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P Carthew

Publications and source records attributed to P Carthew.

At least 37 records · Page 2Linked to original sources

The role of cell death and cell proliferation in the promotion of rat liver tumours by tamoxifen.

Administration of tamoxifen to rats results in liver tumours with a latency time that is dependent on the strain of rat used. Wistar and Lewis rats develop liver tumours more rapidly than Fischer rats. Significant increases in the number of apoptotic hepatocytes were found in the Wistar and Lewis strains of rats after they were fed tamoxifen for up to 6 months, but not in Fischer rats. By 6 months of exposure to tamoxifen there were liver tumours in the Wistar and Lewis rats, but not the Fischers. Sustained elevations of the PCNA labelling index were found in the livers of tamoxifen-treated Wistar and Lewis rats, over the first 6 months of tamoxifen treatment, but not Fischers. It is proposed that sustained cell death by apoptosis may play a role in the mechanism of promotion of tamoxifen-induced liver tumours, by causing liver hyperplasia. To support this concept it has been shown that cyloheximide, which causes apoptosis but not necrosis in the rat liver, causes DNA synthesis and cell division in hepatocytes.

Animals↗

Tamoxifen associated uterine pathology in rodents: relevance to women.

Rats administered tamoxifen for 3 months and then returned to a basal diet developed an increase in uterine weight for up to 9 months after tamoxifen exposure. Stereological analysis of the tamoxifen exposed rat uteri showed that there was a significant increase in the amount of uterine myometrium, for a further 9 months, subsequent to the discontinuation of tamoxifen. A low incidence of myometrial proliferations (deciduomas) and uterine tumours was found at the conclusion of the study (20 months). In contrast, continuous administration of tamoxifen to mice for 24 months produced hyperplasia of the uterine endometrial epithelium and atrophy of the myometrium for the first 3 months, followed by atrophy of both the endometrium and myometrium for the remaining 21 months of the study. No uterine tumours were found in mice treated with tamoxifen for 2 years. The use of stereological analysis on interim sacrifice rodent uteri indicated that sustained uterine tissue compartment effects can occur, with either the continuous administration of tamoxifen, or after its discontinuation. Tamoxifen can have an agonist and antagonist like effect on oestrogen activity in different tissue compartments of the mouse uterus, over the same time period. The particular relevance of the finding of uterine proliferation and atrophy in the rodent studies with tamoxifen is discussed with regard to women taking this drug.

Animals↗

Tamoxifen induces short-term cumulative DNA damage and liver tumors in rats: promotion by phenobarbital.

Tamoxifen administered in the diet (420 ppm) to Wistar rats (TOX:P) for only 3 months caused cumulative hepatic DNA damage as assessed by 32P-postlabeling, consistent with the proposal that tamoxifen is a genotoxic carcinogen in this species. Promotion of tumor development with phenobarbital after discontinuation of dietary tamoxifen resulted in the formation of liver carcinomas after 9 months. At 12 and 20 months in this study, the majority of these rats had liver carcinomas. Rats treated with tamoxifen for 3 months but not promoted with phenobarbital also developed liver tumors over a longer period of time. These tumors were predominantly adenomas, with one carcinoma, and occurred at a lower incidence than the tumors produced by promotion with phenobarbital. Rats treated with phenobarbital alone did not develop tumors after 20 months. Tamoxifen-induced DNA adducts were relatively persistent, with only a 38% decrease 3 months after tamoxifen treatment had been discontinued. This demonstrates that, in a susceptible species (the rat), tamoxifen can cause initiation of liver cancer after only 3 months exposure. It is proposed that the persistence of such DNA adducts may account for the ability of phenobarbital to promote a high incidence of liver carcinoma, even after discontinuation of tamoxifen treatment. These data are relevant to the concern for women given prophylactic tamoxifen for long periods in that even if there is a relatively small amount of cumulative tamoxifen-induced liver DNA damage, liver tumors could be promoted by other agents, even after the cessation of tamoxifen treatment.

Animals↗

Synergy of iron in the toxicity and carcinogenicity of polychlorinated biphenyls (PCBs) and related chemicals.

In Ah-responsive C57BL/10ScSn mice a single dose of iron significantly potentiated the property of the polychlorinated biphenyl (PCB) mixture Aroclor 1254 to induce porphyria by inhibition at the uroporphyrinogen decarboxylase stage of hepatic haem biosynthesis. The induction of liver tumors and other lesions were also enhanced markedly by iron overload suggesting a link between porphyria and cancer. The cellular, molecular and biochemical processes involved have been investigated in attempts to explain these phenomena by an iron-catalysed 'oxidative stress' mechanism.

