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R R Maronpot

Publications and source records attributed to R R Maronpot.

At least 37 records · Page 2Linked to original sources

Effect of individual versus group caging on the incidence of pituitary and Leydig cell tumors in F344 rats: proposed mechanism.

Recently, an increase in pituitary tumor (pars distalis adenoma) incidence, and decrease in testicular interstitial cell tumor incidence, has been noted in F344 rats, in 2 year National Toxicology Program dermal and inhalation studies. One of the factors that may have contributed to this correlation is the difference in housing protocols. Rats in inhalation and dermal toxicity studies are singly caged, in contrast to other types of studies in which rats are group-caged, such as dosed-feed, dosed-water, or gavage studies. We propose that stress, related to individual caging, particularly among males, directly impairs testosterone synthesis and produces Leydig cell atrophy which leads to a feedback increase in the synthesis of luteinizing hormone by the anterior pituitary. This is followed by anterior pituitary cell functional hypertrophy, hyperplasia, and eventually neoplasia. It is known that individual caging of male rats produces a stress response associated with increased serum corticosteroids. The testicular interstitial cells (Leydig cells) have specific receptors for the glucocorticoid hormones. The Leydig cell enzyme 11-beta-hydroxysteroid dehydrogenase (11-beta-HSD) inactivates gluococorticoids; however, prolonged stress depletes this enzyme, enabling the gluococorticoids to impair steroidogenesis and eventually to lead to compensatory pituitary proliferations, including neoplasms.

Adrenal Cortex Hormones↗

Interactive effects of c-myc and transforming growth factor alpha transgenes on liver tumor development in simian virus 40 T antigen transgenic mice.

To analyze the effects of c-myc and transforming growth factor alpha (TGFalpha) on hepatocarcinogenesis induced by simian virus 40 T antigen (TAg), livers from single and bitransgenic mice, 3 to 11 mice per line, were examined morphologically 1 to 8 weeks after birth. Mice carrying c-myc or TGFalpha alone exhibited centrilobular hypertrophy and increased apoptosis (c-myc mice only) of hepatocytes after 3 or 4 weeks of age, but no detectable changes in cell proliferation or proliferative lesions were observed in either line during the 8 weeks. Mice carrying TAg alone exhibited increased cell proliferation, apoptosis, and dysplasia of hepatocytes with notably high mitotic and apoptotic indices as major changes before development of putative preneoplastic lesions after 4 weeks of age and neoplastic lesions after 6 weeks. In bitransgenic mice coexpressing c-myc or TGFalpha with TAg, nonproliferative lesions and mitotic and apoptotic indices were similar to those in mice carrying TAg alone. In TAg x c-myc bitransgenic mice, however, both preneoplastic and neoplastic lesions developed sooner and grew more rapidly than those in TAg mice, whereas in TAg x TGFalpha bitransgenic mice, rapid tumor growth was the principle observation. Because of the effects of transgene coexpression, livers from TAg x c-myc and TAg x TGFalpha mice had multiple tumors as early as 3 and 6 weeks of age, respectively. The results indicate cooperative functions of c-myc and TGFalpha with TAg during development and/or growth of liver tumors in vivo.

Animals↗

Furan-induced liver cell proliferation and apoptosis in female B6C3F1 mice.

Furan is a potent rodent hepatocarcinogen that probably acts through non-genotoxic mechanisms involving hepatotoxicity and regenerative hepatocyte proliferation. In addition to inducing necrosis, cytotoxicants like furan may also induce cytolethality through apoptosis which has been suggested to play a key role in carcinogenesis. Hepatocyte proliferation and apoptosis were studied in female B6C3F1 mice exposed to furan by oral gavage for 3 weeks at National Toxicology Program (NTP) bioassay doses (8 and 15 mg/kg body weight) and lower (4 mg/kg). Furan treatment led to a 2- to 3-fold significant increase in liver-related enzymes and bile acids in blood serum as compared to the control group. These changes were accompanied by minor subcapsular inflammation and minimal necrosis at 8 and 15 mg furan/kg. A dose-related increase in bromodeoxyuridine-labeling index (1.4- to 1.7-fold) and hematoxylin- and eosin-defined apoptotic index (6- to 15-fold) was observed at 8 and 15 mg/kg. Co-treatment of mice with aminobenzotriazole, an irreversible inhibitor of cytochromes P-450, prevented the observed hepatotoxic effects induced by furan. These results indicate that furan elicits hepatotoxicity in a dose-related manner through a toxic metabolite and, furthermore, suggest that apoptosis is an important form of cell death at hepatocarinogenic doses under short-term conditions.

