IDENTIFICATION OF THE CYTOSOLIC CARBOXYLESTERASE CATALYZING THE 5′-DEOXY-5-FLUOROCYTIDINE FORMATION FROM CAPECITABINE IN HUMAN LIVER
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[1] S. Tokudome,et al. Bioactivation of capecitabine in human liver: involvement of the cytosolic enzyme on 5'-deoxy-5-fluorocytidine formation. , 2004, Drug metabolism and disposition: the biological fate of chemicals.
[2] O. Cummings,et al. Carboxylesterases expressed in human colon tumor tissue and their role in CPT-11 hydrolysis. , 2003, Clinical cancer research : an official journal of the American Association for Cancer Research.
[3] D. B. Kristensen,et al. Mapping of phosphorylated proteins on two‐dimensional polyacrylamide gels using protein phosphatase , 2002, Proteomics.
[4] H. McLeod,et al. Human carboxylesterase 2 is commonly expressed in tumor tissue and is correlated with activation of irinotecan. , 2002, Clinical cancer research : an official journal of the American Association for Cancer Research.
[5] H. Ishitsuka,et al. The design and synthesis of a new tumor-selective fluoropyrimidine carbamate, capecitabine. , 2000, Bioorganic & medicinal chemistry.
[6] S. Guichard,et al. Characterization of CPT-11 converting carboxylesterase activity in colon tumor and normal tissues: comparison with p-nitro-phenylacetate converting carboxylesterase activity , 2000, Anti-cancer drugs.
[7] N. Suzuki,et al. Structure and activity of specific inhibitors of thymidine phosphorylase to potentiate the function of antitumor 2'-deoxyribonucleosides. , 2000, Biochemical pharmacology.
[8] M. Dolan,et al. Characterization of CPT-11 hydrolysis by human liver carboxylesterase isoforms hCE-1 and hCE-2. , 2000, Cancer research.
[9] H. Zhang,et al. Dexamethasone differentially regulates expression of carboxylesterase genes in humans and rats. , 2000, Drug metabolism and disposition: the biological fate of chemicals.
[10] H. Yamazaki,et al. Characterization of cytochrome P450 enzymes involved in drug oxidations in mouse intestinal microsomes , 2000, Xenobiotica; the fate of foreign compounds in biological systems.
[11] H. Yamazaki,et al. Oxidation of troglitazone to a quinone-type metabolite catalyzed by cytochrome P-450 2C8 and P-450 3A4 in human liver microsomes. , 1999, Drug metabolism and disposition: the biological fate of chemicals.
[12] K. Chiba,et al. cDNA cloning, characterization and stable expression of novel human brain carboxylesterase , 1999, FEBS letters.
[13] H. Ishitsuka,et al. Design of a novel oral fluoropyrimidine carbamate, capecitabine, which generates 5-fluorouracil selectively in tumours by enzymes concentrated in human liver and cancer tissue. , 1998, European journal of cancer.
[14] H. Ishitsuka,et al. Tumor selective delivery of 5-fluorouracil by capecitabine, a new oral fluoropyrimidine carbamate, in human cancer xenografts. , 1998, Biochemical pharmacology.
[15] H. Ishitsuka,et al. Positive correlation between the efficacy of capecitabine and doxifluridine and the ratio of thymidine phosphorylase to dihydropyrimidine dehydrogenase activities in tumors in human cancer xenografts. , 1998, Cancer research.
[16] L. Wienkers,et al. Bioactivation of the anticancer agent CPT-11 to SN-38 by human hepatic microsomal carboxylesterases and the in vitro assessment of potential drug interactions. , 1997, Drug metabolism and disposition: the biological fate of chemicals.
[17] J Zhang,et al. Purification and Cloning of a Broad Substrate Specificity Human Liver Carboxylesterase That Catalyzes the Hydrolysis of Cocaine and Heroin* , 1997, The Journal of Biological Chemistry.
[18] T. Langmann,et al. Molecular cloning and characterization of a novel putative carboxylesterase, present in human intestine and liver. , 1997, Biochemical and biophysical research communications.
[19] T. Satoh,et al. Molecular aspects of carboxylesterase isoforms in comparison with other esterases. , 1995, Toxicology letters.
[20] W. Bosron,et al. Tissue distribution of cocaine methyl esterase and ethyl transferase activities: correlation with carboxylesterase protein. , 1995, The Journal of pharmacology and experimental therapeutics.
[21] T. Satoh,et al. Interindividual variation in carboxylesterase levels in human liver microsomes. , 1995, Drug metabolism and disposition: the biological fate of chemicals.
[22] T. Yamada,et al. Immunohistochemistry with an antibody to human liver carboxylesterase in human brain tissues , 1994, Brain Research.
[23] M. Ratain,et al. Metabolic fate of irinotecan in humans: correlation of glucuronidation with diarrhea. , 1994, Cancer research.
[24] D. Kroetz,et al. Glycosylation-dependent activity of baculovirus-expressed human liver carboxylesterases: cDNA cloning and characterization of two highly similar enzyme forms. , 1993, Biochemistry.
[25] H. Chapman,et al. A serine esterase released by human alveolar macrophages is closely related to liver microsomal carboxylesterases. , 1991, The Journal of biological chemistry.
[26] W. Bosron,et al. Human liver cocaine esterases: ethanol‐mediated formation of ethylcocaine , 1991, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[27] C. Manthey,et al. Identification of the mouse aldehyde dehydrogenases important in aldophosphamide detoxification. , 1990, Cancer research.
[28] M Hosokawa,et al. Characterization of molecular species of liver microsomal carboxylesterases of several animal species and humans. , 1990, Archives of biochemistry and biophysics.
[29] P. K. Brady,et al. Identification and kinetic characterization of acetylator genotype-dependent and -independent arylamine carcinogen N-acetyltransferases in hamster bladder cytosol. , 1989, Drug metabolism and disposition: the biological fate of chemicals.
[30] P. K. Brady,et al. Kinetic characterization of acetylator genotype-dependent and -independent N-acetyltransferase isozymes in homozygous rapid and slow acetylator inbred hamster liver cytosol. , 1989, Drug metabolism and disposition: the biological fate of chemicals.
[31] C. Manthey,et al. Kinetic characterization of the catalysis of "activated" cyclophosphamide (4-hydroxycyclophosphamide/aldophosphamide) oxidation to carboxyphosphamide by mouse hepatic aldehyde dehydrogenases. , 1988, Biochemical Pharmacology.
[32] M. Fukushima,et al. Inhibitory effects of pyrimidine, barbituric acid and pyridine derivatives on 5-fluorouracil degradation in rat liver extracts. , 1987, Japanese journal of cancer research : Gann.
[33] R. Mentlein,et al. Selective inhibition of rat liver carboxylesterases by various organophosphorus diesters in vivo and in vitro. , 1980, Biochemical pharmacology.
[34] M. M. Bradford. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. , 1976, Analytical biochemistry.
[35] David F. Wentworth,et al. On the interaction of 3,4,5,6-tetrahydrouridine with human liver cytidine deaminase. , 1975, Biochemistry.
[36] D. B. Kristensen,et al. Mass spectrometric approaches for the characterization of proteins on a hybrid quadrupole time‐of‐flight (Q‐TOF) mass spectrometer , 2000, Electrophoresis.
[37] M Hosokawa,et al. The mammalian carboxylesterases: from molecules to functions. , 1998, Annual review of pharmacology and toxicology.