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Assay for mutagenicity of bile in Sprague-Dawley rats treated subcutaneously with intestinal carcinogens.

To investigate the mode of action of sc injected intestinal carcinogens, the mutagenicity assay of bile collected from noninbred Sprague-Dawley rats treated sc with carcinogens was conducted in the presence and absence of beta-glucuronidase. The bile samples from rats inoculated with 4-aminobiphenyl were mutagenic for Salmonella typhimurium TA100 only in the presence of beta-glucuronidase, whereas those from the 3,2'-dimethyl-4-aminobiphenyl-treated rats did not require the enzyme for mutagenicity toward strain TA100. On the contrary, the assays with S. typhimurium G46 and TA100 of bile from rats inoculated with 1,2-dimethylhydrazine, azoxymethane, or methylazoxymethanol acetate failed to reveal mutagenicity whether beta-glucuronidase was added or not, though these carcinogens were highly mutagenic for strain G46 in the Salmonella-microsome mutagenicity test and/or in the host-mediated assay.

Animals↗

Animal studies implicating fat and fecal steroids in intestinal cancer.

There is epidemiological and experimental evidenced that the ingestion of excessive amounts of fat enhances intestinal cancer formation. This may be due to the interaction of luminal steroids with the bacterial flora in the colon, forming carcinogens or promoting agents. Increased fecal steroids induced by drugs, diet, or by mechanical means enhance intestinal tumor formation in rats given injections of azoxymethane. The effect appears to be promotional rather than initiative. Dietary fiber inhibits carcinogenesis only when the fat content of the diet is not excessive. Apparently, a quantitative relationship exists between these two dietary elements that further studies may define for prevention of cancer in humans.

Animals↗

Effect of dietary protein concentration on yield of mutagenic metabolites from 1,2-dimethylhydrazine in mice.

The effects of varying dietary protein concentrations on the metabolism of 1,2-dimethylhydrazine (DMH) to mutagenic products by male C57BL/6 X C3H F mice were assayed by in vivo and in vitro methods. DMH and its metabolite, azoxymethane (AOM), did not increase the mutation frequency of Salmonella typhimurium (strain G-46) in vitro alone or in the presence of mouse liver homogenates capable of activating the promutagen dimethylnitrosamine. Methylazoxymethanol (MAM), another metabolite of DMH, was mutagenic in vitro without activation. S.c. administration of DMH, AOM, or MAM at dosages ranging from 0.2 to 0.8 mmol/kg of body weight caused dose-dependent increases in mutations of S. typhimurium in the host-mediated assay, and molar potencies increased progressively from DMH to AOM to MAM. S.c. or i.p. injections of AOM increased host-mediated mutagenesis within 20 min, while increases in mutagenesis by DMH required at least 1 hr. When [14C]DMH was administered, [14C]azomethane was expired immediately, while 14CO2 began to appear 1 hr after DMH administration. The percentage of administered [14C]DMH expired as azomethane varied inversely with dietary protein concentration, while AOM-induced host-mediated mutagenesis was directly proportional to dietary protein (p less than 0.01). The percentage of DMH converted to mutagenic end products was limited by losses of the volatile metabolite azomethane, especially in protein-deficient mice. Greater expiration of azomethane and decreased conversion of AOM to MAM, both seen with restriction of dietary protein, were associated with a smaller body burden of DMH metabolites.

1,2-Dimethylhydrazine↗

Large intestinal carcinogenesis. I. Promotional effect of dietary fatty acid isomers in the rat model.

For evaluation of the promotional effects of dietary trans-fatty acids on large intestinal carcinogenesis, 120 inbred female F344 rats were divided into 6 groups and fed a 25% elaidic acid diet, a 25% oleic acid diet, or a regular (4.5% fat) chow diet. Ninety animals, 30 per dietary group, received weekly im injections of azoxymethane (2 mg/kg; CAS: 25843-45-2). None of the 30 saline-injected control animals, 10 per dietary group, fed any of the three diets developed tumors. There were twice as many animals with adenocarcinoma of the large intestine from the trans-fatty acid diet group as compared with either the cis-fatty acid diet group or regular diet groups. Chi-square analysis showed that the difference between the incidence of large intestinal carcinomas was not significant between the cis- and trans-fatty acid diets. The difference between the regular diet and trans-fatty acid diet groups was not significant at the 5% level (P = .08). A higher, but nonstatistically significant, incidence of nephroblastomas and squamous ear duct neoplasms was also observed in carcinogen-treated animals maintained on each of the high-fat diets as compared with the incidence of both in treated animals fed the regular chow diet.

