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T A Lawson

Publications and source records attributed to T A Lawson.

At least 19 recordsLinked to original sources

Metabolism of the hamster pancreatic carcinogen methyl-2-oxopropylnitrosamine by hamster liver and pancreas.

BACKGROUND: The mechanism whereby methyl-2-oxopropylnitrosamine (MOP) is activated remains unknown. To begin investigating this mechanism, we followed MOP disappearance during its incubation with liver and pancreatic slices and homogenates from Syrian hamsters and rats. METHODS: After the incubations, disappearance of 100 microM MOP and appearance of a metabolite was followed by high-performance liquid chromatography (HPLC) with ultraviolet (UV) detection. RESULTS: Disappearance rates were 1.2 nmol/mg protein/h for hamster liver slices; zero for hamster pancreatic slices, ducts and acini; zero for rat liver and pancreatic slices; and 11.8, 12.8, 1.3, and 2.3 nmol MOP/mg/h for hamster liver homogenate and cytosol, and hamster pancreas homogenate and microsomes, respectively. The principal MOP metabolite was identified as methyl-2-hydroxypropylnitrosamine (MHP) by its HPLC behavior and its 1H-NMR and mass spectra. MHP yields were generally similar to MOP consumption, but were zero for hamster pancreatic homogenate despite its ability to metabolize MOP. CONCLUSION: MOP is a pancreatic carcinogen in hamsters but not in rats. In metabolic studies, hamster liver slices and homogenate (especially the cytosol) produced MHP from MOP. This is probably an inactivation reaction. Hamster pancreas homogenate (especially the microsome fraction), but not rat pancreas homogenate, metabolized MOP without forming MHP, indicating another route of metabolism, perhaps activation to give the proximal carcinogen.

Animals↗

Positive interaction between 5-FU and FdUMP[10] in the inhibition of human colorectal tumor cell proliferation.

Interaction between 5-fluorouracil (5-FU) and FdUMP[10], a novel pro-drug formulation of the thymidylate synthase (TS) inhibitory nucleotide 5-fluoro-2'-deoxyuridine-5'-O-monophosphate (FdUMP), was investigated to evaluate the feasibility of using these two forms of fluorinated pyrimidine in combination chemotherapy regimens. 5-FU and FdUMP[10] are expected to differ in their relative intracellular distribution of active metabolites, and their combined administration may result in either a positive or a negative interactive effect. The dose-response behaviors of 5-FU and FdUMP[10] toward H630 and H630-10 (human colorectal tumor) cells were first investigated separately. Effects on cell viability were measured using an assay for 3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide (MTT), while cytotoxicity and apoptosis were investigated using clonogenic and TUNEL assays, respectively. Exposure of H630 cells to concentrations of FdUMP[10] insufficient to inhibit cell proliferation as a single agent markedly increased the cytotoxicity of 5-FU. The results indicate that 5-FU and FdUMP[10] interact in a positive manner, and that combining these two forms of fluorinated pyrimidine may be clinically beneficial.

Antimetabolites, Antineoplastic↗

Rodent bladder tumors do not always predict for humans.

Dr. David Clayson, 20 years ago, suggested that chemicals which lead to the formation of calculi in rodents might pose an artifact with respect to extrapolation to potential carcinogenic risk to humans. We reviewed what has been learned about the role of calculi in urinary bladder carcinogenesis in the ensuing 20 years, along with several examples. Formation of microcrystalluria and amorphous precipitate also poses problems in interpretation and examples are described. The chemicals producing these solid urinary materials are non-genotoxic, with marked increase in cell proliferation being the mode of action by which they are able to produce cancer in long-term rodent bioassays.

Animals↗

Inhibition by phenylethyl and phenylhexyl isothiocyanate of metabolism of and DNA methylation by N-nitrosomethylamylamine in rats.

