Proteome analysis of apoptosis signaling by S‐trityl‐L‐cysteine, a potent reversible inhibitor of human mitotic kinesin Eg5
暂无分享,去创建一个
B. Thiede | P. Jungblut | F. Kozielski | D. Skoufias | Y. Saoudi | H. K. Hustoft | Rose-Laure Indorato | Margarita Strozynski | Peter R. Jungblut | Hanne K. Hustoft | Dimitrios A. Skoufias
[1] Makoto Kinoshita,et al. [Small molecule inhibitor of mitotic spindle bipolarity identified in a phenotype-based screen]. , 2007, Tanpakushitsu kakusan koso. Protein, nucleic acid, enzyme.
[2] C. Chalfant,et al. The RNA-binding protein Sam68 modulates the alternative splicing of Bcl-x , 2007, The Journal of cell biology.
[3] R. Cross,et al. S-Trityl-L-cysteine Is a Reversible, Tight Binding Inhibitor of the Human Kinesin Eg5 That Specifically Blocks Mitotic Progression* , 2006, Journal of Biological Chemistry.
[4] Maria Kavallaris,et al. Proteomic analysis reveals a novel role for the actin cytoskeleton in vincristine resistant childhood leukemia – An in vivo study , 2006, Proteomics.
[5] K. Gevaert,et al. Caspase-specific and nonspecific in vivo protein processing during Fas-induced apoptosis , 2005, Nature Methods.
[6] I. Weinstein,et al. Effects of a series of organosulfur compounds on mitotic arrest and induction of apoptosis in colon cancer cells , 2005, Molecular Cancer Therapeutics.
[7] Xiaofeng Yang,et al. An N-terminal region of translationally controlled tumor protein is required for its antiapoptotic activity , 2005, Oncogene.
[8] Marina Bibikova,et al. Functional analysis of human microtubule-based motor proteins, the kinesins and dyneins, in mitosis/cytokinesis using RNA interference. , 2005, Molecular biology of the cell.
[9] Weikang Tao,et al. Induction of apoptosis by an inhibitor of the mitotic kinesin KSP requires both activation of the spindle assembly checkpoint and mitotic slippage. , 2005, Cancer cell.
[10] H. Yang-Yen,et al. Stabilization and Enhancement of the Antiapoptotic Activity of Mcl-1 by TCTP , 2005, Molecular and Cellular Biology.
[11] K. Brejc,et al. Mitotic kinesins: prospects for antimitotic drug discovery. , 2005, Current topics in medicinal chemistry.
[12] A. Marcus,et al. Mitotic Kinesin Inhibitors Induce Mitotic Arrest and Cell Death in Taxol-resistant and -sensitive Cancer Cells* , 2005, Journal of Biological Chemistry.
[13] Bernd Thiede,et al. Peptide mass fingerprinting. , 2005, Methods.
[14] T. Meyer,et al. A Global Approach Combining Proteome Analysis and Phenotypic Screening with RNA Interference Yields Novel Apoptosis Regulators*S , 2005, Molecular & Cellular Proteomics.
[15] N. Hirokawa,et al. Kinesin superfamily proteins and their various functions and dynamics. , 2004, Experimental cell research.
[16] E. Bradbury,et al. Large-scale quantitative proteomic study of PUMA-induced apoptosis using two-dimensional liquid chromatography-mass spectrometry coupled with amino acid-coded mass tagging. , 2004, Journal of proteome research.
[17] Osamu Iwasaki,et al. A conserved Mis12 centromere complex is linked to heterochromatic HP1 and outer kinetochore protein Zwint-1 , 2004, Nature Cell Biology.
[18] S. Brier,et al. Identification of the protein binding region of S-trityl-L-cysteine, a new potent inhibitor of the mitotic kinesin Eg5. , 2004, Biochemistry.
[19] T. Rudel,et al. Proteome analysis of apoptotic cells. , 2004, Mass spectrometry reviews.
[20] Gautier Robin,et al. In vitro screening for inhibitors of the human mitotic kinesin Eg5 with antimitotic and antitumor activities. , 2004, Molecular cancer therapeutics.
[21] M. Elkabets,et al. Differential effects of monastrol in two human cell lines , 2004, Cellular and Molecular Life Sciences CMLS.
[22] Pier Giorgio Righetti,et al. Blue silver: A very sensitive colloidal Coomassie G‐250 staining for proteome analysis , 2004, Electrophoresis.
[23] K. Wood,et al. Antitumor activity of a kinesin inhibitor. , 2004, Cancer research.
[24] P. Krammer,et al. Death receptors in chemotherapy and cancer , 2004, Oncogene.
[25] M. Jordan,et al. Microtubules as a target for anticancer drugs , 2004, Nature Reviews Cancer.
[26] B. Thiele,et al. The translationally controlled tumour protein (TCTP). , 2004, The international journal of biochemistry & cell biology.
[27] Lawrence C Kuo,et al. Inhibition of a mitotic motor protein: where, how, and conformational consequences. , 2004, Journal of molecular biology.
[28] T. Kuwana,et al. Bcl-2-family proteins and the role of mitochondria in apoptosis. , 2003, Current opinion in cell biology.
[29] M. Cammer,et al. Gene expression and mitotic exit induced by microtubule-stabilizing drugs. , 2003, Cancer research.
[30] Chava Kimchi-Sarfaty,et al. P-glycoprotein: from genomics to mechanism , 2003, Oncogene.