Animals↗

The relationship between intestinal hyperplasia and carcinogenesis.

Conditions that potentiate colorectal carcinogenesis have in common the ability to increase cell proliferation in colonic crypts. Since compensatory hyperplasia of the shortened gut involves large bowel as well as small bowel, postoperative adaptation might promote the development of bowel cancer. This hypothesis was tested in Sprague-Dawley or Fischer rats given parenteral azoxymethane (50-160 mg/kg). Resection and bypass of a third or more of the small intestine consistently enhance colorectal carcinogenesis; so does pancreatobiliary diversion to mid small bowel. Partial colectomy has little effect on adaptation or carcinogenesis, but colonic defunction reduces mucosal mass and tumour yields. Bile acids are cocarcinogenic when instilled per rectum but not in colon sequestered as a Thiry-Vella fistula. Most intestinal anastomoses and stomas are favoured sites for tumour development. Postoperative hyperplasia plays a cocarcinogenic role in this experimental model. Patients with operations such as ileal resection and jejunoileal bypass should be screened for evidence of hyperplasia or dysplasia in the large intestine.

Animals↗

Androgens as promoters of colon carcinogenesis.

The effects of androgens on colon carcinogenesis were studied in 90 male Fisher-344 rats, given 10 weekly subcutaneous (SC) injections of 7.5 mg azoxymethane (AOM)/kg body weight, starting at 12 weeks of age. Thirty rats received the AOM course only (AOM only). Thirty rats were gonadectomized at 10 weeks of age and underwent the AOM course (castrated). In 30 additional castrated rats, hormone substitution was achieved by sc injection of 1 mg dehydrotestosterone (DHT) three times a week for 12 weeks. AOM was given concommitantly, starting at 12 weeks of age (castrated and hormone substituted). Animals were sacrificed 25 weeks after first AOM injection. As assessed by weekly body weight data and periodic serum determinations of carcinoembryonic antigen (CEA), castrated animals showed a delayed onset of colonic carcinogenesis, compared to AOM-only-treated and hormone-substituted animals. Castration resulted in a decrease of mean tumor size as well as overall incidence of colonic tumors, compared to that observed AOM-only and castrated and hormone-substituted group, respectively (27 vs 47 vs 53%). Castration also resulted in lower mean serum CEA levels at the end of experiment than in the AOM-only and castrated and hormone-substituted group. These findings suggest a promoting effect of androgens in colon carcinogenesis.

Androgens↗

The effect of bile acids and piroxicam on MHC antigen expression in rat colonocytes during colon cancer development.

The effect of bile acids and piroxicam on the expression of major histocompatibility complex (MHC) antigens in colonocytes was evaluated in rats treated with the colonic carcinogen azoxymethane (AOM). Male Fischer-344 rats were fed a basal diet (AIN-76) supplemented with 0.4% cholic acid, 0.4% ursodeoxycholic acid, 0.2% ursodeoxycholic acid plus 0.2% cholic acid, or 75 p.p.m. piroxicam. Rats were injected subcutaneously once a week for 2 weeks with AOM (15 mg/kg body weight/week) or vehicle, after being fed their respective diets for two weeks. The rats were killed at 16 weeks, while parallel identical groups of rats were killed at 28 weeks, and colon tumours were counted. None of the rats treated with AOM-vehicle developed tumours at 28 weeks, while in the AOM-treated rats the frequency of colonic tumours was as follows: AOM alone 50%, cholic acid 74%, ursodeoxycholic acid 17%, piroxicam 28%, ursodeoxycholic plus cholic acid 46%. The expression of RT1A, RT1B and RT1D was determined in isolated colonocytes by immune fluocytometry. Normal rat colonocytes express all three MHC antigens strongly. Neither the bile acids nor piroxicam affected MHC antigen expression in AOM-vehicle-treated rats. AOM did not effect MHC antigen expression compared to normal controls. Cholic acid had no significant effect on the expression of MHC antigens in AOM-treated rats. Ursodeoxycholic acid alone or in combination with cholic acid increased the expression of RT1A compared to normal controls, of RT1B compared to AOM-treated rats, and of RT1D compared to controls or AOM-treated rats. Piroxicam increased the expression of all three antigens compared to either control or AOM-treated rats. These findings indicate that (1) ursodeoxycholic acid and piroxicam up-regulate colonic MHC antigen expression in the AOM model of colonic carcinogenesis; (2) the colon of rats exposed to AOM responds differently than the normal colon with respect to MHC regulation; and (3) the protective effect of ursodeoxycholic acid and piroxicam on colon tumour formation seems to be paralleled by an increase in MHC antigen expression.

