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Foci of aberrant crypts in the colons of mice and rats exposed to carcinogens associated with foods.

Aberrant crypt foci can be identified in the colons of rodents treated 3 wk earlier with azoxymethane, a known colon carcinogen. These crypts can easily be visualized in the unsectioned methylene blue-stained colons under light microscopy, where they are distinguished by their increased size, more prominent epithelial cells, and pericryptal space. They occur as single aberrant crypts or as two, three, or four aberrant crypts in a cluster. We compared the reported ability of carcinogens associated with the human diet to induce colon cancer with the measured rate of induction of aberrant crypts in female CF1 mice and Sprague-Dawley rats. The carcinogens used were 1,2-dimethylhydrazine, methyl nitrosourea, N-nitrosodimethylamine, benzo(a)pyrene, aflatoxin B1, 2-amino-6-methyldipyrido[1,2-alpha:3',2'-d]imidazole, 2-amino-3-methylimidazo[4,5-P]quinoline, 2-amino-3,4-dimethylimidazo[4,5-P]quinoline, and 3-amino-1-methyl-5H-pyrido[4,3-b]indole. Graded doses of these compounds were given to the animals by gavage twice with a 4-day interval, and the animals were terminated 3 wk later. All colon carcinogens induced aberrant crypts in a dose-related fashion. N-Nitrosodimethylamine and 3-amino-1-methyl-5H-pyrido[4,3-b]indole, carcinogenic compounds that do not induce colon cancer, did not induce them. The ability of the studied compounds to induce aberrant crypts was species specific; e.g., aflatoxin B1 and 2-amino-3,4-dimethylimidazo[4,5-P]quinoline induce about 20 times more in rats than mice. This relationship was consistent with their reported ability to induce colon cancer in these species. Results of the present study support the use of the aberrant crypt assays to screen colon-specific carcinogens and to study the process of colon carcinogenesis.

Animals↗

Inhibition of intestinal carcinogenesis in rats: effect of difluoromethylornithine with piroxicam or fish oil.

An inhibitor of ornithine decarboxylase, difluoromethylornithine (DFMO), and two inhibitors of prostaglandin biosynthesis, piroxicam and menhaden fish oil, were examined for their effect on intestinal tumorigenesis in male Sprague-Dawley rats fed a 5% fat semisynthetic diet. Each agent was given individually in one of two doses as follows: DFMO, 0.05% and 0.1% in the drinking water; piroxicam, 65 mg/kg diet and 130 mg/kg diet; and menhaden fish oil, 1.25% and 2.50% of the diet. Additional animal groups were given combinations of the lower dose of DFMO and the lower dose of either piroxicam or fish oil. Intestinal tumors were induced by sc injections of azoxymethane (AOM; CAS: 25843-45-2) at 8 mg/kg (body wt) weekly for 8 weeks. Test diets were started 1 week prior to the first dose of AOM, and the rats were sacrificed 26 weeks later. Rats that received either dose of DFMO or the high dose of piroxicam developed significantly fewer intestinal tumors compared to controls. The low dose of piroxicam and the fish oil given at either dose level had no effect. The combination of the low dose of DFMO and the low dose of piroxicam reduced tumor formation more than either dose of DFMO alone, whereas the low dose of DFMO and fish oil together was no more effective than either dose of DFMO alone. These results show that a combination of a small amount of DFMO and piroxicam, each acting through a different mechanism, exerts an additive inhibitory effect on intestinal tumor formation in rats.

Animals↗

Direct examination of the clonality of carcinogen-induced colonic epithelial dysplasia in chimeric mice.

