A surgically created canal was used as a reservoir for instillation of snuff into the lower lip of rats for 10 weeks. DNA was isolated and digested with micrococcal nuclease/spleen phosphodiesterase. Polar DNA adducts were detected in all tissues examined when digests were fractionated by high performance liquid chromatography (HPLC), 32P postlabeled, 3′ dephosphorylated and analyzed by two-dimensional thin layer chromatography (TLC). DNA adducts derived from aromatic carcinogens were not detected when digests were 32P postlabeled and analyzed by four-dimensional thin layer chromatography. These results suggest that non-aromatic agents initiate carcinogenesis following exposure to snuff. The adduction to DNA in organs of the gastrointestinal tract and the kidneys indicates that snuff usage results in systemic exposure to carcinogens and may contribute to the incidence of neoplasms in organs outside the oral cavity.
Previously, we demonstrated point mutations of the H-ras gene in N-[4-(5-nitro-2-furyl)-2-thiazolyl]formamide (FANFT)-induced rat urinary bladder carcinomas. In this study, ras oncogene activation was examined in urinary bladder carcinomas induced by N-(4-hydroxybutyl)nitrosamine (BBN) or N-methyl-N-nitrosourea (MNU) administration followed by uracil treatment. In the first experiment, MNU (20 mg/kg body wt) was i.p. injected into 11 male F344 rats twice a week for 4 weeks, followed by feeding 3% uracil for 20 weeks (MNU/uracil group). Ten rats were given only 3% uracil without MNU pretreatment. In the second experiment, 20 male F344 rats were given 0.05% BBN in the drinking water for 4 weeks, then fed 3% uracil for 20 weeks (BBN/uracil group). Another 20 rats were fed 3% uracil without the BBN pretreatment. Transitional cell carcinomas were induced in the urinary bladder of all rats in the MNU/uracil and BBN/uracil groups. Papillomas and hyperplasias were present in the rats given uracil without prior BBN or MNU. DNA and protein were extracted from the tumors (MNU/uracil or BBN/uracil groups) or from the scraped bladder epithelium (uracil alone groups). Sequences around codons 12, 13 and 61 of H-, K- and N-ras genes were examined by direct sequencing after polymerase chain reaction, and p21 was examined by Western blotting. No mutation was found within the examined sequences and p21 showed no changes in mobility. There was no difference in the level of p21 expression between rats treated with MNU/uracil or BBN/uracil compared to corresponding uracil alone groups. These results indicate that the ras oncogene was not activated in urinary bladder carcinomas induced by BBN or MNU in combination with uracil treatment, in contrast to previous findings with FANFT.
Polydeoxycytidylic acid (poly dC) was incubated with excess acrolein. A Nensorb 20 nucleic acid purification cartridge was used to bind the polymeric material in the poly dC/acrolein reaction mixture. The non-polymeric material eluted from this column had a UV absorbance four times higher than that of the control. The fluorescence spectrum of the eluted material did not correspond to that of unmodified cytosine. Separate aliquots of the reaction mixture were digested to deoxynucleotide 3'-monophosphates by incubation with micrococcal nuclease and spleen phosphodiesterase. The products were converted to 32P-labeled deoxynucleotide 3',5'-bisphosphates by incubation with T4 polynucleotide kinase and excess [gamma-32P]ATP. The 3'-monophosphate was selectively removed by incubation with nuclease P1. Two-dimensional thin-layer chromatography (TLC) on polyethyleneimine cellulose (PEI)-cellulose and detection of 32P-labeled deoxynucleotide 5'-monophosphates by autoradiography failed to provide evidence for the formation of an acrolein adduct of deoxycytidine 5'-monophosphate. When acrolein-modified deoxycytidine 3'-monophosphate was 32P post-labeled, a new product, which co-chromatographed with UV markers synthesized by reaction of acrolein with deoxycytidine 5'-monophosphate, was detected. These data show that acrolein-modified deoxycytidine 3'-monophosphates are substrates for 32P labeling by T4 polynucleotide kinase and are stable under the assay conditions employed. The inability to detect the acrolein-modified nucleotides after reaction with poly dC in vitro suggests that the modified bases are lost from poly dC by cleavage of the N-glycosyl bond resulting in the formation of an abasic site.