Animals↗

Evaluation of organoselenium compounds for potential chemopreventive properties in colon carcinogenesis.

As a part of a program aimed to develop less toxic and more effective chemopreventive organoselenium compounds than inorganic selenium, we have evaluated benzyl selenocyanate (BSC) and its o-, m-, p-nitro and -methoxy isomers, o-, m-, and p-isomers of phenylenebis(methylene)selenocyanate (XSC), dibenzyl diselenide (DDS), and 2,2'-diselenobis[((N,N-dimethylamino)methyl)- benzene]bis(hydrochloride salt) (DSBDB) for their potential colon tumor inhibitory properties using azoxymethane (AOM)-induced colonic aberrant crypt foci (ACF), a preneoplastic lesion, in male F344 rats prior to preclinical efficacy study. In the first experiment, the effect of these agents administered during initiation and postinitiation periods of carcinogenesis was investigated. Male F344 rats were fed diets containing 8 ppm Na2SeO3 or 10 ppm of each BSC and its analogues, DDS and DSBDB or 20 ppm of each XSC analogue, two weeks prior to AOM (15 mg/kg body wt., once weekly for two weeks, s.c.) administration and during and until 8 weeks after AOM treatment. Formalin-fixed and methylene blue stained colons were scored for AOM-induced ACF using the light microscope. Taking body weight gains and multiplicity of 4 or more AC/focus, the inhibitory effects of Na2SeO3, o-, m- and p-methoxy-BSC, p-XSC and DDS were much greater than those of the other selenium compounds. In the second study, the effects of these agents when administered during the initiation or postinitiation periods were investigated. The results indicated that o-, m-, and p-methoxy-BSC, DDS and p-XSC significantly inhibited crypt multiplicity during the initiation period whereas o-, and p-methoxy-BSC, p-XSC and DDS suppressed crypt multiplicity during the postinitiation period. It is concluded that o-, and p-methoxy-BSC, p-XSC and DDS possess potential chemopreventive properties in colon cancer. Further studies are warranted to evaluated these agents for chemopreventive properties in preclinical efficacy studies.

Animals↗

Modulation of aberrant crypt foci by dietary fat and caloric restriction: the effects of delayed intervention.

Recent investigations have established that caloric restriction (CR) reduces end tumor incidence in the rat colon. The present study was conducted to determine whether CR at the level of 20% of the ad libitum (AL) intake and dietary fat would alter the growth of intermediate preneoplastic colonic aberrant crypt foci (ACF). F344 rats were given injections of 15mg/kg azoxymethane, fed AL for 11 weeks, and then allocated to 1 of 4 dietary groups (n-20/group): high fat (23% w/w) or low fat (5% w/w) AL (HFAL, LFAL), or high fat or low fat CR (HFCR, LFCR). After 4 weeks only the HFAL and HFCR groups had identifiable adenomas with incidences of 50 and 30%, respectively. There was a significant positive correlation between total fat consumed/day (grams) and the number of ACF with 4-6 crypts focus. After 12 weeks of feeding, the total number of ACF was lower (P < or = 0.05) in the CR groups relative to the AL groups in both the high and low fat diets. The number of ACF with 4-6 crypts/focus and > 6 crypts/focus were lower in the LFCR group compared to the LFAL group, whereas the number of ACF with 1-3 crypts/focus was lower in the HFCR group compared to the HFAL group. CR was the main variable affecting the number and growth of ACF at week 12. Positive correlations were demonstrated between increased mean daily intake of energy and the number of total ACF/colon, ACF with 4-6 crypts/focus, and ACF with > 7 crypts/focus at week 12. Cell proliferation indices did not correlate with ACF or tumor incidence data. These findings demonstrated that (a) dietary fat affects tissue growth characteristics more rapidly than CR, (b) CR alters the development of ACF depending on the level of fat and experimental duration, and (c) ACF with varying growth features respond differently to CR and dietary fat. These findings also suggest that subtle dietary manipulations in fat and caloric content used at the later stages of colon carcinogenesis can modulate tumor development.