The clonal composition of neoplastic foci was examined in histological sections of the colonic epithelium of azoxymethane (CAS: 25843-45-2)-treated CBA/Ca----C57BL/6J mouse aggregation chimeras, with the use of H-2 antigens as markers of cellular genotype. Each of 55 early neoplastic foci occurring at a mosaic patch boundary was composed of cells of a single genotype. Our results provide direct evidence that these foci arise from single crypts. In contrast, the epithelium of 5 of 17 larger adenomas was of mixed genotype: In 3, one genotype was represented only by a rim of cytologically normal epithelium derived from adjacent crypts, but in the other 2 the epithelium of both genotypes was dysplastic. One of these was probably a "collision" tumor arising from adjacent but independent foci; in the other, the minority component may have been derived from entrapped non-neoplastic crypts.

Animals↗

Mucinous colloid adenocarcinoma of colon in Fischer-344 rats. Light microscopy, histochemistry and ultrastructure.

Azoxymethane (AOM) induced mucinous colloid adenocarcinomas of the colon have been studied by light microscopy, histochemistry and transmission electron microscopy. This neoplasm constituted 2.6% of the induced carcinomas. Histogenetically they were formed directly from the flat mucosa without going through a benign polyp-cancer sequence. By light microscopy, the neoplasms were characterized by lakes of abundant extracellular mucin within which were cells often distended with intracellular mucin. Histochemically, this mucin was composed of a mixture of neutral and acidic mucopolysaccharide, the latter being predominantly sialomucin. Ultrastructurally, the cells exhibited a mixed differentiation. The majority of the cells were hyperdistended with mucin, resembling the goblet cells. Other cells contained abundant rough endoplasmic reticulum, free polysomes and very little intracellular mucin. There were a few endocrine cells as well as mucous cells with dense core granules. It seems that similar to the normal colon, the neoplastic colon also contains cells at various stages of differentiation. A hypothesis to explain these events in colon carcinogenesis is proposed.

Adenocarcinoma, Mucinous↗

Comparative studies of primary, metastatic and transplanted colon adenocarcinomas of Fischer 344 rats.

Morphological and histochemical characteristics of two sets of metastatic and transplanted adenocarcinomas were compared to those of the parent primary colon carcinomas induced by azoxymethane (8 mg/kg/week) in Fischer 344 rats. The histochemical features of the primary carcinomas and their respective metastatic and transplanted carcinomas were similar; however, there were marked morphological differences between these lesions. The primary adenocarcinomas were both well-differentiated glandular and mucinous colloid in type. Histochemically, both the types showed marked diminution of sulfomucin and increased sialomucin in the primary lesions as well as in the secondary sites. By light microscopy, the general histological pattern of the primary carcinoma was maintained by the secondary lesions. Compared to normal colon epithelia, the primary carcinoma showed mildly increased exfoliation of cells, and the transplanted carcinomas demonstrated profound exfoliation of epithelial cells in the glandular lumen, whereas the metastatic carcinomas showed moderate exfoliation. The three basic cell types of colon (undifferentiated cells, mucous cells and endocrine cells) were seen in variable proportions in the primary and secondary lesions with inconsistent pattern of cellular differentiation in the secondary lesions of the same primary. In the liver, intercellular junctions were seen between the metastatic carcinoma cells and the host hepatocytes indicating establishment of physical and probably biological communication between the metastatic cancer cells and the host cells.

Adenocarcinoma↗

Ornithine decarboxylase activity in the rat and human colon.

We have investigated the effect of age, a high-fat diet, sodium deoxycholate, and the ornithine analogue alpha-difluoromethylornithine on ornithine decarboxylase (ODC) activity in the rat colon. The relative levels of ODC activity were also determined in normal mucosa and tumor tissue from rat and human colon. The colonic ODC activity induced by intrarectal instillation of sodium deoxycholate in male Sprague-Dawley rats was highest in young animals, and it decreased with increasing age. A high level of dietary fat caused both an increased in basal colonic ODC activity and enhanced ODC induction by deoxycholate. alpha-Difluoromethylornithine given in drinking water inhibited, in a dose-dependent fashion, deoxycholate-induced ODC activity. The frequency of azoxymethane-induced intestinal tumors was also significantly reduced by alpha-difluoromethylornithine. Since colonic ODC activity is increased in carcinogenesis by known promoting agents and decreased by tumor inhibitors, this short-term assay may provide a useful system for identifying colon tumor promoters and inhibitors. The ODC activity in colon tumors of Sprague-Dawley rats was found to be significantly higher than in normal-appearing mucosa in the same animals. Similarly, ODC activity in human colon cancer was found to be higher than that of the normal-appearing mucosa in the same specimen. These results strengthen the utilization of the rat model for studies, the results of which may apply to the human situation.