Animals↗

DNA damage as assessed by 32P-postlabelling in three rat strains exposed to dietary tamoxifen: the relationship between cell proliferation and liver tumour formation.

Tamoxifen was administered in the diet (420 p.p.m.) to female F344 (Fischer), Wistar (LAC-P) and LEW (Lewis) rats to determine for each strain the early morphological and biochemical changes associated with the subsequent development of liver cancer. Hepatic DNA damage, as determined by 32P-postlabelling, showed a cumulative increase with time from 500 adducts/10(8) nucleotides at 30 days to almost 3000 adducts/10(8) nucleotides after 180 days, with little difference between strains at this time point. A significant strain difference was found in the number of adducts present in the Fischer rats at 90 days, compared to the Wistar and Lewis strains. There was a marked strain differences in the time to development of liver tumours. After 6 months treatment, both Wistar and Lewis rats had tumours while none were seen in the Fischer animals. After 11 months, all of the Wistar and Lewis rats had developed liver carcinoma, while the Fischer rats developed liver carcinoma by 20 months. Depression in cell proliferation, relative to age-matched controls, was seen in the livers of Fischer rats after six months of exposure to tamoxifen, in contrast to an increase in the Wistar and Lewis rats. This observation is consistent with the promotion of foci to tumours and the subsequent progression of tumours to carcinomas in the latter two strains. These data may assist in establishing the possible risk factors, such as extent of DNA damage and increased liver cell proliferation, to women with long-term prophylactic exposure to tamoxifen.

Animals↗

A comparison of the acute pathology induced by 3-phenylamino-1,2-propanediol (PAP) and its mono-oleoyl ester in rodents with the toxic oil syndrome in man.

Phenylamino-1,2 propanediol (PAP) and its mono-oleoyl ester have been identified in samples of the cooking oil thought to be responsible for the Toxic Oil Syndrome (TOS) which occurred in Spain in 1981. The acute toxicity of PAP and its mono-oleoyl ester have been examined in rats and mice, after daily administration for periods of up to 14 days to determine whether these compounds could produce any of the pathologies of TOS. Even at the highest dose, the 1-mono-oleoyl ester of 3-phenylamino-1,2 propanediol did not cause any toxicity in rats or mice when given intraperitoneally. 3-Phenylamino-1,2 propanediol, however, was toxic when administered to rats by this route. After 6-10 consecutive daily doses of PAP, at the highest dose administered (350 mg kg-1), all of the rats became unwell. Postmortem examination showed that the major pathology present was massive pulmonary thromboembolism. Further investigations of the toxicity of PAP after intravenous administration showed that it was not directly vasotoxic. The pulmonary thromboembolism seen with intraperitoneally administered PAP was due to the toxic effect of PAP on the mesenteric tissue and blood vessels, causing thrombosis which subsequently embolised the blood vessels in the lung. Intra-gastric administration of PAP caused no toxicity in rats. Comparatively, the pathology seen after intraperitoneal administration of PAP was not thought to be representative of the pathology of the toxic oil syndrome in man.

Animals↗

Intrapleural administration of vitreous high duty ceramic fibres and heated devitrified ceramic fibres does not give rise to pleural mesothelioma in rats.

In order to determine whether they are potentially carcinogenic to the pleural mesothelium, three samples of ceramic fibre have been administered to rats by the intrapleural route. These samples were a high-duty grade refractory ceramic fibre (manufactured by Thermal Ceramics Ltd) in the as-manufactured vitreous state and two devitrified samples produced by heating the same fibre for 2 weeks at 1200 degrees C and for two weeks at 1400 degrees C. The mean lifespans of the groups of rats treated with vitrified and devitrified ceramic fibres were not significantly different from that of the control rats. In these studies none of the treated or control rats developed pleural mesothelioma, making it unlikely that ceramic fibres of this type, whether vitreous or devitrified, are potentially carcinogenic to the pleural mesothelium.

Animals↗

The comparative toxicity of chlorambucil and chlorambucil-spermidine conjugate to BALB/c mice.