Administration, Oral↗

Altered gene expression in spontaneous hepatocellular carcinomas from male B6C3F1 mice.

In this study, we analyzed spontaneous hepatocellular carcinomas (HCCs) from male B6C3F1 mice for alterations in the expression of the genes for c-myc, insulin-like growth factor II (IGF-II), cyclin D1, transforming growth factor-alpha (TGF-alpha), and the epidermal growth factor receptor (EGFR). These genes are all important in growth control in the rodent liver, and therefore, alterations in these genes or their products may result in unregulated growth. Northern blot analysis demonstrated an increase in expression of c-myc mRNA in five of 21 (24%) spontaneous HCCs compared with nontumor tissue. Tumors that had an increase in c-myc mRNA did not have an amplified c-myc gene. Of the HCCs analyzed, 18 of 29 (62%) showed reexpression of IGF-II RNA when compared with controls. Cyclin D1 mRNA was overexpressed in seven of 27 (26%) of the tumors analyzed relative to controls. Tumors with an increase in cyclin D1 mRNA also overexpressed the cyclin D1 protein. RNA encoding for the EGFR was decreased in 21 of 23 (91%) HCCs when compared with controls. None of the 29 liver tumors analyzed for alterations in expression of TGF-alpha mRNA differed from controls. Also, each individual tumor had a unique set of molecular alterations even when different tumors from the same animal were analyzed. These novel findings suggest that IGF-II, cyclin D1. c-myc, and EGFR are important mediators of carcinogenesis in spontaneous mouse liver tumor formation.

Animals↗

Susceptibility of transgenic mice carrying human prototype c-Ha-ras gene in a short-term carcinogenicity study of vinyl carbamate and ras gene analyses of the induced tumors.

To determine if hemizygous transgenic mice carrying the human c-Ha-ras gene (CB6F1-Tg Hras2 mice (Hras2 mice)) are susceptible to the carcinogenic potential of known murine carcinogens, male and female Hras2 mice and their non-transgenic CB6F1 littermates (non-Tg mice) were each given a single intraperitoneal injection of 60 mg of vinyl carbamate (VC)/kg body weight or saline (vehicle control) and monitored for 16 wk without further treatment. At necropsy, grossly visible tumors were fixed for histopathologic diagnosis and, when of sufficient size, portions were frozen for subsequent molecular analysis. Nine of 31 male and nine of 29 female Hras2 mice treated with VC died within 16 wk as a result of lung tumor burden. At the termination of the study, lung tumors (alveolar-bronchiolar epithelial neoplasms and hemangiosarcomas) and focal alveolar-bronchiolar hyperplasias were present in both sexes of Hras2 and non-Tg mice treated with VC; there were significantly more proliferative lung lesions in Hras2 than non-Tg mice. Splenic hemangiosarcomas and squamous cell tumors of the forestomach were induced in male and female VC-treated Hras2 mice but not in VC-treated non-Tg mice. Polymerase chain reaction-single-strand conformation polymorphism analysis and DNA sequencing of the induced lung tumors revealed point mutations at codon 61 of the transgene in two of 29 lung tumors (one of 16 in males and one of 13 in females) from VC-treated Hras2 mice; no mutations in murine Ki-ras were found in these tumors. Point mutations at codons 12 and 61 of the murine Ki-ras gene were observed, however, in one of 10 and six of 10 lung tumors respectively, from VC-treated non-Tg mice. These findings indicate that Hras2 mice are highly sensitive to pulmonary neoplasms and splenic and lung hemangiosarcomas after treatment with VC. The molecular analyses suggest that point mutations of the transgene and the murine Ki-ras gene do not play a major role in VC induction of pulmonary neoplasms in these transgenic mice.