Animals↗

Large intestinal carcinogenesis. III. Studies in low-incidence (Japanese) patients.

Recent studies have demonstrated that at the early stages of carcinogenesis of the large intestine(s) (LI), severely dilated crypt(s) (SDC) appear followed by atypical and/or neoplastic crypt(s) (ANC) and, subsequently, carcinomas. Thus both SDC and ANC appear to be premalignant changes and are probably initiated foci. Since the Japanese in Japan (JIJ) show a much lower rate of large intestinal carcinomas (LIC) compared to people in the Western Hemisphere, a study was designed to answer the question: Is the difference between the rates due to a difference in initiation or promotion? If the difference is due to less initiation, large intestinal epithelium of JIJ should contain fewer initiated foci. For testing this hypothesis, a retrospective histopathologic study was conducted on 100 LI of JIJ resected at the Cancer Institute, Tokyo, Japan, between 1977 and 1978, and mucosae remote from carcinomas were examined for SDC and ANC. In sharp contrast to a 100% incidence of SDC in the cases in the United States, only 1 of 100 LI of patients with LIC at the Cancer Institute demonstrated the presence of SDC. However, ANC was seen in 10 of 100 LI (10%), a figure comparable to that in the United States (7%). The extreme rarity of SDC in JIJ represents lesser initiation of that type. The presence of a comparable number of ANC in JIJ indicates that ANC is the predominant morphologic type of initiated foci in JIJ. This study suggests that not only promotional agents but also different initiating factors may be responsible for the difference in incidence and prevalence of LIC in the two populations. Comparative studies of parallel experimental animal models with the use of high and low doses of azoxymethane support this conclusion.

Adolescent↗

Colon epithelium. III. In vitro studies of colon carcinogenesis in Fischer 344 rats. N-methyl-N'-nitro-N-nitrosoguanidine-induced changes in colon epithelium in explant culture.

Colon explants from the inbred F344 rat descending colon pretreated in vivo with azoxymethane and maintained in explant culture were exposed to the carcinogen N-methyl-N'-nitro-N-nitrosoguanidine (MNNG). One week after the MNNG treatment, the colon crypts showed marked crowding, hypercellularity, and stratification of cells. Nine weeks after the treatment, the explants showed epithelial papillary projections on the surface epithelium and within the crypts, in addition to hypercellularity and stratification. The control untreated explants maintained a single layer of epithelium during the entire culture period. Ultrastructurally, the treated cells showed an unusual concentration of free polysomes and thin and thick filaments, multiple and bizarre nucleoli, nuclear indentations and pseudoinclusions, and intracellular lumina. Sulfomucin was the predominant component in the control untreated explants as well as in the normal descending colons of rats and humans. One week after treatment the crypts of the carcinogen-treated explants showed an increase in sialomucin, and by 9 weeks after treatment, they showed mostly sialomucin. These features, compared and correlated with those of the parallel in vivo animal model as well as with human material, lend additional support to de novo histogenesis of colon carcinoma.

Animals↗

Effect of inhibitors of tumorigenesis on the formation of O6-methylguanine in the colon of 1,2-dimethylhydrazine-treated rats.

