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D S Sarma

Publications and source records attributed to D S Sarma.

At least 37 records · Page 2Linked to original sources

An earlier proliferative response of hepatocytes in gamma-glutamyl transferase positive foci to partial hepatectomy.

One of the hallmarks of initiated hepatocytes is their resistance to several hepatotoxins. This property forms the basis for their selective growth under conditions which are inhibitory to the non-initiated hepatocytes. Selective growth of initiated hepatocytes also occurs, albeit at a low level, in initiated rat liver without exposure to any known promoting regimen and/or in the absence of any known selective pressure to which initiated hepatocytes can possibly be resistant. This latter phenotypic property of initiated hepatocytes was further characterized by comparing the kinetics of response of hepatocytes in gamma-glutamyl transferase positive foci and in the surrounding liver to 2/3 partial hepatectomy both in the presence and in the absence of a promoting regimen. Male Fischer 344 rats (130-150 g) were initiated with a single dose of diethylnitrosamine and 1 week later they were placed on either a semi-synthetic basal diet or a promoting diet containing 1% orotic acid. Partial hepatectomy was performed 15 weeks after initiation and animals from both groups were killed at 12, 16, 20, 24, 30, 36, 48, 72 or 96 h after operation. Each animal received a pulse of 3H-labelled thymidine 1 h prior to killing. Autoradiographic studies revealed that hepatocytes in gamma-glutamyl transferase positive foci in the livers of rats fed the basal diet were significantly labelled at 16 h post-partial hepatectomy while surrounding hepatocytes were still virtually quiescent (LI 12.7 +/- 4.7 versus 1.2 +/- 0.5%, respectively). Higher labelling index in foci compared to the surrounding liver was also seen at 20 h post-PH (36.9 +/- 2.6 versus 21.5 +/- 2.4). Similar earlier response of hepatocytes in gamma-glutamyl transferase positive foci was also seen in initiated rats exposed to dietary orotic acid. In addition, orotic acid treatment appears to have imposed a slight delay on the entry of hepatocytes in the surrounding liver into 'S' phase and thereby enhancing the differential of growth response between these two populations.

Animals↗

Similar patterns of hypomethylation in the beta-hydroxy-beta-methylglutaryl coenzyme A reductase gene in hepatic nodules induced by different carcinogens.

Our earlier studies demonstrated that the beta-hydroxy-beta-methylglutaryl coenzyme A (HMG CoA) reductase gene is hypomethylated and overexpressed in hepatic nodules initiated by 1,2-dimethylhydrazine (1,2-DMH). The study presented here examined whether the pattern of DNA methylation of the HMG CoA reductase gene in hepatic nodules reflected carcinogen-DNA interaction during initiation. Accordingly, hepatic nodules were generated in male Fischer 344 rats with either 1,2-DMH or aristolochic acid (AA), which interact predominantly with the guanine and adenine bases in DNA, respectively. DNA from individual nodules was restricted with HpaII, MspI, and HhaI, and the fragments obtained were hybridized to a cDNA probe for HMG CoA reductase. The results indicated that the hypomethylation pattern in the reductase gene in the nodules initiated with these two carcinogens was similar, although they interacted with different bases in the DNA. The question still remained whether the DNA fragments obtained by digesting the two sets of nodules with the restriction endonucleases were from the same domains in the genome of HMG CoA reductase. To examine this, probes for the different domains of the HMG CoA reductase gene were generated from the cDNA using the restriction enzyme Accl. Three probes were obtained: (i) a 5'-end fragment corresponding to the membrane-spanning region, (ii) a second fragment corresponding to the 3'-end of the protein, and (iii) a third fragment spanning the region between (i) and (ii). Each of these probes was radiolabeled and hybridized to the HpaII- and HhaI-generated fragments from the DNA of hepatic nodules initiated with 1,2-DMH and AA. Irrespective of the carcinogen used for initiation, hypomethylation occurred in all three domains of the gene. More important, the pattern of hypomethylation was similar in the nodules initiated by the two carcinogens. Furthermore, an overall similarity was seen in the hypomethylation patterns in the c-myc and c-Ha-ras genes in the DNA of nodules initiated with either 1,2-DMH or AA. These results raise the possibility that the pattern of hypomethylation established in the hepatic nodules may not directly reflect the interaction between the initiating carcinogen and DNA but may represent a unique phenotype of hepatic nodules.

