Asparagine synthetase: regulation by cell stress and involvement in tumor biology.
暂无分享,去创建一个
[1] T. Anthony,et al. ATF4-dependent Regulation of the JMJD3 Gene during Amino Acid Deprivation Can Be Rescued in Atf4-deficient Cells by Inhibition of Deacetylation* , 2012, The Journal of Biological Chemistry.
[2] J. Scoazec,et al. Pancreatic Tumor Sensitivity to Plasma L-Asparagine Starvation , 2012, Pancreas.
[3] E. Dudenhausen,et al. Auto-activation of c-JUN Gene by Amino Acid Deprivation of Hepatocellular Carcinoma Cells Reveals a Novel c-JUN-mediated Signaling Pathway* , 2011, The Journal of Biological Chemistry.
[4] V. Carraro,et al. Amino Acid Availability Controls TRB3 Transcription in Liver through the GCN2/eIF2α/ATF4 Pathway , 2010, PloS one.
[5] T. Anthony,et al. The eIF2 kinase GCN2 is essential for the murine immune system to adapt to amino acid deprivation by asparaginase. , 2010, The Journal of nutrition.
[6] Jiangbin Ye,et al. The GCN2‐ATF4 pathway is critical for tumour cell survival and proliferation in response to nutrient deprivation , 2010, The EMBO journal.
[7] E. Shaulian. AP-1--The Jun proteins: Oncogenes or tumor suppressors in disguise? , 2010, Cellular signalling.
[8] H. Baker,et al. Expression profiling after activation of amino acid deprivation response in HepG2 human hepatoma cells. , 2010, Physiological genomics.
[9] S. Jeffrey,et al. Circulating tumour cells demonstrate an altered response to hypoxia and an aggressive phenotype , 2010, British Journal of Cancer.
[10] N. Su,et al. ATF4-dependent transcription mediates signaling of amino acid limitation , 2009, Trends in Endocrinology & Metabolism.
[11] B. Dérijard,et al. Identification of a Novel Amino Acid Response Pathway Triggering ATF2 Phosphorylation in Mammals , 2009, Molecular and Cellular Biology.
[12] T. Anthony,et al. GCN2 Protein Kinase Is Required to Activate Amino Acid Deprivation Responses in Mice Treated with the Anti-cancer Agent l-Asparaginase* , 2009, The Journal of Biological Chemistry.
[13] S. Kimball,et al. eIF2alpha kinases GCN2 and PERK modulate transcription and translation of distinct sets of mRNAs in mouse liver. , 2009, Physiological genomics.
[14] N. Su,et al. Protein or amino acid deprivation differentially regulates the hepatic forkhead box protein A (FOXA) genes through an activating transcription factor‐4–independent pathway , 2009, Hepatology.
[15] P. Taylor. Amino acid transporters: éminences grises of nutrient signalling mechanisms? , 2009, Biochemical Society transactions.
[16] N. Su,et al. C/EBP Homology Protein (CHOP) Interacts with Activating Transcription Factor 4 (ATF4) and Negatively Regulates the Stress-dependent Induction of the Asparagine Synthetase Gene* , 2008, Journal of Biological Chemistry.
[17] J. Weinstein,et al. Asparagine synthetase is a predictive biomarker of l-asparaginase activity in ovarian cancer cell lines , 2008, Molecular Cancer Therapeutics.
[18] Donghui Zhou,et al. Phosphorylation of eIF2 Directs ATF5 Translational Control in Response to Diverse Stress Conditions* , 2008, Journal of Biological Chemistry.
[19] R. Kaufman,et al. MEK Signaling Is Required for Phosphorylation of eIF2α following Amino Acid Limitation of HepG2 Human Hepatoma Cells* , 2008, Journal of Biological Chemistry.
[20] S. Hunger,et al. Correlation between asparaginase sensitivity and asparagine synthetase protein content, but not mRNA, in acute lymphoblastic leukemia cell lines , 2008, Pediatric blood & cancer.