The level of O6-methylguanine (O6MeGua) in the colonic DNA of rats treated with 1,2-dimethylhydrazine was determined. The effect of various tumorigenesis inhibitors on the formation of this modified base was also studied. Rats were given a single s.c. injection of 1,2-[14C]dimethylhydrazine. Six hr later, they were killed, and colonic DNA was extracted and analyzed by high-pressure liquid chromatography. The inhibitors tested were disulfiram (DSF), pyrazole, sodium selenite, butylated hydroxyanisole, butylated hydroxytoluene, potassium ascorbate, and 13-cis-retinoic acid. The level of O6MeGua in control rats was 29.9 [(O6MeGua X 10(6)/guanine)]. When rats were fed 0.25% (w/w) DSF, this value was reduced to 10.2, and at 0.5% DSF there was no detectable O6MeGua formed. Injection of pyrazole (40 mg/kg i.p.) 2 hr prior to 1,2-dimethylhydrazine treatment reduced the O6MeGua level to 2.4. All the other tumorigenesis inhibitors had no effect on either O6MeGua levels or the cpm/mg DNA in treated rats. With O6MeGua as a measure of the extent of initiation, these results confirm that DSF and pyrazole inhibit the initiation phase of carcinogenesis. This is to be expected as both have been shown to block the metabolism of azoxymethane, which is a crucial metabolite in the activation of 1,2-dimethylhydrazine. The other substances, all known tumorigenesis inhibitors, may act on the promotional phase of carcinogenesis and are worthy of further study for the role in cancer prevention.

Animals↗

Dietary fat, fiber, and carcinogen alter fecal diacylglycerol composition and mass.

Fecal diacylglycerols (DAGs) are known activators of protein kinase C (PKC), which in turn modulates colonic epithelial cell growth programs and, therefore, could play a role in the malignant transformation process. However, the effects of physiological modifiers such as diet and carcinogen on fecal DAG mass and composition have not been reported. We therefore designed a 2 x 2 x 2 factorial study (2 fats: corn oil and fish oil; 2 fibers: pectin and cellulose; with and without carcinogen). Rats were provided with diets for 5 weeks. Three weeks after the second injection of azoxymethane, feces were collected from 10 rats/treatment (n = 80 total) and analyzed for DAG mass and fatty acyl composition by combined TLC and gas chromatography. Dietary fat had a significant effect on the mol% fatty acyl composition of fecal DAG. Greater amounts of long chain n-3 polyunsaturated fatty acids (20:5n-3, 22:5n-3, and 22:6n-3) were detected in fecal DAG of fish oil-fed animals relative to corn oil (P < 0.001). In contrast, corn oil resulted in a higher mol % of 18:2n-6 relative to fish oil (P < 0.016). The most salient effect of fiber was on total production (nmol/day) of DAG, which was 2.5 times higher with cellulose than pectin supplementation. In addition, there was an effect of fiber on both mol % and concentration of 22:6n-3, with cellulose producing higher amounts relative to pectin (P < 0.04). A significant interaction between fat and fiber was observed with nmols of 17:0 excreted in 24 h, with fish oil/cellulose producing 94.2 nmol as compared to 3.5 seen with corn oil/pectin (P < 0.02). There was a significant interaction between fat and carcinogen on all of the DAG n-3 fatty acids, which were elevated with carcinogen/fish oil treatment. These data show that fat, fiber, and carcinogen can modulate the fatty acyl composition and mass of fecal DAG. Since the production of fecal DAG, an activator of PKC, may alter colonic mucosal cell proliferation, our data offer insight into a mechanism by which diet may modify the risk of colon cancer development.

Animals↗

[Influence of sodium butyrate intake on murine colonic carcinogenesis].