1,2-Dimethylhydrazine↗

Perturbations of endogenous levels of orotic acid and carcinogenesis: effect of an arginine-deficient diet and carbamyl aspartate on hepatocarcinogenesis in the rat and the mouse.

Feeding excess orotic acid (OA) in the diet promotes the carcinogenic process in different organs including the liver. A number of metabolic and genetic disorders are associated with increased synthesis of endogenous OA and some of these disorders appear to pose an increased risk of liver cancer development. This study therefore examines whether excess OA of endogenous origin also exerts a promoting effect on hepatocarcinogenesis in the mouse and the rat. Increased endogenous synthesis of OA was achieved by (i) feeding a diet deficient in arginine (AD) and (ii) feeding excess dietary carbamylaspartate (CA), a precursor for the synthesis of OA. A single dose of diethylnitrosamine (DENA) was given i.p. to male Fischer 344 rats (200 mg/kg) or to male DBA/2 mice (90 mg/kg). One week later they were placed on either AD diet or the same diet supplemented with 1.35% arginine (AS) for a total of 4 weeks. Two-thirds partial hepatectomy (PH) was performed at the end of the second week. All animals were then transferred to a control semisynthetic basal diet for a total of 20 weeks before they were killed. The results indicated that AD diet increased the incidence of hepatic nodules in both rats (percentage area occupied by nodules was 4.7 +/- 0.4 in the AD group compared to a control value of 0.7 +/- 0.5) and mice (4/10 mice had nodules > 5 mm diameter in the AD group while none in the AS group had such large nodules). In another experiment male Fischer 344 rats similarly initiated with DENA were exposed to either basal diet or basal diet containing 2% CA for 4 weeks coupled with PH performed at the end of the second week. This regimen was followed by 20 weeks of feeding basal diet to both groups. Rats given CA developed larger hepatic foci and nodules (0.84 +/- 0.56 mm3) compared to the control group, which was fed basal diet throughout the experiment (0.07 +/- 0.03 mm3). Further, both AD diet and dietary CA, like dietary OA, induced an increase in hepatic uridine nucleotides. Taken together, these results suggest that increased levels of endogenously synthesized OA, like exogenously supplied excess OA, can induce an imbalance in hepatic nucleotide pools and can exert a promoting effect on hepatocarcinogenesis.

Animals↗

Resistance of hepatic nodules to orotic acid-induced accumulation of uridine nucleotides.

It has been hypothesized that orotic acid (OA) promotes rat liver carcinogenesis by a differential mitoinhibitory mode. Consistent with this hypothesis, hepatic nodules are relatively resistant to OA-induced mitoinhibition. OA-induced mitoinhibition is dependent on the metabolism of OA to uridine nucleotides. The present studies investigate the uptake and metabolic pathway of OA, both in vivo and in vitro, as a possible basis for the resistance of hepatic nodules to OA-induced mitoinhibition. Rats bearing hepatic nodules exposed to 1% dietary OA exhibited increased levels of uridine nucleotides in the surrounding non-nodular liver (from 0.44 to 0.70 mg/g liver) but not in the hepatic nodules. Further, following administration of [3H]OA i.p., nodules have significantly lower levels of acid-soluble radioactivity compared to the non-nodular surrounding tissue. Furthermore, most of the acid-soluble radioactivity was present as uridine nucleotides, suggesting that the OA taken up was converted to uridine nucleotides. Similarly, hepatocytes from nodules in primary culture incubated with radiolabeled OA, have significantly lower levels (46-60%) of acid-soluble radioactivity. These results suggest that the decreased uptake of OA by hepatic nodules may be a factor contributing to the observed resistance of hepatic nodules to the mitoinhibitory effects of OA.

Animals↗

In vitro and in vivo response of hepatocytes from hepatic nodules to the mitoinhibitory effects of phenobarbital.