Adenocarcinoma, Bronchiolo-Alveolar↗

Ovarian luteal cell toxicity of ethylene glycol monomethyl ether and methoxy acetic acid in vivo and in vitro.

These studies define the site and mechanisms of reproductive toxicity of ethylene glycol monomethyl ether (EGME) in a nongravid female animal model using in vivo and in vitro methods. In vivo studies assessed vaginal cytology and histology, ovarian histology, and serum hormones in 80- to 90-day-old, adult, regularly cycling, female Sprague-Dawley rats treated daily with EGME or vehicle by oral gavage. Dose-response and time-course studies (four to nine rats per group per treatment) determined that 300 mg/kg EGME suppressed cyclicity without systemic toxicity within 3 to 8 days, and doses less than 100 mg/kg had no effect. Pathogenesis studies (six to nine rats per time and treatment) determined that 300 mg/kg EGME elevated serum progesterone within 32 hr after dosing, while serum estradiol, FSH, LH, and prolactin remained at baseline levels. In EGME-treated rats, cyclicity was suppressed, ovulation was inhibited, and corpora lutea were hypertrophied. Thus, EGME appeared to target the ovarian luteal cell. To further examine the toxicity in vitro, luteal cells were recovered from 23-day-old, hCG-primed Sprague-Dawley rats and treated with 0-10 mM methoxy acetic acid (MAA), the proximate toxic metabolite of EGME. MAA (1-10 mM) maintained elevated progesterone levels as production declined in untreated cells at 24 and 48 hr of culture. Progesterone production was maintained independent of LH-stimulated cAMP levels. MAA decreased ATP, but only at 48 hr and at 2.5 mM or greater concentrations. Thus, these studies establish that the ovarian luteal cell is a target of EGME and MAA in vivo and in vitro and that the effect on luteal cell progesterone production is likely independent of LH-stimulated cAMP pathways.

Acetates↗

Genomic instability, as measured by microsatellite alterations, is not associated with liver tumor development in the genetically susceptible B6C3F1 mouse.

Certain human heritable forms of colon cancer have characteristically high frequencies of microsatellite alterations. These microsatellite changes are markers of genomic instability and the direct consequence of mutations in genes involved with DNA mismatch repair processes, which are in part responsible for maintaining the sequence integrity of the genome. Given that the B6C3F1 mouse is genetically predisposed to develop liver tumors we were interested in determining whether tumors derived in this strain of mouse may contain alterations in microsatellite sequences. The analysis of 48 tumors at 24 different microsatellite loci revealed that microsatellite alterations were detected in 12 of 48 tumors (25%). Although this frequency is relatively high, 11 of the 12 tumors exhibited only a single alteration and in 10 of those tumors this change was at the same microsatellite locus. Microsatellite alterations were also detected in the DNA isolated from 6 of 22 (27%) normal liver tissues with 4 of the 6 occurring at the same locus where the majority of changes were observed in the tumors. Based on these results, we conclude that the microsatellite alterations present in the mouse liver tumor tissue are most likely the result of spontaneous mutational events. Consequently, the genomic instability operational in a particular type of hereditary human colon cancer does not appear to be operational in the genetically predisposed B6C3F1 mouse liver. In addition, we demonstrated that the activation of the H-ras gene, which causes some forms of genetic instability in vitro, does not contribute to genetic instability within liver tumors as measured by microsatellite alterations.

Animals↗

The carcinogenic potential of the gas phase of environmental tobacco smoke.