[21] Shigeru Takahashi,et al. Stress-induced Translation of ATF5 mRNA Is Regulated by the 5′-Untranslated Region* , 2008, Journal of Biological Chemistry.
[22] R. Wek,et al. Translational control and the unfolded protein response. , 2007, Antioxidants & redox signaling.
[23] P. Verde,et al. Deciphering AP-1 Function in Tumorigenesis: Fra-ternizing on Target Promoters , 2007, Cell cycle.
[24] M. Asaka,et al. Enhanced expression of asparagine synthetase under glucose-deprived conditions protects pancreatic cancer cells from apoptosis induced by glucose deprivation and cisplatin. , 2007, Cancer research.
[25] C. Chiang,et al. A feedback transcriptional mechanism controls the level of the arginine/lysine transporter cat-1 during amino acid starvation. , 2007, The Biochemical journal.
[26] F. Guo,et al. The GCN2 eIF2alpha kinase regulates fatty-acid homeostasis in the liver during deprivation of an essential amino acid. , 2007, Cell metabolism.
[27] P. Hirvikoski,et al. Expression profiling of PC‐3 cell line variants and comparison of MIC‐1 transcript levels in benign and malignant prostate , 2007, European journal of clinical investigation.
[28] N. Jones,et al. ATF2 is required for amino acid-regulated transcription by orchestrating specific histone acetylation , 2007, Nucleic acids research.
[29] Gabriel S. Eichler,et al. Asparagine synthetase as a causal, predictive biomarker for l-asparaginase activity in ovarian cancer cells , 2006, Molecular Cancer Therapeutics.
[30] M. Kilberg,et al. Alignment of the transcription start site coincides with increased transcriptional activity from the human asparagine synthetase gene following amino acid deprivation of HepG2 cells. , 2006, The Journal of nutrition.
[31] Nigel G J Richards,et al. Asparagine synthetase chemotherapy. , 2006, Annual review of biochemistry.
[32] M. D. Den Boer,et al. Up-regulation of asparagine synthetase expression is not linked to the clinical response L-asparaginase in pediatric acute lymphoblastic leukemia. , 2006, Blood.
[33] T. Anthony,et al. Coping with stress: eIF2 kinases and translational control. , 2006, Biochemical Society transactions.
[34] Yuan-Xiang Pan,et al. Amino-acid limitation induces transcription from the human C/EBPbeta gene via an enhancer activity located downstream of the protein coding sequence. , 2005, The Biochemical journal.
[35] C. Vinson,et al. Regulation of asparagine synthetase gene transcription by the basic region leucine zipper transcription factors ATF5 and CHOP , 2005, Biological chemistry.
[36] W. Evans,et al. Asparagine synthetase expression is linked with L-asparaginase resistance in TEL-AML1-negative but not TEL-AML1-positive pediatric acute lymphoblastic leukemia. , 2005, Blood.
[37] R. Wek,et al. GCN2 phosphorylation of eIF2a activates NF-?B in response to UV irradiation , 2005 .
[38] Yuan-Xiang Pan,et al. Amino Acid Deprivation Induces the Transcription Rate of the Human Asparagine Synthetase Gene through a Timed Program of Expression and Promoter Binding of Nutrient-responsive Basic Region/Leucine Zipper Transcription Factors as Well as Localized Histone Acetylation* , 2004, Journal of Biological Chemistry.
[39] D. Ron,et al. Translation reinitiation at alternative open reading frames regulates gene expression in an integrated stress response , 2004, The Journal of cell biology.
[40] Cheng Cheng,et al. Gene-expression patterns in drug-resistant acute lymphoblastic leukemia cells and response to treatment. , 2004, The New England journal of medicine.