The role of short chain fatty acids (SCFA) in murine colonic carcinogenesis (MCC) has not yet been clarified. In rats, Freeman et al have reported an increased number of colonic tumors induced with dimethylhydrazine (DMH) and sodium butyrate in drinking water. On the other hand, Deschner et al showed that tributyrin intake did not increase MCC induced with azoxymethane. Both of them have reported high levels of fecal butyric acid with sodium butyrate and tributyrin intake. Although salt intake has been positively associated with colorectal cancer some authors do not support this association. We have evaluated the influence of right hemicolectomy (RH) (right colon as main source of SCFA) and the intake of 2%-pH 7 sodium butyrate (S.BUT) and 4 g/l sodium chloride (S.CHL) in drinking water, in MCC. Forty eight male Wistar rats weighing 150 g were divided into 4 groups: RH, S.BUT, S.CHL, control (C). Half of the animals received weekly DMH 20 mg/kg subcutaneously for 12 weeks. Necropsy was performed after 6 months. We have determined fecal SCFA content by gas chromatography. Neoplasm was present in 70% of rats treated with DMH. The number of animals with tumors was: RH 4/6, S.BUT 4/6, S.CHL 3/5, C 6/6. Tumor frequency was: RH 1.17 +/- 0.48, S.BUT 1.50 +/- 0.76, S.CHL 1.20 +/- 0.49, C 1.50 +/- 0.22. S.BUT group, treated with DMH, presented a lower butyric acid concentration (p < 0.05) in comparison with other groups. We have no explanation for this finding; gastric absorption of sodium butyrate may be an important factor.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Modulating effect of amount and types of dietary fat on colonic mucosal phospholipase A2, phosphatidylinositol-specific phospholipase C activities, and cyclooxygenase metabolite formation during different stages of colon tumor promotion in male F344 rats.

Epidemiological and laboratory animal model studies suggest that the effect of dietary fat in colon carcinogenesis depends not only on the amount but on its fatty acid composition. Animal model studies demonstrated that high dietary corn oil or safflower oil rich in omega-6 fatty acids increased the colon tumor promotion, whereas diets containing fish oil high in omega-3 fatty acids had no such enhancing effect. One of the mechanisms by which high dietary fat enhances colon carcinogenesis may be through the modulation of colonic mucosal phospholipase A2 (PLA2) and phosphatidylinositol-specific phospholipase C (PI-PLC), which are dominant pathways for arachidonic acid release and formation of eicosanoids. PI-PLC is also responsible for diacylglycerol formation and protein kinase C-dependent signal transduction and cell proliferation. In the present study, we investigated the modulating effect of high fat diets rich in omega-3 and omega-6 fatty acids on colonic mucosal PLA2, PI-PLC activities, and eicosanoid (prostaglandins and thromboxane B2) formation from arachidonic acid via cyclooxygenase (COX) during different stages of azoxymethane (AOM)-induced colon carcinogenesis in male F344 rats. At 5 weeks of age, groups of animals were fed the low-fat diet containing 5% corn oil. Beginning at 7 weeks of age, all animals except those intended for vehicle treatment received AOM s.c. once weekly for 2 weeks at a dose rate of 15 mg/kg body weight. Vehicle-treated groups received an equal volume of normal saline. One day after the second AOM or vehicle treatment, groups of animals were transferred to experimental diets containing 23.5% corn oil and 20.5% fish oil + 3% corn oil, whereas one group continued on the low-fat diet containing 5% corn oil. Groups of animals were then sacrificed at weeks 1, 12, and 36 after the second AOM-or saline-treatment. Colonic mucosa harvested at weeks 1, 12, and 36 and colonic tumors obtained at week 36 were analyzed for PLA2, PI-PLC, and eicosanoid formation from arachidonic acid by the action of COX. The results demonstrate that colon carcinogen treatment increases the activities of colonic mucosal PLA2 and PI-PLC and the formation of prostaglandins and thromboxane A2 from arachidonic acid through COX throughout the study period compared to saline-treated animals fed similar diets. The activities of PLA2, PI-PLC, and COX were significantly higher in colon tumors compared to colonic mucosa. These results also demonstrate that a high-fat diet containing corn oil increases colonic mucosal and tumor PLA2 and PI-PLC and the formation of prostaglandins and thromboxane B2 by the action of COX as compared to low dietary corn oil or a diet high in fish oil. The results of our study offer one of the mechanisms by which the amount and types of dietary fat modulate colon carcinogenesis.