One of the proposed mechanisms by which phenobarbital (PB) promotes hepatocarcinogenesis in the rat is by differential mitoinhibition. However, our earlier studies indicated that PB inhibited DNA synthesis in vitro in hepatocytes isolated from both surrounding non-nodular liver and hepatic nodules promoted by orotic acid (OA). Since nodules generated by one promoter need not necessarily be resistant to another promoter, the present study was undertaken to determine whether foci/nodules promoted by PB itself are resistant to the mitoinhibitory effects of PB. Accordingly, rats were initiated with diethylnitrosamine (DENA, 200 mg/kg i.p) and promoted with PB (0.07% of PB as its sodium salt) in their drinking water for 16 or 33 weeks. In vitro studies indicated that PB (3-5 mM) inhibited DNA synthesis induced by epidermal growth factor (EGF) in hepatocytes from surrounding non-nodular liver as well as from nodules promoted by PB for 33 weeks. In another experiment, initiated rats exposed to PB for 33 weeks were subjected to either two-thirds partial hepatectomy (PH) or sham hepatectomy. Hepatocytes were labelled with tritiated thymidine in vivo for 48 h. Autoradiographic analysis indicated that in the presence of PB, the hepatocytes from both foci/nodules and the surrounding non-nodular liver responded to PH to the same extent. In addition, they both responded to PH less efficiently as compared to the corresponding controls. Further, initiated rats exposed to PB for 16 weeks when subjected to PH and killed 4 weeks thereafter, the percentage area occupied by gamma-glutamyltranspeptidase-positive foci/nodules in the PB group increased, but to the same extent as in initiated control rats not exposed to PB. The above results raised an interesting possibility that the lack of resistance of the PB-promoted nodules to the mitoinhibitory effects of PB may be because the PB-promoted nodule does not express a resistant phenotype. To examine this aspect, the response of hepatocytes from 33 week PB-promoted nodules to the mitoinhibitory effects of OA was examined. The results indicated that OA (60-120 microM) inhibited EGF-induced DNA synthesis in hepatocytes isolated from both nodules as well as from surrounding non-nodular liver. These results suggest that PB is a mitoinhibitor but may not provide a strong differential growth advantage to foci/nodules in response to a proliferative stimulus. Further, the nodules promoted by PB do not appear to express the resistant phenotype, defined as being resistant to the mitoinhibitory effects of OA and PB.

Animals↗

Ribonucleotide reductase: a possible target for orotic acid induced mitoinhibition in normal hepatocytes in primary culture.

The present study was designed to determine the mechanism by which orotic acid, a rat liver tumor promoter, inhibits DNA synthesis in normal hepatocytes in primary culture. Our results indicate that orotic acid inhibited the epidermal growth factor induced expression (mRNA) of both M1 and M2 subunits of ribonucleotide reductase while the expression of c-fos, c-myc, c-Ha-ras and beta-actin was not inhibited to any significant extent. These studies suggest that ribonucleotide reductase may be one target for orotic acid-induced mitoinhibition.

Adenosine Triphosphate↗

Induction of hepatic nodules in the rat by aristolochic acid.

Aristolochic acid (AA), used as an anti-inflammatory agent in the past, is known to be mutagenic and carcinogenic to several organs of the rat, including forestomach, renal pelvis and urinary bladder. However, despite the induction of DNA adducts in the liver, no carcinogenic potential of AA has been reported in the latter organ. The present study was based on the rationale that the lack of carcinogenicity of AA to the liver could be because this chemical may not be necrogenic at the doses examined and liver cell proliferation has been established as an essential component for initiation of liver carcinogenesis in the rat. The results indicated that AA is non-necrogenic to the rat liver. However, a single non-necrogenic dose of AA (10 mg/kg b.w., i.p.) given 18 hours after 2/3 partial hepatectomy initiated liver cell carcinogenesis. The initiated cells are promotable with 1% dietary orotic acid, a liver tumor promoter, to form glutathione-S-transferase 7-7 positive hepatic foci and nodules.

Animals↗

The effects of various inhibitors on the regulation of orotic acid excretion in sparse-fur mutant mice (spf/Y) deficient in ornithine transcarbamylase.

