The C8-2'-deoxyguanosine adduct of 2-amino-3-methylimidazo[1,2-d]naphthalene, a carbocyclic analogue of the potent mutagen 2-amino-3-methylimidazo[4,5-f]quinoline, is a block to replication in vitro.
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F. Guengerich | G. Chowdhury | C. Rizzo | M. Stone | Albena Kozekova | Karen C. Angel | R. Turesky | P. Christov | James S. Stover | C. E. Elmquist | Feng Wang | K. C. Angel | Craig A Garmendia
[1] F. Hsu,et al. N-Demethylation Is a Major Route of 2-Amino-3-Methylimidazo[4,5-f]quinoline Metabolism in Mouse , 2008, Drug Metabolism and Disposition.
[2] C. Canlet,et al. New insights in the formation of deoxynucleoside adducts with the heterocyclic aromatic amines PhIP and IQ by means of ion trap MSn and accurate mass measurement of fragment ions , 2007, Journal of the American Society for Mass Spectrometry.
[3] R. Fuchs,et al. Interplay among replicative and specialized DNA polymerases determines failure or success of translesion synthesis pathways. , 2007, Journal of molecular biology.
[4] C. Rizzo,et al. DNA sequence modulates the conformation of the food mutagen 2-amino-3-methylimidazo[4,5-f]quinoline in the recognition sequence of the NarI restriction enzyme. , 2007, Biochemistry.
[5] R. Fuchs,et al. Translesion synthesis in Escherichia coli: lessons from the NarI mutation hot spot. , 2007, DNA repair.
[6] C. Rizzo,et al. Conformational differences of the C8-deoxyguanosine adduct of 2-amino-3-methylimidazo[4,5-f]quinoline (IQ) within the NarI recognition sequence. , 2007, Chemical research in toxicology.
[7] R. Turesky. Formation and biochemistry of carcinogenic heterocyclic aromatic amines in cooked meats. , 2006, Toxicology letters.
[8] F. Guengerich,et al. Translesion synthesis past the C8- and N2-deoxyguanosine adducts of the dietary mutagen 2-Amino-3-methylimidazo[4,5-f]quinoline in the NarI recognition sequence by prokaryotic DNA polymerases. , 2006, Chemical research in toxicology.
[9] F. Guengerich,et al. Biochemical Basis of Genotoxicity of Heterocyclic Arylamine Food Mutagens , 2006, Journal of Biological Chemistry.
[10] C. Rizzo,et al. Base-displaced intercalated structure of the food mutagen 2-amino-3-methylimidazo[4,5-f]quinoline in the recognition sequence of the NarI restriction enzyme, a hotspot for -2 bp deletions. , 2006, Journal of the American Chemical Society.
[11] B. Cho,et al. Induced circular dichroism characteristics as conformational probes for carcinogenic aminofluorene-DNA adducts. , 2006, Chemical research in toxicology.
[12] C. Iden,et al. Synthesis of the PhIP adduct of 2'-deoxyguanosine and its incorporation into oligomeric DNA. , 2006, Chemical research in toxicology.
[13] K. Wakabayashi,et al. Chemical synthesis of 2'-deoxyguanosine-C8 adducts with heterocyclic amines: an application to synthesis of oligonucleotides site-specifically adducted with 2-amino-1-methyl-6-phenylimidazo[4,5-b]pyridine. , 2006, Chemical research in toxicology.
[14] L. Romano,et al. Mechanism for N-acetyl-2-aminofluorene-induced frameshift mutagenesis by Escherichia coli DNA polymerase I (Klenow fragment). , 2005, Biochemistry.
[15] M. Egli,et al. DNA Adduct Bypass Polymerization by Sulfolobus solfataricus DNA Polymerase Dpo4 , 2005, Journal of Biological Chemistry.
[16] Jason R. Taylor,et al. Quantitation of carcinogenic heterocyclic aromatic amines and detection of novel heterocyclic aromatic amines in cooked meats and grill scrapings by HPLC/ESI-MS. , 2005, Journal of agricultural and food chemistry.
[17] C. Rizzo,et al. Site-specific synthesis and properties of oligonucleotides containing C8-deoxyguanosine adducts of the dietary mutagen IQ. , 2004, Journal of the American Chemical Society.
[18] S. Rajagopal,et al. Chemistry of carcinogenic and mutagenic metabolites of heterocyclic aromatic amines , 2004 .
[19] Paul Vouros,et al. Formation and analysis of heterocyclic aromatic amine-DNA adducts in vitro and in vivo. , 2004, Journal of chromatography. B, Analytical technologies in the biomedical and life sciences.
[20] F Peter Guengerich,et al. Functional characterization of four allelic variants of human cytochrome P450 1A2. , 2004, Archives of biochemistry and biophysics.
[21] P. Borer,et al. Revised UV extinction coefficients for nucleoside-5'-monophosphates and unpaired DNA and RNA. , 2004, Nucleic acids research.
[22] F. Guengerich,et al. Selection of human cytochrome P450 1A2 mutants with enhanced catalytic activity for heterocyclic amine N-hydroxylation. , 2004, Biochemistry.