Female strain A/J mice were exposed to unfiltered or HEPA-filtered environmental tobacco smoke (ETS). Total suspended particulates (TSP) in the full smoke exposure chamber was 78.5 mg/m3 and in the filtered smoke chamber 0.1 mg/m3; nicotine concentrations in the full and filtered smoke chamber were 13.4 and 3.1 mg/m3, respectively. Animals exposed to filtered ETS (6 h a day, 5 days a week) and killed after 5 months had a higher lung tumor incidence and multiplicity than controls maintained in filtered air, although the differences were not statistically significant. Animals exposed to filtered and full ETS and allowed to recover in air for 4 months had an average of 1.2 +/- 0.3 tumors per lung and 1.3 +/- 0.3 tumors per lung, respectively. Air exposed control animals had an average tumor multiplicity 0.5 +/- 0.1 tumors per lung. Increased immunostaining for CYP 1A1 was not evident in the lung of animals exposed to filtered smoke. Based on the chamber concentrations of selected nitrosamines and polycyclic aromatic hydrocarbons, the possible maximum uptakes by the mice of NNK, NNN and benzo[a]pyrene during the 5 months exposure period were three to six orders of magnitude below doses reported in the literature to produce 1 lung tumor in strain A/J mice. It was concluded that the gas phase of ETS is as carcinogenic as is full ETS. The carcinogenicity of the gas phase may be due to some as yet unidentified, yet highly potent carcinogens or by placing a substantial, possibly free radical-mediated oxidative stress on the lung.

Animals↗

The carcinogenicity of environmental tobacco smoke.

Male strain A/J mice were exposed for 6 h a day, 5 days a week to environmental tobacco smoke (ETS) generated from Kentucky 1R4F reference cigarettes. Chamber concentrations were 87 mg/m3 of total suspended particulate matter (TSP), 246 p.p.m. of CO and 16 mg/m3 of nicotine. After 5 months, 33% of the ETS exposed and 11% of the control animals had one or several lung tumors; the difference was statistically not significant. A second group of animals exposed for 5 months to ETS was allowed to recover for another 4 months in filtered air. When they were killed, 85% of the ETS animals had lung tumors (average number per lung: 1.4 +/- 0.2), whereas in the control group 38% had lung tumors (average number of lung tumors in all animals 0.5 +/- 0.2). The differences in tumor incidence and multiplicity were statistically significant. More than 80% of all tumors were adenomas, the rest adenocarcinomas. When animals were pretreated with a carcinogen, lung tumor multiplicity was lower in the ETS exposed animals after 5 months compared with controls injected with a carcinogen and kept in air. However, after an additional 4 month recovery period in air, lung tumor multiplicities were the same in ETS plus carcinogen exposed mice as in carcinogen-treated air-exposed controls. Histopathologic and morphometric analysis of the lung tissue failed to reveal any differences between ETS exposed and control animals. However, immediately after ETS exposure, immunohistochemistry revealed increased staining for CYP1A1 in airway epithelia and lung parenchyma; following recovery in air, the staining disappeared again. Analysis of cell kinetics showed an initial burst of increased DNA synthesis in the epithelial cells of the airways and a smaller early positive response in the parenchyma. Feeding of butylated hydroxytoluene during ETS exposure did not modulate lung tumor development. It was concluded that ETS is a pulmonary carcinogen in strain A/J mice.

Adenocarcinoma↗

Evidence that mirex promotes a unique population of epidermal cells that cannot be distinguished by their mutant Ha-ras genotype.

Mirex is a potent tumor promoter in 7,1 2-dimethylbenz[a]anthracene (DMBA)-initiated female CD-1 mouse skin. Like 12-O-tetradecanoylphorbol-13-acetate (TPA), mirex promotes papillomas that have a Ha-ras mutation; however, unlike TPA promotion, mirex promotion does not involve a general hyperplastic response. We used proliferating cell nuclear antigen (PCNA) and 5-bromo-2'-deoxyuridine (BrdU) immunohistochemical staining to further examine the proliferative capacity of mirex. The numbers of PCNA- and BrdU-positive epidermal S-phase cells were highly concordant in all treatment groups. Unlike a single application of TPA, a single application of mirex had little or no effect on the number of S-phase epidermal cells, and chronic application of mirex to mouse skin produced only minimal increases in S-phase cells. Moreover, mirex did not significantly alter the growth of BALB/MK-2 keratinocytes in media containing either 0.05 or 1.2 mM Ca++. These results suggest that mirex may have highly specific effects on the proliferation of initiated cells and support the existence of a unique mirex mechanism and/or distinct population of mirex-promotable mutant Ha-ras epidermal cells. To begin to address this issue of a distinct population of mirex-promotable mutant Ha-ras cells, we conducted a tandem experiment in which DMBA-initiated mice were treated twice weekly with a maximal promoting dose of mirex. Then, when the number of papillomas reached a plateau, these same mice were treated twice weekly with a maximal promoting dose of TPA. Mice treated with mirex developed a maximum of 6.4 papillomas/mouse. These mice were then promoted with TPA, which produced 8.9 additional papillomas/mouse for a total of 15.3 papillomas/mouse. The maximum tumor yields from other groups of mice treated with only TPA or mirex were 9.8 and 7.3 papillomas/mouse, respectively. Therefore, under these tandem conditions, tumor yields were additive, indicating that there are at least two distinct populations of mutant Ha-ras cells: one promoted by mirex and the other by TPA.