Experiments were conducted to determine whether the excessive orotic aciduria, induced in sparse-fur male mice (spf/Y) deficient in ornithine transcarbamylase (OTC), may be regulated by some inhibitors, such as acivicin (0.014 mmol/100 g body weight, i.p.), N-(phosphonoacetyl)-L-aspartate (PALA, 2.5 mg/100 g body weight, i.p.), adenine (3 g/kg diet) and cycloheximide (0.35 mmol/kg body weight, i.p.). We also administered ornithine (1 mmol/100 g body weight, i.p.), a substrate of the urea cycle, to alleviate the metabolic deficiency of arginine in spf/Y mice which may also be responsible for excessive orotic aciduria. The orotic aciduria remained insensitive to acivicin, indicating mitochondria as the source of carbamyl phosphate. However, orotate excretion was significantly decreased by PALA (P < 0.01), due to its effect on the aspartate transcarbamylase activity. The ingestion of adenine resulted in an increase (P < 0.05) of urinary orotate, suggesting the blockage of the utilization of orotate for nucleotide biosynthesis. Ornithine administration led to a reduction (P < 0.01) of the excretion of orotate induced by the OTC deficiency in these mice, indicating that one of the regulatory steps in its synthesis may be the availability of ornithine. There were no changes in urinary orotate excretion in spf/Y mice when treated with cycloheximide. On the other hand, pretreatment with cycloheximide in an artificial model of OTC deficiency (Swiss-ICR normal mice on an arginine-deficient diet treated thereafter with norvaline, an inhibitor of OTC), caused a significant decrease in urinary orotate. These results suggest that spf/Y mice are unique in that the increased synthesis of orotate is not sensitive to cycloheximide. Perhaps this may reflect an adaptive phenomenon developed by the mutant mice to handle excess mitochondrial carbamyl phosphate and orotic acid.

Adenine↗

The development of hepatocellular carcinoma in initiated rat liver after a brief exposure to orotic acid coupled with partial hepatectomy.

Previous work from this laboratory has revealed that a minimum of 10-20 weeks of continuous exposure to 1% dietary orotic acid (OA) is necessary for this regimen to exert a significant promoting effect on the carcinogenic process in rat liver. The present study investigates the effect of partial hepatectomy (PH), given during a short-term exposure (4 weeks) to OA, on the development of hepatocyte nodules (HN) and hepatocellular carcinoma (HCC) initiated by diethylnitrosamine (DEN). Male Fischer 344 rats (130-150 g) were given a single dose of DEN (200 mg/kg body wt i.p.). Starting a week later they were fed either a semisynthetic basal diet (BD) or the same diet containing 1% OA for 2 weeks; two-thirds PH was then performed followed by another 2 weeks of BD or OA diet respectively. At the end of this treatment some animals from both groups were killed while the rest were continued on BD and killed at 20 or 56 weeks thereafter. The results showed no difference between the two groups in the incidence of gamma-glutamyltransferase-positive foci when rats were killed at 2 weeks after PH. However, 4 week exposure to OA coupled with PH significantly enhanced the incidence of HN and HCC when this protocol was followed by 20 or 56 weeks of BD feeding respectively, leading to 63% incidence of HCC in the OA-fed group, while no HCC was observed in control animals. It is concluded that a type of stable or permanent change(s) ('imprinting' or 'memory effect') is induced in the initiated rat liver by this treatment, which imposes a promoting environment in the liver even after withdrawal of the promoter.

Animals↗

Effect of orotic acid on in vivo DNA synthesis in hepatocytes of normal rat liver and in hepatic foci/nodules.

One of the proposed mechanisms by which orotic acid (OA) promotes liver carcinogenesis is by differentially mito-inhibiting the normal hepatocytes while permitting the initiated ones to respond to growth stimuli to form foci/nodules. In an attempt to examine this hypothesis, the present study was designed to determine (i) whether OA inhibits DNA synthesis in normal hepatocytes in vivo, and (ii) whether hepatocytes from hepatic foci/nodules are relatively resistant to the mito-inhibitory effects of OA. The results of this study indicate that OA given i.p. as a tablet of 300 mg at the time of partial hepatectomy (PH) almost completely inhibited liver DNA synthesis. Three days later--a time period by which the implanted tablet disappeared--the hepatocytes resumed DNA synthesis. Exposure to OA results in an accumulation of uridine nucleotides and a decrease in adenosine nucleotides. Creation of such an imbalance in nucleotide pools appears to be important for OA to inhibit DNA synthesis. Adenine (a tablet of 300 mg), an agent that inhibits the metabolism of OA to uridine nucleotides, counteracted the mito-inhibitory effects of OA. To determine whether the hepatocytes in foci/nodules are resistant to the mito-inhibitory effects of OA, rats were initiated with diethylnitrosamine (DENA; 150 mg/kg) and promoted by the resistant-hepatocyte model. Fourteen weeks after the administration of DENA, the rats were subjected to PH in the presence of absence of OA (300 mg tablet). The results indicated that, in contrast to hepatocytes in normal or surrounding non-nodular liver, a subpopulation of hepatocyte foci/nodules appear to be relatively resistant to the mito-inhibitory effects of OA. These findings support the hypothesis that differential mito-inhibition is a possible component in the promoting effect of OA. However, whether this is the mechanism by which OA promotes liver carcinogenesis needs to be further investigated.

