 A phosphatase in human breast cancer , 2000 .
[2] F. Hanaoka,et al. Screening of cell cycle inhibitors from microbial metabolites by a bioassay using a mouse cdc2 mutant cell line, tsFT210. , 1997, Bioorganic & medicinal chemistry.
[3] K D Watenpaugh,et al. Crystal structure of the catalytic subunit of Cdc25B required for G2/M phase transition of the cell cycle. , 1999, Journal of molecular biology.
[4] Ivet Bahar,et al. Discovery and Characterization of Novel Small Molecule Inhibitors of Human Cdc25B Dual Specificity Phosphatase , 2004, Molecular Pharmacology.
[5] Michael Karin,et al. Reactive Oxygen Species Promote TNFα-Induced Death and Sustained JNK Activation by Inhibiting MAP Kinase Phosphatases , 2005, Cell.
[6] J. Denu,et al. Specific and reversible inactivation of protein tyrosine phosphatases by hydrogen peroxide: evidence for a sulfenic acid intermediate and implications for redox regulation. , 1998, Biochemistry.
[7] E. Cadenas,et al. Thiol oxidation coupled to DT-diaphorase-catalysed reduction of diaziquone. Reductive and oxidative pathways of diaziquone semiquinone modulated by glutathione and superoxide dismutase. , 1992, The Biochemical journal.
[8] M. Gresser,et al. Catalytic inactivation of protein tyrosine phosphatase CD45 and protein tyrosine phosphatase 1B by polyaromatic quinones. , 2004, Biochemistry.
[9] P. Wardman. Bioreductive activation of quinones: redox properties and thiol reactivity. , 1990, Free radical research communications.
[10] Michael P. Myers,et al. Redox regulation of protein tyrosine phosphatase 1B involves a sulphenyl-amide intermediate , 2003, Nature.
[11] Peter Wipf,et al. Identification of a potent and selective pharmacophore for Cdc25 dual specificity phosphatase inhibitors. , 2002, Molecular pharmacology.
[12] Stefan Vasile,et al. The oxidative mechanism of action of ortho-quinone inhibitors of protein-tyrosine phosphatase alpha is mediated by hydrogen peroxide. , 2004, Archives of biochemistry and biophysics.
[13] J. Rudolph,et al. Catalytic and chemical competence of regulation of cdc25 phosphatase by oxidation/reduction. , 2003, Biochemistry.
[14] P. O'Brien. Molecular mechanisms of quinone cytotoxicity. , 1991, Chemico-biological interactions.
[15] J. Kerns,et al. Thioalkyl Derivatives of Vitamin K3 and Vitamin K3 Oxide Inhibit Growth of Hep3B and HepG2 Cells , 1995 .
[16] J. Rudolph,et al. Catalytic mechanism of Cdc25. , 2002, Biochemistry.
[17] J. Dixon,et al. Evidence for protein-tyrosine-phosphatase catalysis proceeding via a cysteine-phosphate intermediate. , 1991, The Journal of biological chemistry.
[18] P. Wipf,et al. Dual-specificity phosphatases as targets for antineoplastic agents , 2002, Nature Reviews Drug Discovery.
[19] A. Alayash,et al. Redox cycling of diaspirin cross-linked hemoglobin induces G2/M arrest and apoptosis in cultured endothelial cells. , 2001, Blood.
[20] M. Loda,et al. CDC25 phosphatases as potential human oncogenes. , 1995, Science.
[21] C. Walsh,et al. Isolation and structural elucidation of a novel phosphocysteine intermediate in the LAR protein tyrosine phosphatase enzymatic pathway , 1992 .
[22] P. Wipf,et al. Discovery and biological evaluation of a new family of potent inhibitors of the dual specificity protein phosphatase Cdc25. , 2001, Journal of medicinal chemistry.
[23] A. Koster. Bioreductive activation of quinones: A mixed blessing , 1991, Pharmaceutisch Weekblad.
