Characterization of DNA damage at purine residues in oligonucleotides and calf thymus DNA induced by the mutagen 1-nitrosoindole-3-acetonitrile

被引:17
作者
Lucas, LT
Gatehouse, D
Jones, GDD
Shuker, DEG
机构
[1] Univ Leicester, Biomonitoring & Mol Interact Sect, Leicester LE1 9HN, Leics, England
[2] Univ Leicester, Ctr Mechanisms Human Tox, MRC, Toxicol Unit, Leicester LE1 9HN, Leics, England
[3] Glaxo Wellcome Res & Dev Ltd, Genet & Reprod Toxicol Med Safety & Evaluat Div, Ware SG12 0DP, Herts, England
关键词
D O I
10.1021/tx000179r
中图分类号
R914 [药物化学];
学科分类号
100701 ;
摘要
N-Nitrosoindoles can efficiently transfer the nitroso group to nucleophilic targets in isolated purine nucleotides, causing depurination, deamination, and the formation of a novel guanine analogue, oxanine [Lucas, L. T., Gatehouse, D., and Shuker, D. E. G. (1999) J. Biol. Chem. 274, 18319-18326]. To determine the likely biological relevance of these modification pathways, the reactivity of 1-nitrosoindole-3-acetonitrile (NIAN), a model 3-substituted N-nitrosoindole, with oligonucleotides and calf thymus DNA was examined at physiological pH and temperature. Reaction of NIAN with single-stranded oligonucleotides containing various guanine motifs resulted in the production of single-strand break products at guanine sites due to the formation of alkali-labile lesions. The number of lesions increased with NIAN concentration and incubation time. Modification of calf thymus DNA by NIAN resulted in depurination, which gave the corresponding purine bases, deamination coupled with depurination, which gave xanthine, and the formation of oxanine. The former pathway was clearly the most important, and all reaction products exhibited a dose-response relationship. Cytosine and thymine residues were inactive toward NIAN. Further studies revealed an additional product in NIAN-treated duplex DNA containing a CCGG motif that was characterized as an interstrand cross-link, the yield of which increased with increasing NIAN concentration. These results indicate that the transnitrosating ability of NIAN to modify purine residues is preserved at the macromolecular level, with guanine residues appearing to be a primary site of reaction. All of these modification processes are potentially mutagenic events if they occur in vivo.
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页码:158 / 164
页数:7
相关论文
共 25 条
[1]   Nitric oxide-induced deamination of cytosine and guanine in deoxynucleosides and oligonucleotides [J].
Caulfield, JL ;
Wishnok, JS ;
Tannenbaum, SR .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1998, 273 (21) :12689-12695
[2]   MOLECULAR-BASIS OF BASE SUBSTITUTION HOTSPOTS IN ESCHERICHIA-COLI [J].
COULONDRE, C ;
MILLER, JH ;
FARABAUGH, PJ ;
GILBERT, W .
NATURE, 1978, 274 (5673) :775-780
[3]   MUTAGENIC DEAMINATION OF CYTOSINE RESIDUES IN DNA [J].
DUNCAN, BK ;
MILLER, JH .
NATURE, 1980, 287 (5782) :560-561
[4]  
FURIHATA C, 1987, JPN J CANCER RES, V78, P432
[5]   Theoretical studies of DNA base deamination. 2. Ab initio study DNA base diazonium ions and of their linear, unimolecular dediazoniation paths [J].
Glaser, R ;
Rayat, S ;
Lewis, M ;
Son, MS ;
Meyer, S .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1999, 121 (26) :6108-6119
[6]   Pyrimidine ring opening in the unimolecular dediazoniation of guanine diazonium ion. An ab initio theoretical study of the mechanism of nitrosative guanosine deamination [J].
Glaser, R ;
Son, MS .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1996, 118 (44) :10942-10943
[7]   MUTATION INDUCED BY DEOXYXANTHOSINE IN CODON-12 OF A SYNTHETIC C-HA-RAS GENE [J].
KAMIYA, H ;
SHIMIZU, M ;
SUZUKI, M ;
INOUE, H ;
OHTSUKA, E .
NUCLEOSIDES & NUCLEOTIDES, 1992, 11 (2-4) :247-260
[8]   HYPOXANTHINE IN DEOXYRIBONUCLEIC-ACID - GENERATION BY HEAT-INDUCED HYDROLYSIS OF ADENINE RESIDUES AND RELEASE IN FREE FORM BY A DEOXYRIBONUCLEIC-ACID GLYCOSYLASE FROM CALF THYMUS [J].
KARRAN, P ;
LINDAHL, T .
BIOCHEMISTRY, 1980, 19 (26) :6005-6011
[9]   INTERSTRAND CROSS-LINKING OF DUPLEX DNA BY NITROUS-ACID - COVALENT STRUCTURE OF THE DG-TO-DG CROSS-LINK AT THE SEQUENCE 5'-CG [J].
KIRCHNER, JJ ;
SIGURDSSON, ST ;
HOPKINS, PB .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1992, 114 (11) :4021-4027
[10]  
LEOB LA, 1986, ANNU REV GENET, V20, P201