9,10-Dimethyl-1,2-benzanthracene↗

Activation of K-ras in aflatoxin B1-induced lung tumors from AC3F1 (A/J x C3H/HeJ) mice.

In addition to being a potent hepatocarcinogen, aflatoxin B1 (AFB1) is a pulmonary carcinogen in experimental animals and epidemiological studies have shown an association between AFB1 exposure and lung cancer in humans. Since point mutations at codons 12, 13 and 61 of the K-ras protooncogene are often implicated in chemically induced mouse lung tumors and in human lung adenocarcinomas, we undertook an investigation of the role of K-ras activation in AFB1-induced pulmonary carcinogenesis. Female AC3F1 (A/J x C3H/HeJ) mice were treated with AFB1 (150 mg/kg i.p., divided into 24 doses over 8 weeks), and 6-14 months after the completion of dosing mice were killed and pulmonary adenomas and carcinomas removed. Of the 76 AFB1-induced lung tumors analyzed by single strand conformation polymorphism (SSCP) and direct sequencing, 75 possessed K-ras codon 12 mutations (46 GTT, 14 GAT, 13 TGT and 2 TTT; normal, GGT) and one had a GGC-->CGC mutation in codon 13. The observation that K-ras mutations occurred only at G:C base pairs is in agreement with N7-guanine being the primary site of AFB1-DNA adduct formation and with guanine residues being targets for AFB1-induced oxidative DNA damage via formation of 8-hydroxydeoxyguanosine (8-OHdG). The AFB1-specific nature of the observed K-ras mutation spectrum and the fact that 100% of the tumor samples examined contained K-ras mutations is consistent with K-ras activation being an early, critical event in AFB1-induced pulmonary carcinogenesis in AC3F1 mice. The parental origin of the observed K-ras mutations was determined by allele-specific PCR amplification of AFB1-induced lung tumor DNA followed by SSCP analysis. In the vast majority of tumors (73/76), the mutated K-ras allele was derived from the lung tumor susceptible A/J parent. This finding supports the existence of a link between K-ras and differences in mouse lung tumor susceptibility.

Aflatoxin B1↗

Hepatic and pulmonary carcinogenicity of methylene chloride in mice: a search for mechanisms.

An inhalation study utilizing over 1400 female B6C3F1 mice was undertaken to study mechanistic factors associated with liver and lung tumor induction following exposure to 2000 ppm of methylene chloride. Mice were exposed to methylene chloride (treated) or chamber air (controls) 6 h per day, for varying durations up to 104 weeks. Several interim sacrifices and 'stop exposures' were included. Exposure to 2000 ppm methylene chloride caused an increase in liver and lung neoplasia in the absence of overt cytotoxicity. Measurement of replicative DNA synthesis done after 13, 26, 52 and 78 weeks of exposure showed a significant decrease in the hepatocyte labeling index at 13 weeks. Replicative DNA synthesis in pulmonary airways after 1, 2, 3, 4, 13 and 26 weeks of exposure to methylene chloride was significantly lower than in air-exposed controls. Likewise, the increase in tumor induction in treated mice was not associated with increased replicative DNA synthesis in liver foci or in alveolar parenchyma. The frequency and pattern of H-ras gene activation were similar in control and methylene chloride-induced liver neoplasms. Similarly, the frequency and pattern of K-ras activation in lung neoplasms were not altered by exposure to methylene chloride. Early exposure to methylene chloride for only 26 weeks was sufficient to cause an increase in lung tumors by 2 years, suggesting that methylene chloride may cause early and persistent loss of growth control in lung cells. This implies that risk management strategies should be aimed at minimizing or eliminating exposure to methylene chloride. Liver neoplasms continued to increase in incidence and multiplicity as exposure continued, suggesting that methylene chloride-induced hepatocarcinogenesis is facilitated by continuing exposure to methylene chloride. Since methylene chloride is a more potent inducer of lung than liver neoplasia, it is recommended that health risk assessment be based on the lung data. While no novel molecular lesions have been found to explain the induction of lung and liver neoplasia in mice, ongoing studies may identify other molecular changes that are important in the genesis of these neoplasms. Hence, it may be necessary to revise risk assessment and management strategies in light of future research findings.