Adenocarcinoma↗

Inhibitory effects of dietary curcumin on forestomach, duodenal, and colon carcinogenesis in mice.

Curcumin (diferuloylmethane), a yellow pigment that is obtained from the rhizomes of Curcuma longa Linn., is a major component of turmeric and is commonly used as a spice and food-coloring agent. The inhibitory effects of feeding commercial grade curcumin (77% curcumin, 17% demethoxycurcumin, and 3% bisdemethoxycurcumin) in AIN 76A diet on carcinogen-induced tumorigenesis in the forestomach, duodenum, and colon of mice were evaluated. Administration p.o. of commercial grade curcumin in the diet inhibited benzo(a)pyrene-induced forestomach tumorigenesis in A/J mice, N-ethyl-N'-nitro-N-nitrosoguanidine-induced duodenal tumorigenesis in C57BL/6 mice, and azoxymethane (AOM)-induced colon tumorigenesis in CF-1 mice. Dietary commercial grade curcumin was given to mice at: (a) 2 weeks before, during, and for 1 week after carcinogen administration (during the initiation period); (b) 1 week after carcinogen treatment until the end of the experiment (during the postinitiation period); or (c) during both the initiation and postinitiation periods. Feeding 0.5-2.0% commercial grade curcumin in the diet decreased the number of benzo(a)pyrene-induced forestomach tumors per mouse by 51-53% when administered during the initiation period and 47-67% when administered during the postinitiation period. Feeding 0.5-2.0% commercial grade curcumin in the diet decreased the number of N-ethyl-N'-nitro-N-nitrosoguanidine-induced duodenal tumors per mouse by 47-77% when administered during the postinitiation period. Administration of 0.5-4.0% commercial grade curcumin in the diet both during the initiation and postinitation periods decreased the number of AOM-induced colon tumors per mouse by 51-62%. Administration of 2% commercial grade curcumin in the diet inhibited the number of AOM-induced colon tumors per mouse by 66% when fed during the initiation period and 25% when fed during the postinitiation period. The ability of commercial grade curcumin to inhibit AOM-induced colon tumorigenesis is comparable to that of pure curcumin (purity greater than 98%). Administration of pure or commercial grade curcumin in the diet to AOM-treated mice resulted in development of colon tumors which were generally smaller in number and size as compared to the control group of AOM-treated mice. These results indicate that not only did curcumin inhibit the number of tumors per mouse and the percentage of mice with tumors but it also reduced tumor size. Histopathological examination of the tumors showed that dietary curcumin inhibited the number of papillomas and squamous cell carcinomas of the forestomach as well as the number of adenomas and adenocarcinomas of the duodenum and colon.

Adenocarcinoma↗

Immunohistochemical demonstration of mutant p53 tumour suppressor gene product in aberrant crypt foci.

Mutation of the p53 gene is the most common genetic change accompanying the sequential development of colon cancer, but it has not been studied in the early stages of colon cancer particularly at the single and multiple crypt levels. The expression of the mutant p53 gene product in aberrant crypt foci and in adenocarcinomas induced by azoxymethane was investigated immunohistochemically, using the rat model system. Aberrant crypt foci, which may be the premalignant lesions of colon cancer, are one of the earliest recognizable lesions evident in the stepwise development of colon carcinogenesis. Immunohistochemistry was performed with three mouse monoclonal antibodies to p53 proteins. These antibodies included PAB1620 specific for the wild-type p53 protein, PAB240 specific for the mutant p53 protein and PAB421 specific for both the wild-type and mutant p53 proteins. Positive reactivity with PAB240 and PAB421 was observed in 27 of 65 (42%) aberrant crypt foci and in six of eight (75%) adenocarcinomas. No reactivity with these antibodies was present in normal adjacent crypts and in colons from untreated animals. Immunohistochemical staining with PAB240 and PAB421 was present mainly in the cytoplasm and occasionally in the nucleus of cells. This is consistent with the known preferential location of the mutant p53 protein. In adenocarcinomas, uniform staining was present throughout the tissue. Reactivity with PAB1620 in premalignant and malignant tissue was not observed. The results indicate that a p53 gene mutation occurs in aberrant crypt foci as an early genetic event in colon carcinogenesis.