[24] M. Pirrung,et al. Inhibition of Cdc25 phosphatases by indolyldihydroxyquinones. , 2003, Journal of medicinal chemistry.
[25] Kap-Seok Yang,et al. Redox regulation of PTEN and protein tyrosine phosphatases in H2O2‐mediated cell signaling , 2004, FEBS letters.
[26] S. Rhee,et al. Reversible Inactivation of Protein-tyrosine Phosphatase 1B in A431 Cells Stimulated with Epidermal Growth Factor* , 1998, The Journal of Biological Chemistry.
[27] Carla Mattos,et al. Structural mechanism of oxidative regulation of the phosphatase Cdc25B via an intramolecular disulfide bond. , 2005, Biochemistry.
[28] R. Barret,et al. Oxidation of phenols to quinones by bis(trifluoroacetoxy)iodobenzene. , 2010 .
[29] E. Fauman,et al. Crystal Structure of the Catalytic Domain of the Human Cell Cycle Control Phosphatase, Cdc25A , 1998, Cell.
[30] J. Rudolph. Targeting the Neighbor's Pool , 2004, Molecular Pharmacology.
[31] T. Finkel,et al. Redox Regulation of Cdc25C* , 2002, The Journal of Biological Chemistry.
[32] J. Lazo,et al. Expression in Human Bronchial and Lung Cancer Cells 1 , 2003 .
[33] T. Mori,et al. Superoxide dismutase and thioredoxin restore defective p34cdc2 kinase activation in mouse two-cell block. , 1993, Biochimica et biophysica acta.
[34] N. Tonks. Redox Redux: Revisiting PTPs and the Control of Cell Signaling , 2005, Cell.
[35] M. Gorospe,et al. Enhanced sensitivity and long-term G2 arrest in hydrogen peroxide-treated Ku80-null cells are unrelated to DNA repair defects. , 2000, Free radical biology & medicine.
[36] Toshiyuki Fukada,et al. Reversible oxidation and inactivation of protein tyrosine phosphatases in vivo. , 2002, Molecular cell.
[37] A. Stoppani,et al. Redox cycling of beta-lapachone and related o-naphthoquinones in the presence of dihydrolipoamide and oxygen. , 1996, Biochemical pharmacology.
[38] J. Rudolph,et al. Dual-specific Cdc25B phosphatase: in search of the catalytic acid. , 2000, Biochemistry.
[39] P. B. Chock,et al. Regulation of PTP1B via glutathionylation of the active site cysteine 215. , 1999, Biochemistry.
[40] J. Lazo,et al. The carcinogen (7R,8S)-dihydroxy-(9S,10R)-epoxy-7,8,9,10-tetrahydrobenzo[a]pyrene induces Cdc25B expression in human bronchial and lung cancer cells. , 2003, Cancer research.
[41] Meifang Wang,et al. Fluorinated quinoid inhibitor: possible "pure" arylator predicted by the simple theoretical calculation. , 2004, Bioorganic & medicinal chemistry letters.
[42] P. Wipf,et al. NAD(P)H:Quinone Oxidoreductase-1-Dependent and -Independent Cytotoxicity of Potent Quinone Cdc25 Phosphatase Inhibitors , 2004, Journal of Pharmacology and Experimental Therapeutics.
[43] J. Rudolph,et al. Cdc25 phosphatases and cancer. , 2004, Chemistry & biology.
[44] L. Zhu,et al. Insulin-stimulated Hydrogen Peroxide Reversibly Inhibits Protein-tyrosine Phosphatase 1B in Vivo and Enhances the Early Insulin Action Cascade* , 2001, The Journal of Biological Chemistry.
[45] J. Lazo,et al. Dual G1 and G2 Phase Inhibition by a Novel, Selective Cdc25 Inhibitor 7-Chloro-6-(2-morpholin-4-ylethylamino)- quinoline-5,8-dione* , 2002, The Journal of Biological Chemistry.
[46] J. Dixon,et al. Form and Function in Protein Dephosphorylation , 1996, Cell.