The acute intraperitoneal toxicities of chlorambucil and chlorambucil-spermidine conjugate have been compared, in mice. Both compounds were neurotoxic and also caused a prolonged fall in bodyweight and a depletion of lymphocyte numbers associated with a fall in the total leukocyte count and loss of spleen and thymus weight. Alanine aminotransferase and aspartate aminotransferase activities and blood urea nitrogen concentration were increased at 24 h after conjugate administration, but had returned to normal at 72 h. Chlorambucil significantly decreased blood urea nitrogen concentration for 72 h, but did not affect transferase activity. Tissue concentrations of conjugate were measurable in liver and kidney for 12 days and lung for 5 days after dosing. The toxicity of both compounds was cumulative. In mol/kg, the chlorambucil-spermidine conjugate was 10-fold more toxic than chlorambucil, on the basis of their neurotoxicity, but only 2- to 3-fold more toxic on the basis of their effects on lymphocyte depression. The increased toxicity of the conjugate does not improve its therapeutic index relative to chlorambucil.

Alanine Transaminase↗

Influence of iron on the induction of hepatic tumors and porphyria by octachlorostyrene in C57BL/10ScSn mice.

Octachlorostyrene (OCS) is an environmental contaminant, present in fish of Northern European waters and the Great Lakes of America. It has many distribution and toxic similarities to hexachlorobenzene (HCB). Administration of OCS at 0.01% of the diet to C57BL/10ScSn mice within iron overload for 18 months gave only a low incidence of hepatic nodular hyperplasia (2/10 survivors) and no hepatocellular adenomas or carcinomas. In contrast, with a similar regime, HCB causes severe liver cancer or nodules in all exposed mice. Whole body autoradiography of mice given [14C]OCS or [14C]HCB showed no gross variations in distribution or covalent binding of the radiolabelled compound to account for the difference between the chemicals in the development of tumours. In 12-week studies, the CYP1A subfamily was induced to a greater degree by HCB than OCS and iron-enhanced uroporphyria was significantly greater with HCB. The findings are consistent with the proposal that uroporphyria and liver cancer induced in mice by HCB are associated through related mechanisms, but occur to a significantly lesser extent with OCS.

Animals↗

The involvement of apoptosis in etoposide-induced thymic atrophy.

A time- and dose-dependent thymic atrophy was observed in young male Fischer 344 rats dosed intraperitoneally with etoposide (10, 30, or 100 mg/kg). Histopathological examination of the thymus revealed that the pattern of cell death in the majority of thymocytes had a characteristic apoptotic morphology typified by nuclear condensation. This observation was supported by the formation of internucleosomal fragments of DNA in thymocytes isolated from animals dosed with etoposide. Administration of the protein synthesis inhibitor, cycloheximide (1.5 mg/kg, ip), 1 hr prior to etoposide inhibited the induction of apoptosis in thymocytes, assessed by both biochemical and histological criteria. Flow cytometric analysis of thymocytes from animals dosed with etoposide in vivo revealed the formation of both apoptotic cells and apoptotic bodies in contrast to previous in vitro studies which showed the formation of only apoptotic cells. Our data indicate that the induction of apoptosis in thymocytes is a major mechanism involved in etoposide-induced thymic atrophy.

Animals↗

Potentiation of iron accumulation in cardiac myocytes during the treatment of iron overload in gerbils with the hydroxypyridinone iron chelator CP94.

Gerbils administered iron dextran are the only animal species which have been shown to develop hemochromatosis of the liver and heart in the same manner as transfusion dependent homozygous thalassemics. The iron chelating hydroxypyridinone, CP94, has been administered prophylactically to iron overloaded gerbils in a dosing regime which favors the formation of bidentate chelated iron, to examine the possibility of additional toxicity being caused to the liver and heart by the bidentate chelated iron complex. Hepatic iron accumulation was inhibited by CP94 administration for up to 6 weeks, but not after 20 weeks. Iron accumulation in the heart was increased significantly after 6 and 20 weeks of chelator treatment. Pathological changes in both organs were markedly more severe after 20 weeks in chelator treated animals. There was a higher incidence of cardiofibrosis and more extensive liver fibrosis in iron overloaded, chelator treated animals after 20 weeks.

Animals↗

1-Nitronaphthalene toxicity in rat lung and liver: effects of inhibiting and inducing cytochrome P450 activity.