Adenocarcinoma↗

Chemoprevention of colon carcinogenesis by organosulfur compounds.

It has been reported that several naturally occurring and related synthetic organosulfur compounds exert chemopreventive effects in several target organs in rodent models. The chemopreventive actions of 40 and 80% maximum tolerated doses (MTD) of organosulfur compounds, namely anethole trithione, diallyl disulfide, N-acetylcysteine, and taurine, administered in AIN-76A diet, on azoxymethane (AOM)-induced neoplasia were investigated in male F344 rats. Also, the effects of these agents on the activities of phase II enzymes, namely glutathione S-transferase (GST), NAD(P)H-dependent quinone reductase, and UDP-glucuronosyl transferase, in the liver and colonic mucosa and tumors were assessed. The MTD levels of anethole trithione, diallyl disulfide, N-acetylcysteine, and taurine were determined in male F344 rats and found to be 250, 250, 1500, and 1500 ppm, respectively. At 5 weeks of age, animals were fed the control diet (AIN-76A) or experimental diets containing 40 or 80% MTD levels of each test agent. All animals in each group, except those allotted for vehicle (saline) treatment, were administered AOM s.c. at a dose rate of 15 mg/kg body weight once weekly for 2 weeks. All animals were necropsied during week 52 after the second AOM injection. Colonic mucosal and tumor and liver enzyme activities were measured in animals fed 80% MTD levels of each test agent. Colon tumors were subjected to histopathological evaluation and classified as invasive or noninvasive adenocarcinomas. Colon tumor incidence (percentage of animals with tumors) and tumor multiplicity (tumors/animal) were compared among various dietary groups. The results indicated that administration of 200 ppm (80% MTD) anethole trithione significantly inhibited the incidence and multiplicity of both invasive and noninvasive adenocarcinomas, whereas feeding of 100 ppm (40% MTD) anethole trithione or 100 (40% MTD) or 200 ppm (80% MTD) diallyl disulfide suppressed only invasive adenocarcinomas of the colon. Although diets containing N-acetylcysteine and taurine inhibited colon tumor multiplicity, the effect was somewhat marginal. GST, NAD-(P)H-dependent quinone reductase, and UDP-glucuronosyl transferase activities in colonic mucosa and tumor and liver were significantly elevated in animals fed anethole trithione or diallyl disulfide, compared to those fed the control diet. N-Acetylcysteine and taurine slightly but significantly increased only the GST activity in the liver. Although other mechanisms are not excluded, inhibition of AOM-induced colon carcinogenesis by anethole trithione and diallyl disulfide may be associated, in part, with increased activities of phase II enzymes such as GST, NAD(P)H-dependent quinone reductase, and UDP-glucuronosyl transferase in the liver and colon.

Acetylcysteine↗

Chemoprevention of colon carcinogenesis by the natural product of a simple phenolic compound protocatechuic acid: suppressing effects on tumor development and biomarkers expression of colon tumorigenesis.