Administration, Inhalation↗

Mutations in the ras proto-oncogene: clues to etiology and molecular pathogenesis of mouse liver tumors.

The mouse liver is a frequent target organ for chemical carcinogenesis (Huff et al., 1988, 1991; Gold et al., 1989) and tumor development exhibits preferential strain sensitivity (Dragani et al., 1992; Drinkwater and Bennett, 1991). In some reports a positive correlation has been observed between the degree of spontaneous liver tumor incidence and the propensity to develop liver tumors after treatment with chemical carcinogens (Della Porta et al., 1967; Flaks, 1968; Dragani et al., 1984, 1987; Diwan et al., 1986; Drinkwater and Ginsler, 1986), but this is not always the case (Grasso and Hardy, 1975; Hanigan et al., 1988; Dragani et al., 1992). Thus, the interpretation of this endpoint in assessing potential health hazards to humans continues to be the subject of active debate. Studies of molecular and genetic factors that modulate the genesis of mouse liver tumors should enhance our understanding of the relevance of this response following exposure to genotoxic as well as nongenotoxic chemicals. To utilize intelligently animal models as surrogates for human carcinogenesis, the validity of rodent tumor endpoints in assessing potential human health hazards from chemical exposure remains an important issue. One approach has been to understand the animal system itself and the mechanisms by which chemicals induce tumors in the animal model. Information regarding the molecular events associated with tumor induction should make the relevance of results from rodent carcinogenicity studies to human risk easier to assess. Results to date have identified activation of ras proto-oncogenes as one early event and an important factor associated with chemical induction of mouse liver neoplasia (Reynolds et al., 1986, 1987; Wiseman et al., 1986), although ras-independent pathways appear to account for an appreciable proportion of some chemically induced mouse liver tumors (Fox et al., 1990; Buchmann et al., 1991). Available data emphasize the complexity of H-ras activation in murine hepatocarcinogenesis. Not only the genetic background of the mouse but also the dose of the carcinogen may influence significantly the number of tumors containing activated H-ras. Both high sensitivity and low sensitivity strains of mice can develop liver tumors which contain activated H-ras oncogenes, showing that the ability to activate this gene does not in itself determine susceptibility to hepatocarcinogenesis. Ras gene mutational profiles in chemically induced liver tumors may be different and distinguishable from those in spontaneous tumors. Since multiple genetic as well as nongenetic events are associated with tumor development, defining a precise role for ras gene mutations when they occur in mouse liver tumors is often difficult.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Development and persistence of placental glutathione-S-transferase-positive foci in livers of male F344 rats exposed to o-nitrotoluene.

In a previous 13-week study of o-nitrotoluene, a chemical-related increase in liver weight, hepatocellular vacuolization, and oval cell hyperplasia in male F344 rats was reported. In this study, the occurrence and change in number and size of hepatic foci in male F344 rats fed a diet containing 5000 ppm o-nitrotoluene or a control diet for 13 weeks, 26 weeks, and 13 weeks followed by a 13-week recovery period (26-week stop-exposure) were evaluated. The livers were stained immunohistochemically for placental glutathione S-transferase (PGST), a marker of hepatic preneoplasia, and quantified stereologically using computer-assisted image analysis. Exposure to o-nitrotoluene induced PGST-positive (PGST-positive (PGST+) liver foci in all treatment groups. The 26-week continuous-exposure group produced more PGST+ liver foci (961.4 foci/cm3 versus 445.4 foci/cm3) and greater mean focus volume (4.34 microns3 versus 1.34 microns3) than the 13-week continuous-exposure group. In the 26-week stop-exposure group, there were fewer PGST+ liver foci (181.4 foci/cm3) than observed with continuous exposure at 13 weeks or 26 weeks; however, the mean focal volume in the stop-exposure group at 26 weeks (5.33 microns3) was greater than that at 13 weeks (1.34 microns3) or 26 weeks of continuous exposure (4.34 microns3). These findings demonstrate that (1) PGST+ foci are observed after only 13 weeks of exposure to o-nitrotoluene; (2) the number and size of foci increase with continued exposure for 26 weeks; and (3) although the number of PGST+ foci decreases with time after chemical exposure is discontinued, many PGST+ foci do not regress but increase in size during the recovery of 13 weeks. The persistence and increase in size of these foci, even in the absence of chemical exposure, suggest the potential for a hepatocarcinogenic effect in long-term studies for o-nitrotoluene.