Animals↗

Gal-GalNAc: a biomarker of colon carcinogenesis.

The disaccharide tumor marker Gal-GalNAc visualized by galactose oxidase-Schiff sequence is commonly present in cancer cells and in rectal mucous of patients with colon cancer. The expression of this marker on tissue sections taken during experimental colon carcinogenesis shows excellent correlation with human precancerous lesions and even higher percentage of colon cancers express this marker, whereas, no expression is seen in the normal human large intestine. Multifocal expression of the marker is seen throughout the entire colon of patients with precancer and cancer; these include dysplasia, dilated and distorted crypts, regenerative dysplasia and hyperplastic crypts, as well as the morphologically normal crypts remote from cancer. Nearly identical pattern of Gal-GalNAc expression throughout the entire colon also appear during rat colon carcinogenesis induced by azoxymethane including non-expression by the normal and regenerative epithelia during wound healing following mechanical injury. Thus, Gal-GalNAc detected by the simple technique of galactose oxidase-Schiff sequence, is a biomarker that appears during the very early stages of progression of carcinogenesis. The expression pattern supports the field effect theory of carcinogenesis and also explains the basis for mass screening for cancer and precancerous conditions. Chemoprevention strategy using Gal-GalNAc as an intermediate marker detected by accurate and cost-effective rectal mucus test may have great potential.

Adenoma↗

Inhibitory effects of curcumin on tumorigenesis in mice.

Curcumin (diferuloylmethane), the naturally occurring yellow pigment in turmeric and curry, is isolated from the rhizomes of the plant Curcuma longa Linn. Curcumin inhibits tumorigenesis during both initiation and promotion (post-initiation) periods in several experimental animal models. Topical application of curcumin inhibits benzo[a]pyrene (B[a]P)-mediated formation of DNA-B[a]P adducts in the epidermis. It also reduces 12-O-tetradecanoylphorbol-13-acetate (TPA)-induced increases in skin inflammation, epidermal DNA synthesis, ornithine decarboxylase (ODC) mRNA level, ODC activity, hyperplasia, formation of c-Fos, and c-Jun proteins, hydrogen peroxide, and the oxidized DNA base 5-hydroxymethyl-2'-deoxyuridine (HmdU). Topical application of curcumin inhibits TPA-induced increases in the percent of epidermal cells in synthetic (S) phase of the cell cycle. Curcumin is a strong inhibitor of arachidonic acid-induced edema of mouse ears in vivo and epidermal cyclooxygenase and lipoxygenase activities in vitro. Commercial curcumin isolated from the rhizome of the plant Curcuma longa Linn contains 3 major curcuminoids (approximately 77% curcumin, 17% demethoxycurcumin, and 3% bisdemethoxycurcumin). Commercial curcumin, pure curcumin, and demethoxycurcumin are about equipotent as inhibitors of TPA-induced tumor promotion in mouse skin, whereas bisdemethoxycurcumin is somewhat less active. Topical application of curcumin inhibits tumor initiation by B[a]P and tumor promotion by TPA in mouse skin. Dietary curcumin (commercial grade) inhibits B[a]P-induced forestomach carcinogenesis, N-ethyl-N'-nitro-N-nitrosoguanidine (ENNG)-induced duodenal carcinogenesis, and azoxymethane (AOM)-induced colon carcinogenesis. Dietary curcumin had little or no effect on 4-(methylnitosamino)-1-(3-pyridyl)-1-butanone (NNK)-induced lung carcinogenesis and 7,12-dimethylbenz[a]anthracene (DMBA)-induced breast carcinogenesis in mice. Poor circulating bioavailability of curcumin may account for the lack of lung and breast carcinogenesis inhibition.

Administration, Oral↗

Chemoprevention by naturally occurring and synthetic agents in oral, liver, and large bowel carcinogenesis.

