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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↗

Effect of orotic acid and magnesium orotate on the development and progression of the UM-X7.1 hamster hereditary cardiomyopathy.

This study deals with the potential therapeutic effect of orotic acid (OA) and Mg Orotate (MgO) on myocardial degeneration and the development of congestive heart failure in cardiomyopathic (CM) hamsters of the UM-X7.1 line. Two major age groups (group I, < 30 days and group II, > 180 days old) were used in these experiments, which lasted 30 and 50 days, respectively; the orotic salts were incorporated (10%) into Purina Lab Chow given ad libitum. Macroscopic and microscopic assessment of pathologic changes together with ECG recordings revealed that MgO treatment significantly reduces myocardial damage, especially the severity of calcific changes. ECG recordings clearly demonstrated a significant shortening of QTc and PR intervals, resulting in partial electrical stabilization of failing hearts, with a significant delay in systemic congestive changes. The prevention of heart lesions was less evident in animals receiving OA, but both preparations proved to be equally efficient in prolonging survival of the CM hamsters.

Animals↗

Electronic structure of orotic acid III geometric feature and thermal properties of some transition metal orotic acid complexes.

The complexes of orotic acid with Co(II), Ni(II), Fe(III), Cu(II), and Cd(II) were prepared and their stoichiometry were determined by elemental analysis. Co(II) and Ni(II) give complexes with orotic acid of 1:1 ratio whereas that of the remaining transition metals give complexes of 1:2 ratio. The stereochemistry of the studied metal complexes has been established by analyses of their electronic spectra and magnetic susceptibilities. The mode of bonding in the studied series of metal complexes was established via, analysis of their infrared spectra. The present analysis leads to the conclusion that all metal ions studied coordinate to orotic acid via N(1) and the adjacent carboxylate group. Thermal decomposition studies of orotic acid complexes have been carried out as to understand the status of water molecules present in these complexes as well as to know their general decomposition pattern. Theoretical investigation of the electronic structure of the studied metal complexes has been carried out. MO computations at the HF-level were performed. Charge density distribution, extent of distortion from regular geometry, dipole moment, and orientation were computed and discussed.

Cobalt↗

Nitrogen balance, plasma free amino acid concentrations and urinary orotic acid excretion during long-term fasting in cats.

The purpose of this study was to ascertain the changes in nitrogen balance, plasma free amino acid concentrations, urinary orotic acid excretion and body weight during long-term fasting in adult obese cats. Results from eight cats that fasted rather than eat an unpalatable diet are reported. After 5 to 6 wk of weight loss, six of the eight cats developed signs of hepatic lipidosis, and the livers of all cats were severely infiltrated with lipids. Cats lost (mean +/- SE) 33.2 +/- 1.4% of their pre-fasting body weight. Mean nitrogen balance (+/- SE) was -547 +/- 54 mg.d-1.kg-2/3 for the first week, and then the net nitrogen losses decreased to a plateau (-303 +/- 52 mg.d-1.kg-2/3) after 4 wk. Fasting was associated with a decrease in plasma concentration of essential amino acids. When plasma amino acid concentrations were considered individually, concentrations of alanine, methionine, taurine, citrulline, arginine and tryptophan decreased the most (> or = 50%), whereas concentrations of glutamine, glutamate and ornithine significantly increased. Orotic acid was not detected in the urine during the fast. After 1 wk of fasting, obese cats had reduced nitrogen excretion, but not to the same extent as has been shown in obese humans or obese rats. It is suggested that the availability of several amino acids may become limiting for liver protein synthesis during fasting and that these deficiencies may contribute to the development of hepatic lipidosis. Orotic acid was not linked to hepatic lipidosis caused by fasting in cats.

Amino Acids, Essential↗

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↗

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↗

Sex difference in the development of fatty liver by orotic acid.

Effects of orotic acid on liver lipid accumulation and incorporation of methionine [methyl-14C] into liver phosphatidylcholine and protein, and into serum beta-lipoprotein were studied. Male and female rats of Wistar strain were fed a semisynthetic diet supplemented with 1 per cent orotic acid for 7 days. Feeding of orotic acid induced a marked fatty liver in female rats, but not in males. In female rats, radioactivity in liver phosphatidylcholine was significantly decreased by orotic acid, and that in liver protein was slightly decreased. In male rats, incorporation of methionine [methyl-14C] into liver phosphatidylcholine and protein was unchanged between the control and the rats fed orotic acid. Radioactivity in serum beta-lipoprotein was decreased to a greater extent in female rats than in males. These results suggest that sex difference in the development of fatty liver may be due to the difference in the effect of orotic acid on liver phosphatidylcholine biosynthesis.

Acetates↗

Adsorption of bile acid by chitosan-orotic acid salt and its application as an oral preparation.

The orotic acid (OT) salt of chitosan (CS), CS-OT, and that of a CS derivative, CP, were prepared, and the adsorption of primary or secondary bile acid was investigated. Calcium-induced alginate gel beads (Alg-Ca) containing CS-OT were also prepared and autoclaved, and the possibility of these beads to act as a vehicle for oral administration to prevent hyperlipidemia was investigated. When taurocholate (TCA) and glycocholate (GCA) were present together in the medium, CS-OT adsorbed identical amounts of both bile acids. This trend was seen in all CPs, although the capacity to adsorb bile acid was affected by the number and/or structure of the amino groups in the CP. On the other hand, taurodeoxycholate, a secondary bile acid was preferentially adsorbed over TCA and GCA. Alg-Ca containing CS-OT took up bile acids in a similar manner as CS-OT irrespective of the water content of the gel matrix. As all elements can be taken as a food, Alg-Ca containing CS-OT could serve as a useful dietary agent for the prevention of hyperlipidemia, which is a lifestyle-related disease.

Administration, Oral↗

Determination of orotic acid in urine.

Orotic acid was separated from other urinary constituents by ion-pair formation with tetrabutylammonium, and isocratic elution from a reversed-phase column. Absorbance at 280 nm was recorded for quantitation. Owing to the better column characteristics the separations are somewhat faster, and the sensitivity of the method is higher than those of analogous methods using anion-exchange columns. The method was used for the determination of orotic acid in human urine, in urine of rats with portacaval shunts and in small (30 microliters) urine samples from sparse fur mice. Shunted rats excreted ca. 100% more orotic acid per 24 h than sham-operated controls, in spite of their considerably lower body weight. Excessive orotic acid in urine indicates a conditional deficiency of ornithine. Sparse fur mice are congenitally hyperammonemic because of a defective hepatic ornithine carbamoyltransferase. Determination of orotic acid in the urine is a suitable method to identify those animals among litter mates which have the hereditary enzyme defect.

Animals↗