[41] R. Wek,et al. Reinitiation involving upstream ORFs regulates ATF4 mRNA translation in mammalian cells. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[42] S. Roy,et al. Methylation of the asparagine synthetase promoter in human leukemic cell lines is associated with a specific methyl binding protein , 2004, Oncogene.
[43] O. Hrusak,et al. Upregulation of asparagine synthetase fails to avert cell cycle arrest induced by L-asparaginase in TEL/AML1-positive leukaemic cells , 2004, Leukemia.
[44] M. Kilberg,et al. Characterization of the nutrient-sensing response unit in the human asparagine synthetase promoter. , 2003, The Biochemical journal.
[45] S. Pattingre,et al. Amino Acids Interfere with the ERK1/2-dependent Control of Macroautophagy by Controlling the Activation of Raf-1 in Human Colon Cancer HT-29 Cells* , 2003, The Journal of Biological Chemistry.
[46] M. D. Den Boer,et al. Sensitivity to L-asparaginase is not associated with expression levels of asparagine synthetase in t(12;21)+ pediatric ALL. , 2003, Blood.
[47] S. Arai,et al. Dietary protein quantity and quality affect rat hepatic gene expression. , 2002, The Journal of nutrition.
[48] N. Sonenberg,et al. Regulation of Protein Synthesis by Hypoxia via Activation of the Endoplasmic Reticulum Kinase PERK and Phosphorylation of the Translation Initiation Factor eIF2α , 2002, Molecular and Cellular Biology.
[49] S. Kimball,et al. The GCN2 eIF2α Kinase Is Required for Adaptation to Amino Acid Deprivation in Mice , 2002, Molecular and Cellular Biology.
[50] M. Kilberg,et al. ATF4 Is a Mediator of the Nutrient-sensing Response Pathway That Activates the Human Asparagine Synthetase Gene* , 2002, The Journal of Biological Chemistry.
[51] M. Kilberg,et al. Role of Sp1 and Sp3 in the Nutrient-regulated Expression of the Human Asparagine Synthetase Gene* , 2002, The Journal of Biological Chemistry.
[52] M. Kilberg,et al. CCAAT/Enhancer-binding Protein-β Is a Mediator of the Nutrient-sensing Response Pathway That Activates the Human Asparagine Synthetase Gene* , 2001, The Journal of Biological Chemistry.
[53] J. Issa,et al. Hypermethylation of CpG islands in the mouse asparagine synthetase gene: relationship to asparaginase sensitivity in lymphoma cells. Partial methylation in normal cells , 2001, British Journal of Cancer.
[54] M. Kilberg,et al. Asparagine synthetase expression alone is sufficient to induce l-asparaginase resistance in MOLT-4 human leukaemia cells. , 2001, The Biochemical journal.
[55] S. Pattingre,et al. Erk1/2-dependent Phosphorylation of Gα-interacting Protein Stimulates Its GTPase Accelerating Activity and Autophagy in Human Colon Cancer Cells* , 2000, The Journal of Biological Chemistry.
[56] M. Schapira,et al. Regulated translation initiation controls stress-induced gene expression in mammalian cells. , 2000, Molecular cell.
[57] S. Schuster,et al. Activation of the human asparagine synthetase gene by the amino acid response and the endoplasmic reticulum stress response pathways occurs by common genomic elements. , 2000, The Journal of biological chemistry.
[58] W. Kolch,et al. Raf-1-associated Protein Phosphatase 2A as a Positive Regulator of Kinase Activation* , 2000, The Journal of Biological Chemistry.
[59] D. Ron,et al. Perk is essential for translational regulation and cell survival during the unfolded protein response. , 2000, Molecular cell.
[60] S. Schuster,et al. Activation of the Unfolded Protein Response Pathway Induces Human Asparagine Synthetase Gene Expression* , 1999, The Journal of Biological Chemistry.
[61] S. Schuster,et al. Transcriptional regulation of the human asparagine synthetase gene by carbohydrate availability. , 1999, The Biochemical journal.