Our previous study has shown that dietary administration of protocatechuic acid (PCA) acts as potential chemopreventive agent in inhibiting diethylnitrosamine-induced liver carcinogenesis in male F344 rats. The present study was designed to determine the modifying effect of PCA on azoxymethane (AOM)-induced colon carcinogenesis in male F344 rats and the effect on intermediate biomarkers, i.e., colonic mucosal ornithine decarboxylase activity and colonic epithelial proliferation, which can be used as effective predictors of colon cancer. Staring at 6 weeks of age, groups of animals were fed the basal diet and experimental diet containing PCA at dose levels of 250, 500, and 1000 ppm. At 7 weeks of age, all animals except the PCA alone group (1000 ppm) and untreated controls were given s.c. injections of AOM at a dose level of 15 mg/kg body weight/week for 3 weeks. PCA at 3 doses was fed during the initiation phase (before 1 week, during, and after 1 week of AOM exposure) or postinitiation phase (for 28 weeks starting 1 week after the last injection of AOM). All animals were then killed at 32 weeks after the start and colonic tumor incidence and multiplicity were determined. Animals intended for cell proliferation study were given injections of bromodeoxyuridine/5-fluoro-2'-deoxyuridine (1 ml/100 g body weight) 1 h prior to be killing. The rate of colonic cell proliferation in the distal portion was assessed by immunohistochemistry using antibromodeoxyuridine and by counting silver-stained nucleolar organizer regions protein. The colonic mucosal ornithine decarboxylase activity was also measured at the termination. The results indicate that dietary PCA administration at 500 and 1000 ppm during the initiation or postinitiation phase significantly inhibited intestinal carcinogenesis induced by AOM as revealed by the reduction of tumor incidence and multiplicity. The data also demonstrate that PCA at 500 ppm and 1000 ppm significantly inhibited bromodeoxyuridine labeling index and also silver-stained nucleolar organizer regions protein number at three doses when animals were fed PCA at the initiation or postinitiation stage. Also, feeding of PCA at 1000 ppm during the initiation and postinitiation phase exerted a pronounced inhibitory effect on the colonic ornithine decarboxylase levels. PCA feeding did not cause any toxicity. These results demonstrate that PCA is a possible new chemopreventive agent for colon carcinogenesis through the suppression of manifestation of intermediate biomarkers induced by AOM, although the precise mechanisms of PCA-induced inhibition during the initiation and postinitiation phases remain to be elucidated.

Adenocarcinoma↗

Ability of aberrant crypt foci characteristics to predict colonic tumor incidence in rats fed cholic acid.

Aberrant crypt foci (ACF) are putative preneoplastic lesions of colon cancer which are being utilized currently as a biological end point to evaluate the induction and modulation of colon carcinogenesis. In several previous short-term studies, the unexpected reduction of ACF by the reported colonic tumor promoter cholic acid (CHA) emphasized the need for a systematic evaluation of the growth of ACF in response to a tumor promoter. The present study was conducted to determine if any characteristic(s) of ACF at various early stages of carcinogenesis would predict resulting tumor incidence in rats fed CHA. Male Sprague-Dawley rats received two injections of azoxymethane (20 mg/kg) and were fed either the AIN-76 diet or AIN-76 plus 0.2% CHA. The number, crypt multiplicity (number of crypts/focus), and size (area) of ACF were measured after 2, 8, 14, and 18 weeks in 5 rats/group. The number of ACF was lower (P < 0.033) in animals fed CHA at all time points. Average crypt multiplicity of ACF was greater (P = 0.045) from CHA-fed animals after 8 weeks compared to animals fed the AIN-76 diet. The average size of ACF was smaller in CHA-fed animals after 2 weeks and then tended to be larger than the sizes of the ACF from animals fed the AIN-76 diet. All remaining animals were killed after 18 weeks. Tumor incidence was higher (P < 0.001) in the CHA-fed group (63.2%) compared to the control diet group (29.4%). CHA-fed rats also had a higher number of tumors/tumor-bearing rat compared to control diet rats (1.96 versus 1.13). The main finding of this study is that the number of ACF at early time points did not predict tumor incidence. Crypt multiplicity was a consistent predictor of tumor outcome and should be measured in future studies using ACF as a biological end point. The CHA diet appears to provide a unique tumor-modulating environment that selectively enhances the growth of a smaller number of ACF leading to an increased number of tumors compared to a control diet. The mechanism(s) by which CHA mediates this effect warrants further investigation.

Animals↗

Effect of amount and types of dietary fat on intestinal bacterial 7 alpha-dehydroxylase and phosphatidylinositol-specific phospholipase C and colonic mucosal diacylglycerol kinase and PKC activities during stages of colon tumor promotion.