A number of naturally occurring compounds and several related synthetic agents were confirmed to exert chemopreventive properties against carcinogenesis in the digestive organs. Phenolic compounds, widely distributed as plant constituents, possess chemopreventive activities in tongue, liver, and large bowel of rodents. Of them, a simple phenolic protocatechuic acid seems to be a promising compound. Organosulfur compounds contained in the cruciferous vegetables and known to activate detoxifying enzymes are regarded as a candidate group for cancer preventive agents. We proved a strong protective effect of S-methylmethanethiosulfonate, a constituent in these vegetables, on azoxymethane (AOM)-induced large bowel carcinogenesis. Some oxygenated carotenoids (xanthophylls) are reported to have antitumor effects. Naturally occurring xanthophylls astaxanthin and canthaxanthin have considerable preventive activities on 4-nitroquinoline-1-oxide (4-NQO)-induced tongue carcinogenesis and AOM-induced large bowel carcinogenesis. A novel synthesized retinoidal butenolide, KYN-54, which suppresses large bowel as well as tongue carcinogenesis could be a useful agent for prevention of digestive organ cancers. Some trace elements are known to have anticarcinogenic effects. Magnesium hydroxide, a protective agent in colorectal carcinogenesis, inhibits c-myc expression and ornithine decarboxylase activity in the mucosal epithelium of the intestine. Our results show that many agents with preventive effects in tongue, liver, and large bowel control carcinogen-induced hyperproliferation of cells in these organs. Carcinogens used to induce large bowel cancers also induce apoptosis in the target sites. Telomerase activity is increased in the tissues of preneoplastic as well as neoplastic lesions in experimental models such as dimethylbenz[a]anthracene-induced oral carcinogenesis in hamsters. These could be useful biomarkers in studies for cancer chemoprevention.

Animals↗

Inhibition of aberrant crypt foci by chemopreventive agents.

The colon carcinogenic process is believed to begin with both genetic and morphological alterations in a few individual crypts. These select crypts, called aberrant crypt foci (ACF), are widely agreed upon as precursors of colon cancer. The ACF assay involves testing potential chemopreventive agents by counting the number of ACF in a carcinogen-treated colon. This assay has the advantage of not only being less expensive and time-consuming than tumor-producing studies, but will also allow the elucidation of the colon carcinogenic process by letting the researcher explore the changes that occur at a pre-cancerous stage. The ACF assay has been used most frequently in rodent models. In the rodent colon, ACF are easy to distinguish due to their distinct morphological, histological, and biological characteristics. In addition, the ACF assay has been used to look at specific genetic alterations in the crypts such as K-ras, p53, and APC mutations. Our laboratory has consistently used the ACF assay to test many potential chemopreventive agents using rats induced by the colon carcinogen azoxymethane (AOM). Potential chemopreventive agents have been tested in both the initiation or the post-initiation period Research supports the notion that aberrant crypt foci represent a true neoplastic lesion for colon cancer. By studying these lesions both grossly and genetically it may be possible to learn more about the causes of colon carcinogenesis. In addition, by testing new compounds through the ACF assay, it is possible not only to discover potentially new chemopreventive compounds, but also to discover the mechanisms behind them. Because of this, the ACF assay is an invaluable method that will help reveal the process of colon carcinogenesis.

Animals↗

Citrus auraptene exerts dose-dependent chemopreventive activity in rat large bowel tumorigenesis: the inhibition correlates with suppression of cell proliferation and lipid peroxidation and with induction of phase II drug-metabolizing enzymes.