Adenine↗

Increasing the interval between initiation and the onset of exposure to orotic acid decreases its promoting effect on rat liver carcinogenesis.

The present study was designed to determine whether a delay in the start of the promoting regimen after the administration of a carcinogen would influence the promoting efficacy of orotic acid on the development of hepatocellular carcinoma in rats. Male Fischer 344 rats weighing 130-150 g were injected with a single dose of diethylnitrosamine (200 mg/kg body wt i.p.) then divided into 3 groups: groups 1 and 2 were given semi-synthetic basal diet or the same diet containing 1% orotic acid (OA) respectively starting 1 week after the carcinogen; group 3 received the OA diet starting 5 weeks after the administration of diethylnitrosamine. Animals from these 3 groups were sacrificed after 25, 32, 42 and 60 weeks of being fed their respective diets. The results indicated that delaying the start of the OA diet after the carcinogen resulted in about a 50% decrease in the incidence of hepatic nodules and/or hepatocellular carcinomas at various time points during the experiment. This decrease in promoting efficacy of OA was not apparently explainable by lack of metabolic effects of OA, at least in terms of induction of nucleotide pool imbalance, a condition that appears to be important for OA to exert its tumor promoting effects.

Animals↗

Studies on liver tumor promotion in the rat by orotic acid: dose and minimum exposure time required for dietary orotic acid to promote hepatocarcinogenesis.

Our earlier studies indicated that orotic acid, a precursor for pyrimidine nucleotide biosynthesis, exerts a promoting effect on rat hepatocarcinogenesis. The present study was designed to determine the optimum conditions of exposure to orotic acid required for promotion of hepatocarcinogenesis in the initiated rats. The first series of experiments was designed to determine the optimum dose of orotic acid needed to exert its liver tumor promoting effect. Accordingly male Fischer rats were given diethylnitrosamine (200 mg/kg, i.p.) or 0.9% NaCl. One week later carcinogen-injected rats were divided into six groups and fed either basal diet or the same diet containing 0.1, 0.5, 1, 2 or 4% orotic acid. Rats given 0.9% NaCl were fed 4% orotic acid. Two-thirds partial hepatectomy was performed on all animals 10 weeks after starting on their respective diets, and all groups were killed 3 weeks thereafter. Analysis of gamma-glutamyltransferase-positive foci and nodules revealed that 0.5-1% orotic acid in the diet is sufficient to exert a significant promoting effect on the selective growth of initiated hepatocytes, while higher concentrations of orotic acid were only marginally more effective. No gamma-glutamyltransferase-positive foci were observed in animals given 4% orotic acid diet following saline injection. Using 1% orotic acid as the promoting regimen, in the next series, the minimum exposure time required for dietary orotic acid to promote liver carcinogenesis was determined. Male Fischer 344 rats were given i.p. either 1,2-dimethylhydrazine dihydrochloride (100 mg/kg) or 0.9% NaCl 18 h after 2/3 partial hepatectomy. After 1 week of recovery one group of rats was continued on a semisynthetic basal diet, while others were transferred to the same basal diet containing 1% orotic acid. Rats that were on the 1% orotic acid diet were progressively transferred to the basal diet after 5, 10, 20, 29 and 40 weeks of exposure. All rats were sacrificed 54 weeks after the beginning of the experiment. The results indicate that 100% of the initiated rats developed hepatic nodules whether or not they were exposed to an orotic acid-containing diet. However, the incidence of hepatocellular carcinoma was greatly increased in animals exposed to the orotic acid diet, with 42% incidence in initiated rats given orotic acid diet for 10 weeks and up to 75% in those exposed to this diet for 40 weeks. Further, promotion by orotic acid exhibited a high metastatic potential with 33-60% metastasis to the lungs.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

The effect of long-term feeding of orotic acid on the incidence of foci of enzyme-altered hepatocytes and hepatic nodules in Fischer 344 rats.