It is evident from many studies that the effect of dietary fat on colon tumor promotion depends not only on the amount of fat but especially on fatty acid composition. Animal model studies have shown that diets which are high in omega-6 fatty acids increase colon tumor promotion, whereas diets rich in omega-3 fatty acids have no such enhancing effect. The mechanisms by which the high fat content of the diet promotes colon carcinogenesis may include the production of secondary bile acids in the colon and the modulation of colonic luminal bacterial 7 alpha-dehydroxylase that is involved in generating secondary bile acids, phosphatidylinositol-specific phospholipase C (PI-PLC), and mucosal PI-PLC, as well as diacylglycerol (DAG) kinase and protein kinase C (PKC). In the present study, we investigated the effect of high-fat diets that are rich in omega-3 and omega-6 fatty acids on cecal bacterial 7 alpha-dehydroxylase and PI-PLC, fecal secondary bile acids, and colonic mucosal DAG kinase and PKC activities during different stages of colon carcinogenesis in male F344 rats. At 5 weeks of age, groups of animals were fed a low-fat diet containing 5% corn oil (LFCO). Beginning at 7 weeks of age, all animals, except those intended as vehicle controls, received azoxymethane (AOM) s.c. once weekly for 2 weeks at a dose rate of 15 mg/kg body weight. Vehicle-treated groups received s.c. injections of normal saline. One day after the second AOM or saline treatment, the experimental groups of animals were transferred to a high-fat diet containing 23.5% corn oil (HFCO) or 20.5% fish oil + 3% corn oil (HFFO). One group continued on the LFCO diet. Animals were sacrificed at weeks 1, 12, and 36 after the AOM or saline treatment. Colonic mucosa were harvested at weeks 1, 12, or 36, and the colonic tumor tissues were examined for PKC and DAG kinase activities. Contents of the cecum were analyzed for bacterial 7 alpha-dehydroxylase and PI-PLC activities. Stool samples collected at week 12 were analyzed for bile acids. High corn oil content of the diet significantly increased the cecal bacterial 7 alpha-dehydroxylase and PI-PLC activities as compared to the diets with high fish oil or low corn oil content. Animals fed the HFCO diet excreted higher levels of secondary bile acids, such as deoxycholic acid and lithocholic acid, than those fed the LFCO or HFFO diets. Carcinogen treatment significantly enhanced the activities of DAG kinase and total membrane PKC activities in colonic mucosa compared to saline treatment in all dietary groups. Animals treated with saline or AOM and fed HFCO showed increased levels of DAG kinase and membrane PKC activities in the colonic mucosa when compared to LFCO and HFFO groups. DAG kinase and membrane PKC activities were higher in colon tumors than in the surrounding colonic mucosa, and also increased levels of these enzyme activities were found in the HFCO diet group. These results indicate that the modifying effect of dietary fat on colonic bacterial enzymes, secondary bile acids, colonic mucosal and tumor DAG kinase, and PKC that may play a role in colon carcinogenesis depends on the types and amount of fat given. The colon tumor-enhancing effect of a HFCO diet in contrast to the high dietary fish oil may be, in part, explained on the basis of its modulating effect on these bacterial and colonic mucosal enzymes and colonic secondary bile acids relevant to colon tumor promotion.

Animals↗

Inability of low- or high-fat diet to modulate late stages of colon carcinogenesis in Sprague-Dawley rats.

The main objective of the present proposal was to investigate the effect of feeding a low- or high-fat diet in the early and late stages of colon carcinogenesis. Sprague-Dawley male rats were injected with azoxymethane (20 mg/kg/week) for 2 weeks. One week later they were randomly allocated to eat a low-fat (4% beef tallow + 1% corn oil) or a high-fat (18.6% beef tallow + 4.7% corn oil) diet (LF or HF). After 10 weeks of feeding, 10 animals per group were killed, and their colons were evaluated for tumors. The remaining animals in each group were divided further into LF and HF groups. The four experimental groups consisted of groups receiving LF or HF diet throughout the study (LF-LF or HF-HF) and the groups fed LF or HF diet for the first 10 weeks, then assigned the alternate diet for the remainder of the duration (LF-HF or HF-LF). By week 26, the remaining animals were killed, and their colons were evaluated for the number, location and size of tumors. The tumor incidence in the HF-HF and HF-LF groups were higher than the LF-LF and LF-HF groups (81.6 and 84.8% versus 71.4 and 60.0%). Tumor multiplicity ranged from 1.86 +/- 0.26 to 2.54 +/- 0.33 in all groups. The average size of tumors and total tumor area/rat were affected significantly by the time at which the diet was fed. Average size and total tumor area in the animals fed HF diet during early stages (HF-HF and HF-LF) were significantly higher than those fed the LF diet during the early stages. Late intervention by specific diets did not affect tumor outcome. Sequential enumeration of aberrant crypt foci of different growth features representing early preneoplastic stages corroborated the findings of the tumor outcome. It was concluded that early preneoplastic stages were more sensitive than their advanced counterparts to the dietary interventions of the present study.