We investigated the effect of 2-phenylethyl and 6-phenylhexyl isothiocyanate (PEITC and PHITC) on the metabolism of the rat esophageal carcinogen, N-nitrosomethylamylamine (NMAA). PEITC was administered orally to MRC-Wistar rats as single doses of 0.1 or 1.0 mmol/kg, or by other regimens. When esophagi and liver slices from the treated rats were incubated with 23 microM NMAA, the formation of 2- to 5-hydroxy-NMAA was inhibited by 45-90% for esophagus and by 14-19% for liver slices. In contrast, when esophagi and liver slices from untreated MRC-Wistar rats were incubated in vitro with NMAA and 10 microM PEITC, the PEITC inhibited hydroxy-NMAA formation similarly (by 79-89%) in the two tissues. Also, PEITC inhibited the formation from NMAA of the hydroxy-NMAAs, formaldehyde and pentaldehyde by esophageal and liver microsomes to similar extents. In studies on DNA methylation by NMAA, 7- and O6-methylguanine (O6-MeG) were determined by HPLC with fluorimetric detection. Guanine methylation in esophageal and liver DNA was generally close to linear for doses of 5-50 mg NMAA/kg. With 50 mg NMAA/kg, guanine methylation in esophageal and liver DNA peaked after 5 h, and 8-11% of the peak O6-MeG persisted after 72 h. A single dose of 0.1 or 1.0 mmol PEITC/kg reduced the O6-MeG levels by 44-51% in the esophagus but by only 7-22% in the liver. Administration of the PEITC homolog, PHITC, inhibited NMAA metabolism by liver slices from the treated rats and the methylation of guanine in liver DNA, but had little effect in the esophagus, i.e. PHITC tended to have the opposite tissue specificity to PEITC. The finding that administration of PEITC specifically inhibited NMAA metabolism in the rat esophagus supports the view that PEITC may be a useful chemopreventive agent against esophageal carcinogenesis in humans.

Animals↗

Identification of C8-methylguanine in the hydrolysates of DNA from rats administered 1,2-dimethylhydrazine. Evidence for in vivo DNA alkylation by methyl radicals.

C8-Methylguanine was identified in the neutral hydrolysates of DNA isolated from the liver or colon tissue of rats administered 1,2-dimethylhydrazine. In all the samples examined, the biologically isolated adducts were characterized by co-elution with synthetic C8-methylguanine under different high pressure liquid chromatography conditions. The sample isolated from liver DNA was also identified by UV spectroscopy at different pH values and by mass spectrometry. The estimated yields of C8-methylguanine obtained in hydrolysates of DNA from the liver or colon tissue were comparable to those of O6-methylguanine. C8-Methylguanine was not detected when the spin trap alpha-(4-pyridyl-1-oxide)-N-tert- butylnitrone was administered together with 1,2-dimethylhydrazine. The spin trap also inhibited N7-methylguanine and O6-methylguanine yields, although to a lesser extent. These results constitute the first evidence that DNA alkylation by carbon-centered radicals can occur in vivo.

1,2-Dimethylhydrazine↗

Cholecystokinin inhibits DNA alkylation induced by N-nitrosobis (2-oxopropyl)amine (BOP) in hamster pancreas.

Cholecystokinin (CCK) inhibits pancreatic cancer but not hepatic tumor induction by N-nitrosobis (2-oxopropyl) amine (BOP) in hamsters when administered with or shortly before BOP. In this study, we evaluated the capability of sulfated CCK-8 to inhibit DNA alkylation in the hamster pancreas. We examined the pattern of O6-methylguanine (G6-Me) and N7-methylguanine (G7-Me) in pancreatic ductal, acinar and liver tissues from Syrian hamsters treated with a single dose of BOP (20 mg/kg s.c.) and with five s.c. injections of CCK-8 (200 pM/kg, 30 min apart). The first CCK injection was given either 90 min before, or together, or 3 h after POP administration. The amount of G6-Me in liver DNA did not differ significantly. We observed a decrease of G7-Me in the liver of the group treated with CCK together with POP as compared to POP alone (P less than 0.005). Lower amounts of G6-Me were found in ductal preparations (P less than 0.01) of the animals treated with CCK before POP as compared to POP alone. CCK also modified the pattern of alkylation in the acinar tissue, but without a clear relationship with the timing of administration. The results suggest that the inhibitory effect of CCK-8 on pancreatic carcinogenicity of BOP could be related to its capability to modify DNA alkylation by yet unknown mechanisms.