In rats, 1-nitronaphthalene (1-NN) causes both pulmonary and hepatic toxicity. Pulmonary toxicity is evident as bronchiolar damage, with necrosis of Clara cells and ciliated cells, whereas hepatic injury involves vacuolation of centrilobular hepatocytes. Pretreatment with O,O,S-trimethylphosphorodithioate [OOS-MeP(S)] or p-xylene gave three- to fourfold protection against 1-NN toxicity. These pretreatments also prevented both the increase in lung weight and the rise in gamma-glutamyltranspeptidase and alkaline phosphatase activity in bronchoalveolar lavage fluid normally associated with 1-NN toxicity. Pretreatment with Aroclor 1254 or beta-naphthoflavone (beta-NF) did not alter the LD50 of 1-NN. Aroclor or beta-NF pretreatment did, however, prevent morphological signs of lung injury and any increase in either lung weight or enzyme activity in bronchoalveolar lavage fluid. Liver damage was not prevented by these treatments; indeed, injury was exacerbated and was transferred from centrilobular to periportal areas. In control rats the covalent binding of [1-14C]NN to liver microsomes was eight times greater than to lung microsomes. Pretreatment with OOS-MeP(S) decreased covalent binding to lung microsomes, without affecting binding to liver microsomes. Conversely, both Aroclor and beta-NF slightly increased covalent binding in lung, but increased liver binding by 250-300%. Phenobarbitone also increased binding to liver microsomes by 250-300%, but failed to increase, or alter, the distribution of liver damage. The reported effects of these pretreatments indicate that the toxicity of 1-NN is probably activated by isoenzyme CYP2B1 in lung, but by isoenzymes CYP1A1 or CYP1A2 in the liver.

Animals↗

A reappraisal of the carcinogenicity of surface modified asbestos fibres.

A previous study using intrapleural administration of surface-modified amosite asbestos showed a difference in the number of pleural mesotheliomas induced with C18-hydrocarbon derivatised fibres compared to native amosite asbestos. The study has been repeated with larger groups of animals (30) under specific pathogen free conditions, resulting in an increase in the mean animal survival time for both fibre-treated groups. Under these conditions there was no significant difference between the numbers of pleural mesotheliomas induced by C18 hydrocarbon-modified amosite asbestos and native amosite asbestos. The major difference between the two studies was the mean time to death from tumour of rats exposed to fibres. The C18 amosite treated rats in the first study may not have had a mean survival time long enough to allow mesotheliomas to develop.

Animals↗

Enhancement by iron of hepatic neoplasia in rats caused by hexachlorobenzene.

Female F344 rats received an i.p. injection of iron-dextran (600 mg Fe/kg) and then after 1 week were fed a diet containing 0.02% hexachlorobenzene (HCB) for up to 65 weeks. All rats (8/8) which received HCB after iron overload developed multiple hepatic nodules whereas only 3/8 rats administered HCB alone had nodules (average of one per positive liver). These hyperplastic regions were depleted of iron and were often positive for gamma-glutamyl transpeptidase (GGT) and glutathione S-transferase P (GST-P). Telangiectasis and peliosis were prominent features in the lesions. Short-term experiments (5-15 weeks of iron/HCB treatments) showed that GGT and GST-P were induced early in the neoplastic process but not in discrete focal areas. Iron alone also caused some induction of these enzymes. Some cells with induced GST-P in either short or long term experiments also stained positively for this enzyme in the nucleus. Studies of cytochrome P450 mediated activities showed that at 5 and 15 weeks HCB had induced EROD (an estimate of CYP1A1), PROD (CYP2B1 activity) and BROD activities (CYP2B1 but also other isoenzymes). Under the influence of iron overload EROD was significantly depressed from HCB alone, but not the others or cytochrome P450 reductase. Cytosolic glutathione S-transferase activities were also induced by HCB, but, unlike microsomal EROD, preloading with iron enhanced the effects. In contrast, although cytosolic diaphorase activity was induced by HCB, this response was depressed in combination with iron. Glutathione peroxidase (with H2O2 as substrate) was depressed by both iron and HCB. Clearly, iron overload potentiates the neoplastic process induced by HCB in rats, with both enhancing and depressing effects on various enzyme activities induced by this chemical.

Animals↗

A unique rodent model for both the cardiotoxic and hepatotoxic effects of prolonged iron overload.