Animals↗

Insulin promotion of colon tumors in rats.

McKeown-Eyssen and Giovannucci have proposed a mechanism for colon carcinogenesis based on the similarity of the risk factors for colorectal cancer and non-insulin-dependent diabetes. They note that diets high in fat and energy and low in complex carbohydrates and a sedentary lifestyle lead to insulin resistance and hyperinsulinemia and propose that the hyperinsulinemia promotes colon carcinogenesis. In this study, we directly tested for a promoting effect of insulin on colon carcinogenesis in F344 rats. After azoxymethane initiation and injections of insulin given 5 times/week for 17 weeks, the fraction of rats with colon tumors was greater in rats receiving insulin than in rats receiving saline (79 versus 50%, respectively; P < 0.05 for tumors with maximum diameters > or = 2 mm), and the average number of tumors/ rat was also greater (2.00 versus 0.73; P < 0.001). There was no effect on body weight. Our results demonstrate that insulin in a colon tumor promoter in this rat model and support the proposed mechanism linking lifestyle factors and colon carcinogenesis.

Animals↗

Dietary fat and colon cancer: modulating effect of types and amount of dietary fat on ras-p21 function during promotion and progression stages of colon cancer.

Although epidemiological and experimental studies have indicated a strong relationship between types and amount of dietary fat and colon tumorigenesis, the modulating effects of these nutritional factors at the molecular level have not been fully elucidated. Transforming proteins encoded by activated ras genes have been implicated in the etiology of many human malignancies, including colon cancer. It is now well established that the transforming ability of ras-p21 critically depends on its correct localization in plasma membrane. The posttranslational processing of the cytosolic precursor (pro-ras), as it is synthesized in the cytoplasm, and its proper anchorage to the cytoplasmic face of plasma membrane are determined by an important intermediate metabolite of dietary fat and an enzyme system that includes farnesyl protein transferase. To provide an understanding of the molecular basis of the relationship between the types and amount of dietary fat and the transforming function of ras, especially during the stages of promotion and progression of colon tumor development, we investigated the effect of various types and amount of dietary fat on the expression of ras-p21 during azoxymethane (AOM)-induced colon carcinogenesis. Male F344 rats were fed the semipurified American Institute of Nutrition-76A diet containing low-fat corn oil and were given s.c. injections of AOM dissolved in normal saline at a dose rate of 15 mg/kg body weight, once weekly, for 2 weeks. Control animals received s.c. injections of equal volumes of normal saline. Beginning 1 day after the second AOM or saline injection, groups of animals intended for the treatment with different types of high-fat dietary regimens were fed the semipurified American Institute of Nutrition-76A diets containing high levels of high-fat corn oil (HFCO) rich in omega-6 fatty acids or high levels of high-fat fish oil (HFFO) rich in omega-3 fatty acids; the remaining animals in experimental and control groups were continued on the low-fat corn oil diet until termination of the experiment. Groups of animals were sacrificed 1, 12, or 36 weeks after the last AOM or saline injection, and their colonic mucosa and grossly visible colon tumors from rats sacrificed 36 weeks after the last AOM injection were analyzed for the levels of expression of ras-p21. We found that AOM induced increasingly higher levels of ras-p21 expression with advancing stages of colon tumor development. The HFCO diet resulted in enhanced expression of AOM-induced ras-p21 as observed 36 weeks after the last AOM injection. In contrast, feeding the HFFO diet inhibited AOM-induced ras-p21 expression. These results correlate with increased incidence and multiplicity of grossly visible colon tumors in AOM-treated animals fed a HFCO diet versus decreased incidence and lower multiplicity of colon tumors in their counterparts on the HFFO diet. Further analysis of ras-p21 levels in cytosol and plasma membrane revealed that feeding a HFFO diet resulted in increasing accumulation of ras-p21 in cytoplasm with a concomitant decrease in membrane-bound ras-p21 levels as observed in animals sacrificed 12 and 36 weeks after the last AOM injection. Thus, the dietary HFCO may promote colon tumorigenesis by increasing ras-p21 expression, whereas HFFO appears to exert its antitumor activity by interfering with posttranslational modification and membrane localization of ras-p21.

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