[62] T. W. Fawcett,et al. Complexes containing activating transcription factor (ATF)/cAMP-responsive-element-binding protein (CREB) interact with the CCAAT/enhancer-binding protein (C/EBP)-ATF composite site to regulate Gadd153 expression during the stress response. , 1999, The Biochemical journal.
[63] R. Pieters,et al. Relationship between major vault protein/lung resistance protein, multidrug resistance-associated protein, P-glycoprotein expression, and drug resistance in childhood leukemia. , 1998, Blood.
[64] Tsonwin Hai,et al. gadd153/Chop10, a potential target gene of the transcriptional repressor ATF3 , 1997, Molecular and cellular biology.
[65] A. Hinnebusch,et al. Translational Regulation of Yeast GCN4 , 1997, The Journal of Biological Chemistry.
[66] S. Schuster,et al. Amino acid control of asparagine synthetase: relation to asparaginase resistance in human leukemia cells. , 1997, American Journal of Physiology.
[67] D. Häussinger,et al. An example of nutrient control of gene expression: amino acid-dependent regulation of asparagine synthetase. , 1996, Clinical nutrition.
[68] S. Dudek,et al. Essential Amino Acids Regulate Fatty Acid Synthase Expression through an Uncharged Transfer RNA-dependent Mechanism* , 1995, The Journal of Biological Chemistry.
[69] M. Kilberg,et al. Cloning of rat asparagine synthetase and specificity of the amino acid-dependent control of its mRNA content. , 1994, The Biochemical journal.
[70] T. Chiyo,et al. Induction of asparagine synthetase by follicle-stimulating hormone in primary cultures of rat Sertoli cells. , 1994, Archives of Biochemistry and Biophysics.
[71] L. Guerrini,et al. Cis- and trans-acting elements involved in amino acid regulation of asparagine synthetase gene expression , 1993, Molecular and cellular biology.
[72] L. Guerrini,et al. Regulation of asparagine synthetase gene expression by amino acid starvation , 1991, Molecular and cellular biology.
[73] I. Andrulis,et al. Hypomethylation and reactivation of the asparagine synthetase gene induced by L-asparaginase and ethyl methanesulfonate. , 1991, Cancer research.
[74] M. Barrett,et al. DNA methylation patterns associated with asparagine synthetase expression in asparagine-overproducing and -auxotrophic cells , 1989, Molecular and cellular biology.
[75] M. Ittmann,et al. Organization and expression of the cell cycle gene, ts11, that encodes asparagine synthetase , 1989, Molecular and cellular biology.
[76] I. Andrulis,et al. Molecular structure of the human asparagine synthetase gene. , 1989, Genomics.
[77] I. Andrulis,et al. Isolation of human cDNAs for asparagine synthetase and expression in Jensen rat sarcoma cells , 1987, Molecular and cellular biology.
[78] A Greco,et al. Molecular cloning of a gene that is necessary for G1 progression in mammalian cells. , 1987, Proceedings of the National Academy of Sciences of the United States of America.
[79] I. Andrulis,et al. Molecular cloning of a cDNA for Chinese hamster ovary asparagine synthetase. , 1984, Gene.
[80] S. Arfin,et al. Properties of asparagine synthetase in asparagine-independent variants of Jensen rat sarcoma cells induced by 5-azacytidine , 1983, Molecular and cellular biology.
[81] S. Arfin,et al. Assignment of structural gene for asparagine synthetase to human chromosome 7 , 1983, Somatic Cell Genetics.
[82] G. W. Hatfield,et al. Asparaginyl-tRNA aminoacylation levels and asparagine synthetase expression in cultured Chinese hamster ovary cells. , 1979, The Journal of biological chemistry.
[83] D. Cooney,et al. Role of pancreatic L-asparagine synthetase in homeostasis of L-asparagine. , 1979, The American journal of physiology.