BACKGROUND: Hemochromatosis is a disease of excessive iron storage leading to tissue damage and fibrosis. Both genetic hemochromatosis, which can affect 1 in 500 of some populations, and the form of this disease which occurs as a secondary consequence of the hemoglobinopathy, homozygous beta-thalassemia, with 40 million carriers worldwide, have a common pathology. The cardiotoxicity and hepatotoxicity, which occurs with this disease, have never been produced experimentally in other species. EXPERIMENTAL DESIGN: Using a regimen of iron dextran administered subcutaneously to gerbils on a weekly basis for 7 weeks, we have produced severe hemosiderosis, especially of the liver and heart. By examining gerbils at 1, 2 and 3 months after the final iron injections we followed the subsequent development of hemochromatosis in the hearts and livers of iron overloaded animals. RESULTS: Hemochromatosis of the liver was evident as a scarring fibrosis in all cases between 1 and 3 months after iron dextran administration to gerbils. The iron burden in the cardiac myocytes of gerbils gradually increased between 1 and 3 months, resulting in hemochromatosis of the heart 2 and 3 months after the final iron dextran injections. CONCLUSIONS: Repeated parenteral injections of iron dextran to gerbils resulted in hemochromatosis affecting the liver and heart with a pathology which is the same as occurs in the end-stage disease in man. This model will allow the detailed study of the mechanism of iron induced, free radical tissue damage, which is though to be the cause of these lesions and will also be useful in the evaluation of iron chelating therapies to determine whether the hepatic and cardiac pathology of iron overload can be modulated over a long period.

Animals↗

Degree of ethoxyquin-induced nephrotoxicity in rat is dependent on age and sex.

The toxicity of ethoxyquin (EQ) to rat kidney was examined in males which were either weanling or adult at the beginning of the experiment, and also in adult females. Female rats were much less susceptible to the toxic effects of EQ than males of the same age. In males damage to the cortex, mainly as an acceleration of the normal ageing process, was similar in both age groups, but rats exposed to EQ as weanlings also suffered from extensive papillary necrosis. Male rats were more prone than females to proteinuria, which was greatly exacerbated by EQ in both age groups. Thus there is very little evidence of nephrotoxicity in adult female rats on exposure to EQ at 0.5% in the diet for 26 weeks. In males, the initial age of the animal, as well as the length of treatment, influences the extent of damage.

Age Factors↗

Acute lesions in rats caused by 3-amino-1,2,4-benzotriazine-1,4-dioxide (SR 4233) or nitromin: a comparison with rates of reduction in microsomal systems from target organs.

Pathological lesions to male Fischer rats were investigated 24 h after the administration of 3-amino-1,2,4-benzotriazine-1,4- dioxide (SR 4233) or nitromin, two compounds which need to undergo bioreductive activation in order to exert their toxic effects. Although SR 4233 reduction leads to a putative free radical species while with nitromin a bifunctional alkylating agent is formed, in both instances, the bone marrow was a major target organ. However, the response of other organs to these compounds differed. SR 4233 caused lesions to the olfactory epithelium, liver, kidney and thymus. Nitromin caused focal haemorrhages on the intestine, which were reduced in germ-free rats. Rates of reduction of SR 4233 or nitromin were determined under anaerobic conditions using microsomal preparations from target tissues. With SR 4233 as a substrate, reductase activities were highest in the olfactory epithelium, 6 fold higher than in the liver. SR 4233 reductase activities generally correlated with those of NADPH:cytochrome c reductase or the concentration of cytochrome P-450 reductase protein in the affected organs while with nitromin, there appeared to be no such relationship. The present results support the concept that the expression of pathological damage in vivo is a multifactorial process and does not directly correlate with initial rates of reduction of either drug determined in vitro.

Animals↗

Search for Ha-ras codon 61 mutations in liver tumours caused by hexachlorobenzene and Aroclor 1254 in C57BL/10ScSn mice with iron overload.

C57BL/10ScSn mice administered iron--dextran and fed the environmental pollutants hexachlorobenzene (HCB) and polychlorinated biphenyls (PCBs) develop hepatic nodules and carcinomas within 18 months. A range of lesions from the livers were analysed for the presence of mutations in the Ha-ras proto-oncogene at codon 61 using the polymerase chain reaction to amplify DNA from formalin-fixed sections, followed by oligonucleotide hybridization. Only two mutations from 23 preneoplastic and neoplastic lesions induced by HCB were detected (a focus of altered cells and a trabecular cell carcinoma). With Aroclor 1254 no mutations were detected in 28 areas at various stages of carcinogenesis analysed. Sequencing of the two mutations generated by HCB showed a C-->T transversion at the first base of codon 61 (carcinoma) and an A-->T transversion at the second base (proliferative focus). Thus, in marked contrast to some other systems of mouse liver tumour induction, hepatocarcinogenesis caused by HCB and PCBs in C57BL/10ScSn mice is an example of carcinogenesis which does not involve a high frequency of Ha-ras gene mutation at codon 61.

Animals↗