[23] A. Grollman,et al. Mutagenic events in Escherichia coli and mammalian cells generated in response to acetylaminofluorene-derived DNA adducts positioned in the Nar I restriction enzyme site. , 2002, Biochemistry.
[24] A. Guillouzo,et al. Metabolism of heterocyclic aromatic amines by human hepatocytes and cytochrome P4501A2. , 2002, Mutation research.
[25] R. Fuchs,et al. Mechanism of DNA polymerase II-mediated frameshift mutagenesis , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[26] H. Ashida,et al. Comparison in metabolic activity of cytochrome P450 1A1 on heterocyclic amines between human and rat. , 1999, Journal of agricultural and food chemistry.
[27] P. Vouros,et al. Determination of in vitro- and in vivo-formed DNA adducts of 2-amino-3-methylimidazo[4,5-f]quinoline by capillary liquid chromatography/microelectrospray mass spectrometry. , 1999, Chemical research in toxicology.
[28] E. Snyderwine,et al. DNA adducts of heterocyclic amine food mutagens: implications for mutagenesis and carcinogenesis. , 1999, Carcinogenesis.
[29] F. Guengerich,et al. Activation of heterocyclic aromatic amines by rat and human liver microsomes and by purified rat and human cytochrome P450 1A2. , 1998, Chemical research in toxicology.
[30] D. Patel,et al. Nuclear magnetic resonance solution structures of covalent aromatic amine-DNA adducts and their mutagenic relevance. , 1998, Chemical research in toxicology.
[31] D. Patel,et al. Solution structure of the aminofluorene [AF]-intercalated conformer of the syn-[AF]-C8-dG adduct opposite dC in a DNA duplex. , 1998, Biochemistry.
[32] D. Patel,et al. Solution structure of the aminofluorene [AF]-external conformer of the anti-[AF]-C8-dG adduct opposite dC in a DNA duplex. , 1998, Biochemistry.
[33] D. Patel,et al. Solution structure of the aminofluorene-intercalated conformer of the syn [AF]-C8-dG adduct opposite a--2 deletion site in the NarI hot spot sequence context. , 1997, Biochemistry.
[34] T. Sugimura,et al. Overview of carcinogenic heterocyclic amines. , 1997, Mutation research.
[35] R. Fuchs,et al. Mechanisms of frameshift mutations: insight from aromatic amines. , 1997, Chemical research in toxicology.
[36] F. Guengerich,et al. Steady-state and pre-steady-state kinetic analysis of dNTP insertion opposite 8-oxo-7,8-dihydroguanine by Escherichia coli polymerases I exo- and II exo-. , 1996, Biochemistry.
[37] R. Turesky,et al. DNA adduct formation of the food carcinogen 2-amino-3-methylimidazo[4,5- f]quinoline at the C-8 and N2 atoms of guanine. , 1994, Chemical research in toxicology.
[38] L. Klungsøyr,et al. Mutagenic activity of three synthetic isomers of the food carcinogen 2-amino-3-methylimidazo[4,5-f]quinoline (IQ) in the Ames test. , 1993, Mutation research.
[39] E. Snyderwine,et al. Metabolism of the food mutagen 2-amino-3-methylimidazo[4,5-f]quinoline in nonhuman primates undergoing carcinogen bioassay. , 1992, Chemical research in toxicology.
[40] L. Fay,et al. Electron impact and fast atom bombardment mass spectrometric analysis of the food-borne carcinogens 2-amino-3-methylimidazo [4,5-f] quinoline, 2-amino-3,8-dimethylimidazo [4,5-f] quinoxaline and their metabolites. , 1992, Biological mass spectrometry.
[41] Axel T. Brunger,et al. X-PLOR Version 3.1: A System for X-ray Crystallography and NMR , 1992 .
[42] M. Butler,et al. Metabolic activation of carcinogenic heterocyclic aromatic amines by human liver and colon. , 1991, Carcinogenesis.
[43] J. Weisburger,et al. Identification of sulfate and glucuronic acid conjugates of the 5-hydroxy derivative as major metabolites of 2-amino-3-methylimidazo[4,5-f]quinoline in rats. , 1989, Cancer research.
[44] J. Holme,et al. Characterisation of metabolites of the food mutagens 2-amino-3-methylimidazo[4,5-f]quinoline and 2-amino-3,4-dimethylimidazo[4,5-f]quinoline formed after incubation with isolated rat liver cells. , 1989, Chemico-biological interactions.
[45] Lennart Nilsson,et al. Empirical energy functions for energy minimization and dynamics of nucleic acids , 1986 .
[46] G. Kaiser,et al. Chemical structure and mutagenic activity of aminoimidazoquinolines and aminonaphthimidazoles related to 2-amino-3-methylimidazo[4,5-f]quinoline. , 1986, Chemico-biological interactions.
[47] R. Fuchs,et al. Hot spots of frameshift mutations induced by the ultimate carcinogen N- acetoxy-N-2-acetylaminofluorene , 1981, Nature.
[48] J. Miller,et al. Hepatic metabolism of N-hydroxy-N-methyl-4-aminoazobenzene and other N-hydroxy arylamines to reactive sulfuric acid esters. , 1976, Cancer research.
[49] E. W. Malmberg,et al. The Synthesis of 2- and 3-Substituted Naphth [1,2] imidazoles , 1948 .