[84] G. W. Hatfield,et al. A role for asparaginyl-tRNA in the regulation of asparagine synthetase in a mammalian cell line. , 1977, Proceedings of the National Academy of Sciences of the United States of America.
[85] I. Wodinsky,et al. L-Asparagine synthetase in serum as a marker for neoplasia. , 1976, Cancer research.
[86] D. Cooney,et al. The distribution of L-asparagine synthetase in the principal organs of several mammalian and avian species. , 1974, The Biochemical journal.
[87] D. M. Rocha,et al. Glucagon-stimulating activity of 20 amino acids in dogs. , 1972, The Journal of clinical investigation.
[88] R. Handschumacher,et al. Evaluation of L-asparagine metabolism in animals and man. , 1970, Cancer research.
[89] J. Broome. STUDIES ON THE MECHANISM OF TUMOR INHIBITION BY L-ASPARAGINASE , 1968, The Journal of experimental medicine.
[90] M. K. Patterson,et al. Asparagine biosynthesis by the Novikoff Hepatoma isolation, purification, property, and mechanism studies of the enzyme system. , 1968, The Journal of biological chemistry.
[91] J. Shan,et al. Dynamic changes in genomic histone association and modification during activation of the ASNS and ATF3 genes by amino acid limitation. , 2013, The Biochemical journal.
[92] D. Neuberg,et al. ATF 5 polymorphisms influence ATF function and response to treatment in children with childhood acute lymphoblastic leukemia Running title : Polymorphisms of aspraginase pathway and ALL outcome , 2011 .
[93] J. Weinstein,et al. Asparagine synthetase: a new potential biomarker in ovarian cancer. , 2009, Drug news & perspectives.
[94] Janice M Reichert,et al. Finding value in the U.S. Food and Drug Administration's Fast Track program. , 2009, Drug news & perspectives.
[95] Yuan-Xiang Pan,et al. Activation of the ATF3 gene through a co-ordinated amino acid-sensing response programme that controls transcriptional regulation of responsive genes following amino acid limitation. , 2007, The Biochemical journal.
[96] C. Bartram,et al. Methylation analysis of asparagine synthetase gene in acute lymphoblastic leukemia cells , 2006, Leukemia.
[97] R. Pieters,et al. UPREGULATION OF ASPARAGINE SYNTHETASE EXPRESSION IS NOT LINKED TO THE CLINICAL RESPONSE TO L-ASPARAGINASE IN PEDIATRIC ACUTE LYMPHOBLASTIC LEUKEMIA , 2006 .
[98] R. Wek,et al. GCN2 phosphorylation of eIF2alpha activates NF-kappaB in response to UV irradiation. , 2005, The Biochemical journal.
[99] Z. Li,et al. Epigenetic changes in the repression and induction of asparagine synthetase in human leukemic cell lines , 2005, Leukemia.
[100] S. Kimball,et al. 5 Nutrient signaling through mammalian GCN2 , 2004 .
[101] R. Pieters,et al. Sensitivity to L-Asparaginase is not associated with expression levels of asparagine synthetase in t(12;21) positive pediatric ALL. Running title: asparagine synthetase in t(12;21) positive ALL , 2002 .
[102] Schuster,et al. Three-dimensional structure of escherichia coli asparagine synthetase B: A short journey from substrate to product , 2000, Biochemistry.
[103] Nigel G. J. Richards,et al. Mechanistic issues in asparagine synthetase catalysis. , 1998, Advances in enzymology and related areas of molecular biology.
[104] S. Scherer,et al. Refined localization of the asparagine synthetase gene (ASNS) to chromosome 7, region q21.3, and characterization of the somatic cell hybrid line 4AF/106/KO15. , 1994, Cytogenetics and cell genetics.
[105] B. Banićević,et al. [Treatment of acute leukemias]. , 1976, Bilten za hematologiju i transfuziju.
[106] G. Trabucchi,et al. L-asparaginase treatment. , 1971 .