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Microsomal styrene mono-oxygenase and styrene epoxide hydrase activities in rats.

1. Styrene epoxide formation and styrene epoxide hydration have been studied in liver, lung, kidney, heart, spleen and brain of female and male rats. 2. Styrene epoxide formation is NADPH-dependent although it is enhanced when NADH is added together with NADP. This enzymic activity is inhibited by metyrapone and SKF 525-A but not by the effective inhibitors of epoxide hydrase, 1,2-epoxy-3,3,3-trichloropropene and cyclohexene oxide. 3. Known inducers of liver microsomal mono-oxygenases show a different activity on the two enzymes. Phenobarbital increases both formation and hydration of styrene epoxide; and carbamazepine increase the hydration but not the formation of styrene epoxide; a steroid contraceptive combination (lynestrenol+ mestranol) increases styrene epoxide formation while it inhibits epoxide hydrase; 3-methylcholanthrene does not affect either of the activities.

Animals↗

Purification of human liver microsomal epoxide hydrase. Differences in the properties of the human and rat enzymes.

Human liver microsomal epoxide hydrase has been highly purified to a specific activity (570 to 620 nmol/min/mg of protein) comparable to that of the rat enzyme using styrene oxide as substrate. Like the purified rat liver microsomal epoxide hydrase, the human enzyme has a minimum molecular weight of 49,000 as determined by polyacrylamide gel electrophoresis in the presence of sodium dodecyl sulfate and exhibits broad substrate specificity toward a variety of alkene and arene oxides. Despite these similarities, the human and rat enzymes are different proteins as judged by their immunochemical properties as well as their relative catalytic activities toward certain substrates.

Animals↗

Induction of hepatic aryl hydrocarbon hydroxylase and epoxide hydrase in Wistar rats pretreated with oral methadone hydrochloride.

Methadone-HCl added to the drinking water of adult female Wistar rats for 4 weeks produced an increase in the aryl hydrocarbon hydroxylase activity of the hepatic microsomal fraction to 222% of control levels. No change was seen in epoxide hydrase activity. In contrast, when male rats were treated similarly, there was an increase in epoxide hydrase activity to 212% of controls with no change in aryl hydrocarbon hydroxylase activity. No such changes were observed when the subcutaneous route of administration or chronic, low-dose, intraperitoneal injections were used. There were no differences in hepatic cytochrome P-450 or protein concentrations in treated animals as compared to their respective control groups. Control studies were carried out with quinine sulfate in the drinking water to decrease water intake to the level of the methadone-treated group. No elevation in either enzyme activity occurred in this control group. Similarly, paired-feeding studies showed the elevation of enzyme activity to be due to the methadone, not food deprivation. The effects of concurrent therapy of methadone with phenobarbital sodium or 3-methylcholanthrene were compared.

Administration, Oral↗

Liver microsomal expoxide hydrase. Solubilization, purification, and characterization.

Epoxide hydrase was solubilized from liver microsomes of phenobarbital-treated rats by treatment with cholate and purified to apparent homogeneity by ammonium sulfate fractionation and column chromatography in the presence of the nonionic detergent Emulgen 911 on DEAE-cellulose and hydroxylapatite. The purified enzyme preparation had a single major band with a molecular weight of 53,000 to 54,000 on polyacrylamide gel electrophoresis in the presence of sodium dodecyl sulfate. Other studies indicated that in the absence of sodium dodecyl sulfate, purified epoxide hydrase exists as high molecular weight aggregates. The preparation was essentially free of heme and flavin, but still contained small amounts of lipids and Emulgen 911.

Amino Acids↗

Effect of vitamin A deficiency on hepatic microsomal and colon mucosal mixed function oxidase. IV--Influence on aflatoxin B1 metabolism, ethylmorphine and epoxide hydrase activity.

Male, weanling rats, divided into two groups were maintained for 45 days on a corn-based diet containing 5 mg vitamin A palmitate per kg diet (Group 1, normal animals) and without the vitamin (Group 2, dificient animals). Fifteen hours after the last feeding, the animals were decapitated and liver microsomes and colon mucosal epithelial homogenates were prepared and used to investigate the relative activities of the mixed function oxidase (MFO) and epoxide hydrase (EH) enzyme systems. The sequential metabolism of aflatoxin B1 (AFB1) and its epoxide AFBepox) product, respectively, were also estimated by measuring apparent maximal velocities (Vmax) and Michaelis constants (Km) for ethylmorphine (EM) N-demethylase and styrene oxide hydratase. The Vmax data indicated that MFO activity in the liver and colon was not rate-limiting in the two groups of animals but the reverse were observed with calculated reaction rates at concentrations above (0,03 mM) for EM N-demethylase only. In both organs, styrene oxide hydratase depict calculated reaction rates which are not rate-limiting for all the concentration range (0,001 to 3,00 mM). If these reaction rates are applied to AFB1 metabolism, it may be concluded that MFO and not epoxide hydrase (EH) activity is a critical agent under vitamin A deficiency in AFB1 toxicity and/or carcinogenesis. Measurements of AFT1 metabolism both in terms of substrate disappearance and product formation do not confirm this observation except for the production of AFR0 and compounds of unknown structure at the origin which may embody the critical factor(s) that promotes colon carcinogenesis under vitamin A deficiency.