Alkylation↗

Involvement of lauric acid hydroxylase in the activation of beta-substituted nitrosamines.

The mutagenicity of N-nitrosobis (2-hydroxypropyl) amine (BHP), N-nitrosobis(2-oxopropyl)amine (BOP) and N-nitroso-(2-hydroxy-propyl) (2-oxopropyl) amine (HPOP) was measured in V79 cells. Hepatocytes, used to metabolize (activate) the nitrosamines, were isolated from untreated Syrian hamsters (control) and hamsters treated with clofibrate (CLO) or dehydroepiandrosterone (DHEA) in vivo. BHP and HPOP mutagenicity increased 3- and 2-fold when hepatocytes from CLO- and DHEA-treated hamsters were used. BOP mutagenicity did not increase. 10-Undecynoic acid, a lauric acid hydroxylase inhibitor, inhibited the increase in BHP and HPOP mutagenicity by 80-90% but did not affect that of BOP. Antimycin A1, a fatty acyl coenzyme A beta-oxidase inhibitor did not affect the mutagenicity of these nitrosamines. Lauric acid hydroxylase, probably omega-1 hydroxylase (cytochrome P-450 IVA2), appears to be involved in the activation of BHP and HPOP.

Acyl-CoA Oxidase↗

Long-term persistence of DNA alkylation in hamster tissues after N-nitrosobis(2-oxopropyl)amine.

The persistence of 7- and O6-alkylation of guanine in DNA of cell nuclei of male Syrian hamster pancreas, liver, kidneys, lungs [target tissues of N-nitrosobis(2-oxopropyl)amine (BOP)] and salivary glands (nontarget tissue) was studied immunocytochemically 6 h, 1, 3, 7, 14, 28, and 56 days after a single s.c. injection of 20 mg BOP/kg. Conventional antisera raised against O6-methylguanine and imidazole-ring-opened 7-methyl-guanine were used. Persistent alkyl-specific staining was observed for up to 7 days (7-alkylguanine) or 56 days (O6-alkylguanine) in inter- and intralobular duct cells and centro-acinar cells of the pancreas, periportal hepatocytes and bile duct cells of the liver, cells of the proximal convoluted tubules of the renal cortex, and bronchiolar Clara and alveolar cells in the lungs. Both adducts disappeared from centrilobular liver cells within 1 day, from pancreatic acinar cells within 3 days, and from ducts and acini of the submandibular salivary glands within 14 days after BOP treatment. A high level of persistent O6-alkylation of guanine was related with a high tumor incidence only in case of the ductal/ductular system of the pancreas, the main target tissue of BOP-induced carcinogenesis. The relatively weak carcinogenicity of BOP in other tissues with long-term persistence of O6-alkylguanine in DNA indicates that the formation and persistence of DNA alkylation are not sufficient to account for the carcinogenic organotropism of BOP. Additional factors, such as cell proliferation, appropriate promoting stimuli and the (onco)genes critically involved, may be as important as the modification of DNA.

Alkylation↗

Activation of N-nitrosobis(2-oxopropyl)amine by liver and nasal mucosa tissue from intact and castrated male rats.

Methylation of liver and nasal mucosal DNA at the O6 position of guanine (O6-MeG) was measured in intact and castrated male rats after a dose of N-nitrosobis(2-oxopropyl)amine (BOP) (20 mg/kg; i.p.). There were no differences in O6-MeG persistence in liver DNA from either group. In the nasal mucosa more O6-MeG was detected in DNA from intact rats than in that from castrated rats. The maximum values were 61 (intact) and 35 (castrated) mumols/mol guanine. T/2 were 84 h (intact) and 24 h (castrated). These situations corresponded with changes in O6-MeG-DNAmethyl-transferase (MT) activity, which increased 6-fold in the nasal mucosa by castration resulting in less O6-MeG in the nasal mucosa. In the liver castration halved MT activity but did not produce a comparable change in O6-MeG levels. The mutagenicity of BOP in V79 cells increased almost 2-fold when a liver homogenate from castrated rats was used as the activating system. There was a comparable decline in mutagenicity when a nasal mucosa tissue homogenate from castrated rats was used.