The present study was designed to determine the long-term effects of orotic acid (OA), a multi-organ tumor promoter, in rats not exposed to any carcinogen. Male Fischer 344 rats (130-150 g) were divided into two groups and given either a semisynthetic basal diet (BD) or the same diet containing 1% OA. Animals from both groups were killed after 1 or 2 years of treatment. Foci of placental glutathione-S-transferase (GST 7-7) positive hepatocytes were observed in the livers of both BD and OA fed rats killed after 1 year. However, they were more in number in animals receiving OA (156 +/- 21 versus 51 +/- 11/cm3). After 2 years, hepatic nodules were seen in almost all the animals given OA and in approximately 30% of the rats given BD. The nodules were of two main types: (i) a reddish-brown type, present in 85% of rats exposed to OA and in 27% of rats given BD, and (ii) a greyish-white type, found in 50% of animals fed OA and in none of the animals fed BD. These two types of lesions were also histologically different. Reddish-brown nodules were composed of slightly enlarged hepatocytes resembling normal surrounding tissue, while greyish-white nodules were similar in structure and are indistinguishable from hepatic nodules induced by genotoxic chemical carcinogens. The results are interpreted to suggest that the foci/nodules seen in OA-fed rats are due to a promoting effect of OA on spontaneously arising and/or diet-induced altered cells.

Animals↗

Different effects of regenerative and direct mitogenic stimuli on the growth of initiated cells in the resistant hepatocyte model.

The possible mechanism(s) responsible for the different effects exerted by proliferative stimuli of different nature on the appearance of enzyme-altered hepatic foci, were investigated in male Wistar rats. Rats given an initiating dose of diethylnitrosamine (150 mg/kg body weight) were fed a diet containing 0.03% acetylaminofluorene for 2 weeks. Between the first and the second week, cell proliferation was induced by a proliferative stimulus of compensatory type (partial hepatectomy) or by a direct mitogenic stimulus (lead nitrate, 100 mumol/kg). The effect of the two different proliferative stimuli on the appearance of gamma-glutamyl transferase-positive foci was monitored by killing the rats for examination at 1, 2, 3, 5, and 6 days after the induction of cell proliferation. The results indicate that while enzyme-altered hepatocytes can be observed as early as 3 days after partial hepatectomy and are characterized by a rapid growth, direct hyperplasia did not exert any effect on the growth capacity of initiated cells. No effect of lead nitrate-induced hyperplasia was observed following three administrations of the mitogen. When platelet-poor plasma taken from animals exposed to the different proliferative stimuli was tested in primary cultures of hepatocytes, it was found that it induced a significant increase in the labeling index of normal hepatocytes. However, while serum taken 6 days after partial hepatectomy was still able to induce a significant increase in the labeling index, platelet-poor plasma from lead-treated rats had lost part of its effect at 5 days after treatment. The inability of direct hyperplasia to stimulate the development of enzyme-altered hepatic foci was not unique to lead nitrate since the same phenomenon was observed when three other hepatomitogens, nafenopin, cyproterone acetate, and ethylene dibromide, were used.

2-Acetylaminofluorene↗

Influence of orotic acid on multistage hepatocarcinogenesis in the rat: resistance of hepatocytes from nodules to the mitoinhibitory effects of orotic acid.

This study was designed to determine whether hepatocytes from hepatic nodules are resistant to the mitoinhibitory effects of orotic acid. Hepatic nodules were initiated in Fischer 344 male rats with 1,2-dimethylhydrazine.2HCl (100 mg/kg ip) given 16 hr after two thirds partial hepatectomy and promoted by feeding a diet containing 1% orotic acid. Eight to 9 months later, when persistent nodules had developed, the rats were taken off the orotic acid diet and maintained on a semisynthetic basal diet for 2 to 5 weeks. The effect of orotic acid on the DNA synthesis in the hepatocytes isolated from hepatic nodules and from the surrounding nonnodular liver and from the age- and sex-matched control rats was studied. The results indicated that a dose of orotic acid (120 microM) that almost completely inhibited the transforming growth factor-alpha-induced DNA synthesis in hepatocytes from nonnodular surrounding liver and from age- and and sex-matched control liver could not inhibit the DNA synthesis in hepatocytes from hepatic nodules. These results are consistent with the postulate that orotic acid may promote liver carcinogenesis by a differential mitoinhibition of normal hepatocytes while permitting the initiated hepatocytes to respond to growth stimuli and form hepatic nodules. However, it needs to be determined whether differential mitoinhibition of normal hepatocytes is the mechanism by which orotic acid promotes liver carcinogenesis.