[31] D. Weil,et al. Targeting the kinesin Eg5 to monitor siRNA transfection in mammalian cells. , 2002, BioTechniques.
[32] F. Yarm. Plk Phosphorylation Regulates the Microtubule-Stabilizing Protein TCTP , 2002, Molecular and Cellular Biology.
[33] C. Schamberger,et al. Proteome analysis of nuclear matrix proteins during apoptotic chromatin condensation , 2002, Cell Death and Differentiation.
[34] Stephen S. Taylor,et al. Kinetochore localisation and phosphorylation of the mitotic checkpoint components Bub1 and BubR1 are differentially regulated by spindle events in human cells. , 2001, Journal of cell science.
[35] M. Kavallaris,et al. Multiple microtubule alterations are associated with Vinca alkaloid resistance in human leukemia cells. , 2001, Cancer research.
[36] K. Wood,et al. Past and future of the mitotic spindle as an oncology target. , 2001, Current opinion in pharmacology.
[37] N. Hirokawa,et al. All kinesin superfamily protein, KIF, genes in mouse and human , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[38] S. Dutcher. The tubulin fraternity: alpha to eta. , 2001, Current opinion in cell biology.
[39] A. Wyllie,et al. Defying death after DNA damage , 2000, Nature.
[40] E. Lees,et al. The mitotic serine/threonine kinase Aurora2/AIK is regulated by phosphorylation and degradation , 2000, Oncogene.
[41] T. Rudel,et al. A two dimensional electrophoresis database of a human Jurkat T‐cell line , 2000, Electrophoresis.
[42] D. N. Perkins,et al. Probability‐based protein identification by searching sequence databases using mass spectrometry data , 1999, Electrophoresis.
[43] Y. Gachet,et al. The growth-related, translationally controlled protein P23 has properties of a tubulin binding protein and associates transiently with microtubules during the cell cycle. , 1999, Journal of cell science.
[44] G. Lyons,et al. Expression of the Mitotic Motor Protein Eg5 in Postmitotic Neurons: Implications for Neuronal Development , 1998, The Journal of Neuroscience.
[45] J. B. Rattner,et al. Expanding the role of HsEg5 within the mitotic and post-mitotic phases of the cell cycle. , 1998, Journal of cell science.
[46] J. Höhfeld. Regulation of the heat shock conjugate Hsc70 in the mammalian cell: the characterization of the anti-apoptotic protein BAG-1 provides novel insights. , 1998, Biological chemistry.
[47] M. Jordan,et al. Microtubules and actin filaments: dynamic targets for cancer chemotherapy. , 1998, Current opinion in cell biology.
[48] C. Allis,et al. Mitosis-specific phosphorylation of histone H3 initiates primarily within pericentromeric heterochromatin during G2 and spreads in an ordered fashion coincident with mitotic chromosome condensation , 1997, Chromosoma.
[49] J. Frydman,et al. Chaperones get in touch: the Hip-Hop connection. , 1997, Trends in biochemical sciences.
[50] W. B. Derry,et al. Mitotic block induced in HeLa cells by low concentrations of paclitaxel (Taxol) results in abnormal mitotic exit and apoptotic cell death. , 1996, Cancer research.
[51] H. Lane,et al. Phosphorylation by p34cdc2 regulates spindle association of human Eg5, a kinesin-related motor essential for bipolar spindle formation in vivo , 1995, Cell.
[52] M. Jordan,et al. Microtubule dynamics: taking aim at a moving target. , 1995, Chemistry & biology.
[53] J. Hsuan,et al. A target for Src in mitosis , 1994, Nature.
[54] D. Shalloway,et al. An RNA-binding protein associated with Src through its SH2 and SH3 domains in mitosis , 1994, Nature.
[55] K D Paull,et al. Identification of novel antimitotic agents acting at the tubulin level by computer-assisted evaluation of differential cytotoxicity data. , 1992, Cancer research.
[56] R. Seifert,et al. Analysis by high-resolution two-dimensional electrophoresis of differentiation-dependent alterations in cytosolic protein pattern of HL-60 leukemic cells. , 1990, Journal of biochemical and biophysical methods.
[57] Andrew W. Murray,et al. The role of cyclin synthesis and degradation in the control of maturation promoting factor activity , 1989, Nature.
[58] A. McPhail,et al. Plant antitumor agents. VI. The isolation and structure of taxol, a novel antileukemic and antitumor agent from Taxus brevifolia. , 1971, Journal of the American Chemical Society.
[59] T. Rudel,et al. Quantitative proteome analysis of CD95 (Fas/Apo‐1)‐induced apoptosis by stable isotope labeling with amino acids in cell culture, 2‐DE and MALDI‐MS , 2006, Proteomics.
[60] Y. Sunada,et al. Mechanism of taxane neurotoxicity , 2004, Breast cancer.
[61] Mimi Shirasu-Hiza,et al. Dynamics of the mitotic spindle--potential therapeutic targets. , 2003, Progress in cell cycle research.
[62] M. Jordan,et al. Mechanism of action of antitumor drugs that interact with microtubules and tubulin. , 2002, Current medicinal chemistry. Anti-cancer agents.
[63] Joachim Klose,et al. Two‐dimensional electrophoresis of proteins: An updated protocol and implications for a functional analysis of the genome , 1995, Electrophoresis.