Animals↗

Detection of bromobenzene-induced hepatocellular necrosis using magnetic resonance microscopy.

The authors used magnetic resonance (MR) microscopy to assess hepatic tissue damage induced by bromobenzene both in living rats and in fixed rat liver tissues. Experiments were conducted at 7 Tesla on three groups of Fisher rats treated with bromobenzene at a single dose of 68, 135, and 269 mg/kg, respectively. Optical microscopy of hematoxylin and eosin stained sections showed liver damage only at the highest dose, whereas with MR microscopy, tissue alterations were detected at all three doses both in vivo and ex vivo. The contrast mechanism of the superior sensitivity of MR microscopy is believed to be related to the changes in local diffusion coefficients that accompany cellular degeneration and death, although other contrast mechanisms may also be involved. The superior sensitivity of MR microscopy, as demonstrated in this study, has many implications for potential use of MR techniques to perform in vivo histology.

Animals↗

Hepatocarcinogenicity of chlordane in B6C3F1 and B6D2F1 male mice: evidence for regression in B6C3F1 mice and carcinogenesis independent of ras proto-oncogene activation.

Logistic regression analysis of age-specific prevalences for neoplastic and non-neoplastic liver lesions was used to examine treatment responses for B6C3F1 and B6D2F1 male mice continuously exposed to chlordane (55 p.p.m.) and to determine whether neoplasms were dependent on continuous exposure in the B6C3F1 mice. In order to determine if ras oncogene activation plays a role in the carcinogenicity of chlordane and whether the activation is dependent on genetic background, liver tumors from chlordane-treated B6C3F1 and B6D2F1 mice were analyzed for the presence of activating mutations in the ras oncogene. The overall liver tumor prevalence at terminal killing was nearly 100% for both strains; however, the age-specific prevalence increased more rapidly in B6C3F1 mice than in B6D2F1 mice. Tumor-bearing B6C3F1 mice had an average of two or more tumors per liver than B6D2F1 mice at their respective terminal killings (5.4 versus 3.3). When chlordane exposure was discontinued for a group of B6C3F1 mice ('stop' group) at 491 days of age, overall tumor multiplicity significantly decreased by 30% from an average of 4.4 per tumor-bearing-animal at 525 days to 3.1 at terminal killing (568 days). Over the same time period the prevalence of hepatocellular carcinomas significantly decreased from 80 to 54% and adenomas from 100 to 93% by terminal killing in B6C3F1 'stop-group' mice. Chlordane induced diffuse hepatocellular centrilobular hypertrophy, frequent multinucleate hepatocytes, toxic change and hepatoproliferative lesions composed predominantly of acidophilic hepatocytes in nearly 100% of both the B6C3F1 and B6D2F1 mice. The development of histological evidence of toxicity closely paralleled the temporal development of hepatocellular neoplasia and decreased in severity when the tumor burden was maximal. No H- or K-ras mutations were detected in the chlordane-induced hepatocellular tumors in B6C3F1 mice (15 adenomas and 15 carcinomas) or B6D2F1 mice (10 adenomas and 10 carcinomas). In conclusion, chlordane induced liver tumors in both B6C3F1 and B6D2F1 male mice by mechanisms independent of ras oncogene activation and 30% of both benign and malignant liver tumors in the B6C3F1 mice regressed after exposure was discontinued.

Animals↗