Aflatoxins↗

Effects of the epoxide hydrase inhibitor, 1,1,1-trichloropropane-2,3-oxide on the genetic activity of aflatoxin B1 metabolites in in vitro activation test systems.

The epoxide hydrase inhibitor 1,1,1-trichloroprophane-2,3-oxide (TCPO) was genetically active to cells of S. cerevisiae and conidia of N. crassa. This genetic activity could be eliminated or reduced to near spontaneous levels in the presence of the S-9 fraction of hamster liver homogenate. The addition of TCPO to an in vitro activation system containing aflatoxin B1 resulted in an increase in the genetic activity of aflatoxin B1, and this increase was dependent on the dose of TCPO. These results are discussed in relation to the possible metabolism of the promutagen aflatoxin B1.

Aflatoxins↗

Alphatic 3,4-epoxyalcohols. Metabolism by epoxide hydrase and mutagenic activity.

Rabbit hepatic microsomal epoxide hydrase catalyzes the rapid hydrolysis of 1,2-epoxy-4-heptanol to 1,2,4-heptanetriol. Both diastereomers of the substrate are hydrolyzed, and both product diastereomers are formed. Similarly both cis- and trans-3,4-epoxy-1-hexanol are hydrolyzed, albeit more slowly, to give 1,3,4-hexanetriol. The trans isomer gives exclusively one diastereomer (erythro) of the triol, while the cis isomer gives the other diastereomer (threo). The product expected if a primary cationic intermediate were to be formed and trapped intramolecularly during the hydrolysis of 1,2-epoxy-4-heptanol, 2-propyl-4-tetrahydrofuranol, was not observed. A comparison of the mutagenic activity in the Ames test of 1-heptane, 1-hepten-4-ol, 1,2-epoxyheptane, and 1,2-epoxy-4-heptanol revealed that only the latter is a detectable mutagen. A vicinal hydroxyl therefore does not interfere significantly with enzymatic epoxide hydrolysis, but it does enhance the bioalkylating potential of even an aliphatic epoxide.

Animals↗

Epoxide hydrase in Trypanosoma cruzi epimastigotes.

1. Microsomal fractions from Trypanosoma cruzi epimastigotes catalyze the hydration of styrene oxide to styrene glycol. The activity is linear up to 45 min of incubation, is proportional to microsomal protein concentration within certain range, and has an optimum pH of 8.5. 2. Double-reciprocal plots indicate a Km value of 5.3 . 10(-4) M for styrene oxide and a V of 29.6 pmol of styrene glycol formed/min per mg protein at 37 degrees C. 4-Chlorophenyl-2,3-epoxypropyl either (Ki = 2.08 . 10(-4) M) and juvenile hormone I (Ki = 2.7 . 10(-4) M) are competitive inhibitors; whereas, 1-chloro-2,3-epoxypropane is a non-competitive inhibitor. The enzyme is induced about three-fold by 5 mM phenobarbital in the growth medium. 3. The epoxide hydrase is not activated by detergents but rather inhibited by concentrations of Tween-80 and Lubrol as low as 0.025%. 4. Experiments with intact cells indicate that about 3% of [8-14C]styrene oxide penetrates after 90 min of incubation; whereas, over 30% of juvenile hormone I is found intracellularly after the same incubation period. Intracellular styrene oxide is hydrated to styrene glycol to a significant extent and the in vivo hydration is increased by pretreatment with phenobarbital and inhibited upon the addition of 4-chlorophenyl-2,3-epoxypropyl ether. Only a small amount of the intracellular juvenile hormone I is recovered as the corresponding diol ester.

Animals↗

Relationships between the electrostatic potential, epoxide hydrase inhibition and carcinogenicity for some hydrocarbon and halogenated hydrocarbon epoxides.