Animals↗

Acrolein mutagenicity in the V79 assay.

The mutagenicity of acrolein, allyl alcohol, glycidol and propionaldehyde was measured in V79 cells as resistance to 6-thioguanine. Acrolein was tested with and without fetal bovine serum (FBS) (10%; v/v) during the 2 h incubation period. The concentration of FBS did not affect acrolein toxicity but its mutagenicity declined as the concentration of FBS in the medium rose. Allyl alcohol (AA) was as mutagenic as acrolein (ACR). Glycidol was less mutagenic than AA and ACR. Propionaldehyde was not mutagenic at 1 microM; it was toxic at 2 microM. The data suggest that the mutagenicity of these compounds is mediated by their bifunctional nature whereas their cytotoxicity is mediated by the aldehyde function.

1-Propanol↗

Proliferative changes in the prostate.

The prostate of the rat has several lobes which have variable responsiveness to estrogens and testosterone. Testosterone is a major stimulant of cell proliferation in the prostate. Chemical carcinogenesis models in the rat prostate have taken advantage of administering the carcinogen during the peak proliferative period following testosterone administration with subsequent testosterone administered to continue the proliferative stimulus. Invasive adenocarcinomas of the prostate have been induced utilizing such methods.

Aging↗

Ketonitrosamines as metabolites of methyl-n-amylnitrosamine (MNAN) and its hydroxy derivatives in the rat.

In a previous study of the metabolism of methyl-n-amylnitrosamine (MNAN) in the rat, 2- to 5-hydroxy-MNAN (HO-MNAN) were provisionally identified as metabolites and the identity of 4-HO-MNAN was confirmed by mass spectrometry. We now describe syntheses and mass and other spectra for 2- to 5-oxo-MNAN. Two previously unidentified MNAN metabolites were shown to be 3- and 4-oxo-MNAN. In addition to 4-HO-MNAN, we confirmed 3-HO-, 4-oxo- and (less certainly) 2-HO-MNAN as urinary MNAN metabolites by GLC-MS of HPLC fractions. Analysis with and without beta-glucuronidase treatment showed that the urinary HO-MNANs occurred as their beta-glucuronides. MNAN (25 mg/kg injected i.p.) had a blood half-life of 21 min in adult male rats. The blood also contained 4-HO- and 4-oxo-MNAN, which showed maximum levels that were 13 and 26% respectively of that for MNAN, and were cleared more slowly than MNAN. On incubation for 3 h with MNAN, rat esophagus produced 3- and 4-oxo-MNAN in yields that were 5% of those for the corresponding HO-MNANs. For MNAN metabolism, the 4-oxo-/4-HO-MNAN ratio of metabolites was 5% for adult rat liver and was 22% for adult hamster liver and 9-day-old rat liver. On incubation with 4-HO-MNAN for 3 h, oxidation to 4-oxo-MNAN was 16-25% for adult hamster or 9-day-old rat liver slices and for adult hamster liver homogenate. Homogenate activity was concentrated in the microsomal fraction, for which NAD was a more effective co-factor than NADP. A bacterial alcohol dehydrogenase oxidized 4-HO- to 4-oxo-MNAN in 38% yield/3 h. None of these preparations oxidized 2-HO- to 2-oxo-MNAN. It was concluded that 3- and 4-oxo-MNAN were metabolites of MNAN, apparently (for 4-oxo-MNAN) via HO-MNAN oxidation by a microsomal NAD-dependent enzyme, that 4-HO- and 4-oxo-MNAN formation was a major route of MNAN metabolism, and that 4-oxo-MNAN might play a role in MNAN carcinogenesis.

Animals↗

Induction of hyperplastic liver nodules in Wistar and MRC-Wistar rats by phenobarbital and the liver carcinogens acetoxime, 1-nitroso-5,6-dihydrouracil and 3-nitroso-2-oxazolidinone.