In our previous short-term experiment, Citrus auraptene inhibited the development of azoxymethane (AOM)-induced aberrant crypt foci, which are precursor lesions for colorectal carcinoma. In the present study, the possible inhibitory effect of dietary administration of auraptene was investigated using an animal colon carcinogenesis model with a colon carcinogen AOM. Male F344 rats were given s.c. injections of AOM (15 mg/kg body weight) once a week for 3 weeks to induce colon neoplasms. They also received diets containing 100 or 500 ppm auraptene for 4 weeks in groups of "initiation" feeding, starting 1 week before the first dosing of AOM. The diets containing auraptene were also given to rats for 38 weeks in groups of "postinitiation" feeding. At the termination of the study (38 weeks), dietary administration of auraptene caused dose-dependent inhibition in AOM-induced large bowel carcinogenesis. Auraptene feeding during the initiation phase reduced the incidence of colon adenocarcinoma by 49% at 100 ppm (P = 0.099) and 65% at 500 ppm (P = 0.0075). Auraptene administration during the postinitiation phase inhibited the incidence of colon adenocarcinoma by 58% at 100 ppm (P = 0.021) and 65% at 500 ppm (P = 0.0075). Also, the multiplicity of colon carcinoma was significantly reduced by initiation feeding at a dose level of 500 ppm (P < 0.01) and postinitiation feeding at a level of 100 and 500 ppm (P < 0.05 and P < 0.01, respectively). Feeding of auraptene suppressed the expression of cell proliferation biomarkers (ornithine decarboxylase activity and polyamine content) in the colonic mucosa and reduced the production of aldehydic lipid peroxidation [malondialdehyde and 4-hydroxy-2(E)-nonenal]. In addition, auraptene increased the activities of Phase II drug-metabolizing enzymes (glutathione S-transferase and quinone reductase) in the liver and colon. These findings suggest that the inhibitory effects of auraptene on AOM-induced colon tumorigenesis at the initiation level might be associated, in part, with increased activity of Phase II enzymes, and those at the postinitiation stage might be related to suppression of cell proliferation and lipid peroxidation in the colonic mucosa.

Aldehydes↗

Chemopreventive effect of curcumin, a naturally occurring anti-inflammatory agent, during the promotion/progression stages of colon cancer.

Curcumin, derived from the rhizome of Curcuma longa L. and having both antioxidant and anti-inflammatory properties, inhibits chemically induced carcinogenesis in the skin, forestomach, and colon when it is administered during initiation and/or postinitiation stages. This study was designed to investigate the chemopreventive action of curcumin when it is administered (late in the premalignant stage) during the promotion/progression stage of colon carcinogenesis in male F344 rats. We also studied the modulating effect of this agent on apoptosis in the tumors. At 5 weeks of age, groups of male F344 rats were fed a control diet containing no curcumin and an experimental AIN-76A diet with 0.2% synthetically derived curcumin (purity, 99.9%). At 7 and 8 weeks of age, rats intended for carcinogen treatment were given s.c. injections of azoxymethane (AOM) at a dose rate of 15 mg/kg body weight per week. Animals destined for the promotion/progression study received the AIN-76A control diet for 14 weeks after the second AOM treatment and were then switched to diets containing 0.2 and 0.6% curcumin. Premalignant lesions in the colon would have developed by week 14 following AOM treatment. They continued to receive their respective diets until 52 weeks after carcinogen treatment and were then sacrificed. The results confirmed our earlier study in that administration of 0.2% curcumin during both the initiation and postinitiation periods significantly inhibited colon tumorigenesis. In addition, administration of 0.2% and of 0.6% of the synthetic curcumin in the diet during the promotion/progression stage significantly suppressed the incidence and multiplicity of noninvasive adenocarcinomas and also strongly inhibited the multiplicity of invasive adenocarcinomas of the colon. The inhibition of adenocarcinomas of the colon was, in fact, dose dependent. Administration of curcumin to the rats during the initiation and postinitiation stages and throughout the promotion/progression stage increased apoptosis in the colon tumors as compared to colon tumors in the groups receiving AOM and the control diet. Thus, chemopreventive activity of curcumin is observed when it is administered prior to, during, and after carcinogen treatment as well as when it is given only during the promotion/progression phase (starting late in premalignant stage) of colon carcinogenesis.

Animals↗