1,2-Dimethylhydrazine↗

Differences in the steady-state levels of c-fos, c-jun and c-myc messenger RNA during mitogen-induced liver growth and compensatory regeneration.

The steady-state levels of c-fos, c-jun and c-myc messenger RNA were investigated in rat liver tissue after proliferative stimuli of different nature-namely, compensatory regeneration induced by partial hepatectomy or carbon tetrachloride administration-and direct hyperplasia induced by four different hepatomitogens: lead nitrate, ethylene dibromide, cyproterone acetate and nafenopin. We show here that whereas c-fos and c-jun expression increased soon after partial hepatectomy or carbon tetrachloride administration, an increased expression of c-jun in the absence of c-fos expression occurred during direct hyperplasia induced by lead nitrate and ethylene dibromide. When hyperplasia was induced by cyproterone acetate and nafenopin, the mitogenic response of the liver was not associated with an increased expression of c-jun or c-fos, despite the fact that the timing of the cell cycle was similar to that observed after partial hepatectomy. Finally, when c-myc expression was analyzed, it was found that proliferative conditions associated with an increased expression of this gene were characterized by an increased expression of c-jun. On the contrary, the hyperplasia induced by cyproterone acetate and nafenopin, which is characterized by a lack of increase in the expression of c-fos and c-jun, was also not associated with an increased c-myc expression. Similar results were obtained in these experiments with the mitogen nafenopin, a peroxisome proliferator. In fact, liver hyperplasia induced by this compound was not preceded or accompanied by an increased expression of c-fos and c-myc. This study suggests that depending on the nature of the proliferative stimulus, an increased expression of c-fos, c-jun and c-myc may not be necessary for in vivo induction of liver cell proliferation.

Animals↗

Orotic acid, nucleotide-pool imbalance, and liver-tumor promotion: a possible mechanism for the mitoinhibitory effects of orotic acid in isolated rat hepatocytes.

This study was designed to determine the possible mechanism by which orotic acid exerts its mitoinhibitory effect on rat hepatocytes in primary culture. Orotic acid inhibited, dose-dependently DNA synthesis in hepatocytes induced by epidermal growth factor, transforming growth factor alpha, hepatocyte growth factor, acidic fibroblast growth factor, or plasma from rats exposed to various liver cell-proliferative stimuli, such as two-thirds partial hepatectomy, lead nitrate, cyproterone acetate, ethylene dibromide, or a diet deficient in choline. Further, orotic acid inhibited DNA synthesis even when added 24 h after the hepatocytes were primed with transforming growth factor alpha. Taken together, these results suggested that the target site may not be at the level of the growth-factor receptor and receptor-mediated early events. In a preliminary experiment, orotic acid inhibited the expression of the ribonucleoside diphosphate reductase gene. Exposure to orotic acid results in an imbalance in nucleotide pools characterized by an increase in uridine nucleotides and a decrease in adenosine nucleotides. It is hypothesized that this imbalance in nucleotide pools inhibits the expression of the ribonucleoside diphosphate reductase gene and, therefore, is a likely target for the mitoinhibitory effect of orotic acid.

Animals↗

Stimulation of DNA synthesis by rat plasma following in vivo treatment with three liver mitogens.

The present study was undertaken to determine the effect of two different types of liver cell proliferative stimuli, namely compensatory regeneration and direct hyperplasia on DNA synthesis of normal and preneoplastic isolated hepatocytes. Platelet-poor plasma (PPP) isolated from male Wistar rats treated with three different hepato-mitogens, lead nitrate (LN), cyproterone acetate (CPA) and ethylene dibromide (EDB), or subjected to surgical partial hepatectomy (PH), was tested for its ability to stimulate DNA synthesis in normal and preneoplastic hepatocytes in primary cultures. Induction of DNA synthesis was detected as early as 30 min after CPA, EDB and PH administration and persisted up to 5 days after the LN administration. In addition, hepatocytes isolated from preneoplastic liver nodules were also able to respond in culture to the DNA synthesis stimulus induced by these factors.

Animals↗