We tested the ability of phenobarbital and two liver carcinogens, acetoxime and 1-nitroso-5,6-dihydrouracil (NDHU), to induce hyperplastic liver nodules (HLN) in MRC-Wistar and Wistar rats, using a system that included a single diethylnitrosamine (DEN) treatment, partial hepatectomy, and administration of the test compound in drinking water for 8 weeks. All three compounds induced significant HLN frequencies (number of HLN/cm2) in both rat strains. When the results for each strain were "normalized" for each compound and then combined, HLN frequency in MRC-Wistar rats was significantly lower (P less than 0.01) than that in Wistar rats. The weak liver carcinogen 3-nitroso-2-oxazolidinone (NOZ) did not induce a significant HLN frequency in MRC-Wistar rats. Acetoxime was highly volatile and was not mutagenic in the Ames test under a variety of conditions. The results for acetoxime are of interest because simple oximes are common constituents of oil paints. HLN induction by nitrosodihydrouracil is of interest because, unlike most liver carcinogens, this compound probably does not require metabolic activation and shows only a mild acute hepatoxicity.

Animals↗

Induction of hepatic DNA single strand breaks in rats by 2,3,7,8-tetrachlorodibenzo-p-dioxin (TCDD).

Previous studies have demonstrated that 2,3,7,8-tetrachlorodibenzo-p-dioxin (TCDD) induces lipid peroxidation in hepatic and extrahepatic tissues. DNA single strand breaks as well as other forms of DNA damage are believed to occur in conjunction with lipid peroxidation. We have therefore examined the effect of TCDD on hepatic DNA single strand breaks. Ten days after the administration of 100 micrograms TCDD/kg to female rats, a 7.5-fold increase in the DNA elution constant (single strand breaks) occurred. Similar changes were observed in the content of thiobarbituric acid reactive substances (TBARS) in the nuclei as well as the NADPH-dependent production of TBARS. The accumulation of TBARS appeared to precede the accumulation of DNA single strand breaks. The tumor promoting effects of TCDD may be associated with the enhanced formation of DNA single strand breaks.

Animals↗

Beta-oxidized N-nitrosoalkylcarbamates as models for DNA alkylation by N-nitrosobis(2-oxopropyl)amine in Syrian hamsters.

A single dose of N-nitrosobis(2-oxopropyl)amine (NDOPA) can selectively induce pancreatic-duct adenocarcinomas in Syrian hamsters. Multiple doses or a higher single dose can induce tumours of the liver and other organs. Our earlier studies employing NDOPA systematically labelled with 14C in the three-carbon chain showed that hamster pancreatic DNA is almost exclusively methylated and that the sole source of the methyl group is the alpha carbon of NDOPA. Hamster liver DNA was equally methylated and alkylated by a three-carbon chain. Current studies using generally labelled tritiated NDOPA with a very high specific activity have shown that the three-carbon alkylation is 2-hydroxypropylation. We have identified two adducts isolated from hamster liver DNA, N7-(2-hydroxypropyl)-guanine and O6-(2-hydroxypropyl)guanine, which contain this group, and we have also isolated and identified N7-methylguanine and O6-methylguanine in DNA from hamster liver and pancreas. beta-Oxidized N-nitrosocarbamates, ethyl N-nitroso-2-oxopropylcarbamate (NOPC) and ethyl N-nitroso-2-hydroxypropylcarbamate (NHPC), are useful models for predicting the DNA adducts observed in vivo following NDOPA treatment. Base-catalysed decomposition of NOPC in the presence of exogenous DNA yields five methylated purines (N3-, N7- and O6-methylguanines and N1- and N3-methyladenines). NHPC, a model for N-nitrosamines containing the 2-hydroxypropyl group, reacts with guanosine to yield N7- and O6-(2-hydroxypropyl)guanines.(ABSTRACT TRUNCATED AT 250 WORDS)

Adenocarcinoma↗

Effects of oltipraz, BHA, ADT and cabbage on glutathione metabolism, DNA damage and lipid peroxidation in old mice.