For a group of nine hydrocarbon and halogenated hydrocarbon epoxides, there is shown to be a good correlation between their abilities to inhibit epoxide hydrase and the quantity Vmin /Es, where Vmin is the most negative value of the molecule's electrostatic potential in the neighborhood of the epoxide oxygen and Es is a factor that takes account of steric effects. It is also demonstrated that carcinogenicity, for thirteen epoxides, appears to be associated with Vmin having a relatively large negative value. On this basis, several other epoxides are predicted to be carcinogenic. The electrostatic potentials used in developing these relationships have been computed by an ab initio self-consistent-field molecular orbital procedure, using optimized molecular geometries.

Animals↗

Gas chromatographic assay of epoxide hydrase activity with 3-methylcholanthrene-11,12-oxide.

Epoxide hydrase has been measured in rat tissue with 3-methylcholanthrene-11,12-oxide as substrate; diol formation was assayed by gas chromatographic separation of the trimethylsilylated derivative of trans-11,12-dlhydro-11,- 12-dihydroxy-3-methylcholanthrene from the corresponding derivative of the 11 (or 12)-hydroxy-3-methylcholanthrene on 3 percent OV-17, which is formed from the 11,12-oxide during the derivatization. The polycyclic hydrocarbons were extracted initially from the incubation mixture with ethyl acetate. The assay is simple, inexpensive, and sensitive.

Animals↗

Skin carcinogenesis: cholesterol-5alpha,6alpha-epoxide hydrase activity in mouse skin irradiated with ultraviolet light.

Cholesterol-5alpha,6alpha-epoxide hydrase activity was 96 percent greater in skin of hairless mice that were receiving suberythemic ultraviolet light irradiation for 15 weeks than in nonirradiated controls. This enzyme system, which metabolizes cholesterol-5alpha,6alpha-epoxide (a known carcinogen), appears to be substrateinducible and is apparently responsible for the concomitant reduction of the sterol carcinogen that occurs prior to tumor induction.

Animals↗

[Demonstration of "hydroxylase" and "epoxide hydrase" activities in preparations of nucleoli isolated from rat liver].

Aryl hydrocarbon hydroxylase (AHH) activity and epoxyde hydrase (EH) activity have been found in Rat liver nucleoli obtained from untreated (C) and methylcholanthrene (MC) pretreated Rats. Electron microscopic observations of nucleolar preparations did not reveal significant contamination either by intact nuclei or by nuclear membranes. Very low but detectable activity of NADPH cytochrome C reductase was found in the nucleoli. Nucleolar preparations revealed little AHH activity (12-18 pmoles/min/mg). AHH was inducible by MC in nuclei but not in nucleoli. The presence of EH in nucleoli was demonstrated with phenanthrene 9,10-oxide (550-620 pmoles/min/mg) and benzopyrene 4,5-oxide (92-116 pmoles/min/mg). These values were lower than those obtained using intact nuclei. The addition of TCPO (10(-4) M) inhibited EH activity.

Animals↗

Evidence of epoxide hydrase activity in human intestinal microflora.

Cholesterol-5 alpha, 6 alpha-epoxide has been implicated as an etiologic agent in human colon cancer. The epoxide is metabolized by human intestinal microflora to a product which was characterized by thin-layer and gas-liquid chromatography as well as combined gas-liquid chromatography-mass spectrometry. Chromatographic properties are identical with authentic cholestan-3 beta, 5 alpha, 6 beta-triol, and these results suggest that microbial epoxide hydrase activity is present in the human colon.

Cholestanols↗

Influence of ethanol on hepatic glutathione content and on the activity of glutathione S-transferases and epoxide hydrase in the rat.

Chronic ethanol administration to female rats for 3 weeks was associated with a 60% increase in liver microsomal cytochrome P-450 content. This effect was accompanied by a similar increase in microsomal epoxide hydrase activity, in the presence of styrene oxide, and by significant increases in liver glutathione concentration and cytosolic glutathione S-transferase activities. A time-course study showed that the elevation of liver glutathione concentration seen after 3 weeks of ethanol consumption was a transient phenomenon, not observed after prolonged (23 weeks) ethanol intake and preceded, in the first 10-12 days of ethanol administration, by a decrease below control levels. The latter occurred at a time when the cytochrome P-450 content and the activity of glutathione S-transferases reached maximal increases to levels twice as high as those seen from 3 to 23 weeks of ethanol consumption. These observations show that chronic ethanol consumption may thus affect the hepatotoxicity of xenobiotics susceptible to cytochrome P-450-dependent bioactivation by influencing both this pathway and those involved in the inactivation of reactive metabolites. They also suggest that vulnerability of the liver to such hepatotoxins may be influenced by the duration of exposure to ethanol.

Animals↗