Oxidative DNA damage by an N-hydroxy metabolite of the mutagenic compound formed from norharman and aniline.
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[1] T. Sugimura,et al. Induction of liver preneoplastic lesions by aminophenylnorharman, formed from norharman and aniline, in male F344 rats. , 2001, Cancer letters.
[2] N. Miyata,et al. Oxidative DNA damage by a metabolite of carcinogenic 1-nitropyrene. , 2001, Biochemical and biophysical research communications.
[3] S. Ohnishi,et al. Oxidative DNA Damage Induced by an N‐Hydroxy Metabolite of Carcinogenic 4‐Dimethylaminoazobenzene , 2001, Japanese journal of cancer research : Gann.
[4] H. Sone,et al. Increased mutant frequency and altered mutation spectrum of the lacI transgene in Wilson disease rats with hepatitis. , 2000, Cancer research.
[5] H. Maeda,et al. Free radical generation from heterocyclic amines by cytochrome b5 reductase in the presence of NADH. , 1999, Cancer letters.
[6] T. Sugimura,et al. Quantification of the co-mutagenic beta-carbolines, norharman and harman, in cigarette smoke condensates and cooked foods. , 1999, Cancer letters.
[7] S. Kawanishi,et al. Oxidative DNA damage by a metabolite of carcinogenic and reproductive toxic nitrobenzene in the presence of NADH and Cu(II). , 1999, Biochemical and biophysical research communications.
[8] S. Kawanishi,et al. Mechanism of Oxidative DNA Damage Induced by a Heterocyclic Amine, 2‐Amino‐3,8‐dimethylimidazo[4,5‐f]quinoxaline , 1999, Japanese journal of cancer research : Gann.
[9] T. Sugimura,et al. Structural determination of a mutagenic aminophenylnorharman produced by the co-mutagen norharman with aniline. , 1998, Carcinogenesis.
[10] Y. Hiraku,et al. Superoxide formation and DNA damage induced by a fragrant furanone in the presence of copper(II). , 1998, Mutation research.
[11] T. Yoshida,et al. Formation of DNA adducts by the co-mutagen norharman with aromatic amines. , 1996, Carcinogenesis.
[12] J. Doroshow,et al. Mapping of Copper/Hydrogen Peroxide-induced DNA Damage at Nucleotide Resolution in Human Genomic DNA by Ligation-mediated Polymerase Chain Reaction (*) , 1995, The Journal of Biological Chemistry.
[13] T. Deguchi,et al. Stable expression of human CYP1A2 and N-acetyltransferases in Chinese hamster CHL cells: mutagenic activation of 2-amino-3-methylimidazo[4,5-f]quinoline and 2-amino-3,8-dimethylimidazo[4,5-f]quinoxaline. , 1994, Cancer research.
[14] M. Butler,et al. Metabolic activation of carcinogenic heterocyclic aromatic amines by human liver and colon. , 1991, Carcinogenesis.
[15] M. Chung,et al. 8-oxoguanine (8-hydroxyguanine) DNA glycosylase and its substrate specificity. , 1991, Proceedings of the National Academy of Sciences of the United States of America.
[16] R. Re,et al. Effects of ionic strength on endogenous nuclease activity in chelated and nonchelated chromatin. , 1991, Journal of inorganic biochemistry.
[17] S. Kawanishi,et al. Hydroxyl free radical is not the main active species in site-specific DNA damage induced by copper (II) ion and hydrogen peroxide. , 1989, The Journal of biological chemistry.
[18] H. Hayatsu,et al. Superoxide dismutase-mediated reversible conversion of 3-hydroxyamino-1-methyl-5H-pyrido[4,3-b]indole, the N-hydroxy derivative of Trp-P-2, into its nitroso derivative. , 1988, Carcinogenesis.
[19] Y. Wataya,et al. GENERATION OF INTRACELLULAR ACTIVE OXYGENS IN MOUSE FM3A CELLS BY 3‐HYDROXYAMINO‐1‐METHYL‐5H‐PYRIDO[4,3‐b]INDOLE, THE ACTIVATED TRP‐P‐2 , 1988, Japanese journal of cancer research : Gann.
[20] A. Ootsuyama,et al. Formation of 8-hydroxyguanine moiety in cellular DNA by agents producing oxygen radicals and evidence for its repair. , 1986, Carcinogenesis.
[21] P. Dijkwel,et al. Structural integrity of the nuclear matrix: differential effects of thiol agents and metal chelators. , 1986, Journal of cell science.
[22] S. Kawanishi,et al. Mechanism of DNA cleavage induced by sodium chromate(VI) in the presence of hydrogen peroxide. , 1986, The Journal of biological chemistry.
[23] Y. Wataya,et al. DNA strand cleavage in vitro by 3-hydroxyamino-1-methyl-5H-pyrido[4,3-b]-indole, a direct-acting mutagen formed in the metabolism of carcinogenic 3-amino-1-methyl-5H-pyrido[4,3-b]indole. , 1985, Cancer research.
[24] E. Chen,et al. Complete nucleotide sequences of the T24 human bladder carcinoma oncogene and its normal homologue , 1983, Nature.
[25] E. Elstner,et al. Oxygen species in paraquat toxicity: the crypto‐OH radical , 1981, FEBS letters.
[26] J. Leklem. Quantitative aspects of tryptophan metabolism in humans and other species: a review. , 1971, The American journal of clinical nutrition.
[27] A. Zehnder,et al. DNA degradation by the mixture of copper and catechol is caused by DNA‐copper‐hydroperoxo complexes, probably DNA‐Cu(I)OOH , 2000, Environmental and molecular mutagenesis.
[28] Y. Nagamura,et al. Kynurenine concentration of serum was increased by exercise. , 1999, Advances in experimental medicine and biology.
[29] H. Maeda,et al. Superoxide radical generation from heterocyclic amines. , 1995, Princess Takamatsu symposia.
[30] T. Sugimura,et al. Norharman and Harman in Human Urine , 1995 .
[31] H. Bartsch,et al. Metabolic activation and DNA adduct detection of PhIP in dogs, rats, and humans in relation to urinary bladder and colon carcinogenesis. , 1995, Princess Takamatsu symposia.
[32] A. Cederbaum,et al. Ferritin stimulation of hydroxyl radical production by rat liver nuclei. , 1994, Archives of biochemistry and biophysics.
[33] A Sharma,et al. Clastogenic effects of copper sulphate on the bone marrow chromosomes of mice in vivo. , 1990, Mutation research.
[34] T. Sugimura,et al. Metabolic aspects of the comutagenic action of norharman. , 1981, Advances in experimental medicine and biology.
[35] W. Gilbert,et al. Sequencing end-labeled DNA with base-specific chemical cleavages. , 1980, Methods in enzymology.
[36] T. Sugimura,et al. Demonstration of Mutagenicity of Aniline and o-Toluidine by Norharman , 1977 .