Eighteen-month-old female mice were fed defined diets for 2 weeks which contained 0.05% or 0.10% oltipraz, 0.10% anethole dithione (ADT), 0.10% butylated hydroxyanisole (BHA) or 20% lyophilized cabbage. All diets resulted in significant increases in hepatic reduced glutathione (GSH) content. Glutathione reductase and glutathione S-transferase activities were also significantly higher than the control values. All diets produced significant decreases in hepatic DNA damage (single strand breaks) and lipid peroxidation (malondialdehyde content). In general, similar effects were produced by the two dithiolthiones, oltipraz and ADT. More pronounced effects were produced by oltipraz and ADT than by BHA or cabbage in the diet. Diets high in antioxidants may be effective in retarding free radical reaction processes associated with aging and cancer.

Aging↗

Test of catechol, tannic acid, Bidens pilosa, croton oil, and phorbol for cocarcinogenesis of esophageal tumors induced in rats by methyl-n-amylnitrosamine.

Catechol (CAS: 120-80-9), given in drinking water to rats, was the most effective of 5 phenols in enhancing [3H]thymidine incorporation [( 3H]dThd-l) into esophageal DNA. To test for esophageal cocarcinogenesis, groups of 30 male MRC-Wistar rats received 3 weekly ip injections of 25 mg methyl-n-amylnitrosamine [(MNAN) CAS: 13256-07-0]/kg. From the time of the first MNAN injection, each group also received catechol, tannic acid (CAS: 1401-55-4), dried leaves of Bidens pilosa L., or croton oil (CAS: 8001-28-3) (respectively, 2, 10, 50, and 2 g/kg semipurified diet), or were given 20 ip injections of 6 mg phorbol (CAS: 17673-25-5)/rat. The rats were killed after 20-45, 46-52, or 53-72 weeks (subgroups A, B, and C). In the group given MNAN alone, most esophageal papillomas developed during the first 45 weeks. Both catechol and B. pilosa significantly increased the esophageal papilloma multiplicity (No. of papillomas/rat) induced by MNAN, with a maximum tumor yield of 2.2 times that in the corresponding subgroup treated with MNAN alone. Papilloma multiplicity increased from subgroup A to subgroup C in the MNAN plus B. pilosa group but not in the MNAN plus catechol group. No tumors were induced by the test cocarcinogens given without MNAN. We concluded that a) an increased esophageal [3H]dThd-I indicates potential cocarcinogenicity and b) catechol and B. pilosa were weak esophageal cocarcinogens. These results support the view that catechol in cigarette smoke and B. pilosa as eaten in South Africa contribute to the etiology of human esophageal cancer.

Animals↗

Persistence of DNA single-strand breaks and other tests as indicators of the liver carcinogenicity of 1-nitroso-5,6-dihydrouracil and the noncarcinogenicity of 1-nitroso-5,6-dihydrothymine.

The cyclic nitrosourea 1-nitroso-5,6-dihydrothymine [(NDHT) 1-nitrosodihydrothymine] was not significantly carcinogenic when it was administered for 1 year in drinking water (206 mg/liter) to MRC-Wistar rats. In acute toxicity tests, ip injection of saline solutions of 1-nitroso-5,6-dihydrouracil [(NDHU) CAS: 16813-36-8; 1-nitrosohydrouracil], a strong liver carcinogen in rats, produced only mild liver toxicity but marked focal degeneration of myocardial fibers. NDHU injected ip in water solution produced subcapsular liver damage. NDHU, but not NDHT, induced unscheduled DNA synthesis in hepatocyte primary cultures. NDHU, NDHT, and methylnitrosourea [(MNU) CAS: 684-93-5; N-methyl-N-nitrosourea], a liver carcinogen only under special conditions, were tested for their ability, when injected ip into rats, to produce liver DNA damage measured as strand breaks by alkaline sucrose gradient centrifugation. The three nitrosoureas produced similar maximum DNA damage of 2.2-3.2 strand breaks/10(8) daltons. Eighty percent of the damage due to NDHU persisted for 7 days, and the damage at that time was significantly greater than that produced by NDHT and MNU. The varying persistence of liver DNA damage may explain why NDHU, but not NDHT, is a liver carcinogen.

Animals↗