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Inhibition of dihydropteridine reductase by catechol estrogens.

Catechol estrogens, such as 2-hydroxyestriol, 2-hydroxyestradiol, and 2-hydroxyestrone, inhibit human liver dihydropteridine reductase noncompetitively with Ki values ranging from 1.5 to 4.6 X 10(-6)M. Catechol estrogens lose approximately half of their inhibitory potency if the C-2 hydroxyl groups are methylated. Thus, 2-methoxyestrogens have inhibitory potencies equivalent to those of their parent estrogens--estriol, estradiol, and estrone. Aromatization of ring B or stereoisomerism at C-17 does not affect the inhibitory potency of estrogens, although stereoisomerism at C-16 enhances the inhibitory potency of estriol. These results support the hypothesis that catechol estrogens may interfere with catecholamine metabolism by acting as inhibitors of enzymes involved in catecholamine metabolism, such as dihydropteridine reductase.

Dihydropteridine Reductase

Direct inhibition of tyrosine hydroxylase activity by catechol estrogens.

Catechol estrogens, the 2-hydroxylated metabolites of estrogens, recently shown to be formed in brain, inhibit tyrosine hydroxylase, the enzyme that catalyzes the pivotal step in the biosynthesis of the neurotransmitters dopamine and norepinephrine. The nature of the inhibition is by competition with the pterin cofactor and thus resembles feedback inhibition of the enzyme by catecholamines.

Animals

Active nonaromatic intermediates in the conversion of steroidal estrogens into catechol estrogens.

A mechanism is proposed for mixed-function oxidase-catalyzed formation of the catechol estrogens 2-hydroxy- and 4-hydroxyestradiol from estradiol. This mechanism involves nonaromatic epoxyenones as intermediates. The isomeric 1 alpha,2 alpha-epoxy-17 beta-hydroxyestr-4-en-3-one and 1 beta,2 beta-epoxy-17 beta-hydroxyestr-4-en-3-one (the latter as its 17-acetate) were synthesized from 17 beta-hydroxy-5 alpha-estran-3-one. The isomeric 4 alpha,5 alpha-epoxy-17 beta-hydroxyestr-1-en-3-one and 4 beta,5 beta-epoxy-17 beta-hydroxyestr-1-en-3-one were prepared from 19-nortestosterone. From incubations of [6,7-3H]estradiol with microsomes from MCF-7 human breast cancer cells, which principally catalyze the formation of 2-hydroxyestradiol from estradiol, we were able to isolate a 3H-labeled product with the chromatographic properties of 1 beta, 2 beta-epoxy-17 beta-hydroxyestr-4-en-3-one (as its 17-acetate). The soluble protein fraction of homogenates of rat liver, which is devoid of estrogen 2-/4-hydroxylase activity, has been shown to catalyze the formation of 2- and 4-hydroxyestradiol from the 1 alpha,2 alpha-epoxide and from the 4 alpha,5 alpha- and 4 beta,5 beta-epoxides, respectively. We suggest that these results taken together strongly support a role for epoxyenones as intermediates in the formation of catechol estrogens.

Estrogens

Effect of continuous intraventricular estrogen or catechol estrogen treatment on catecholamine turnover in various brain regions.

The effect of 7-day i.v.t. administration of catechol estrogens (CE) or estrogens (5 micrograms/day) on the catecholamine turnover rate of various brain areas was examined in ovariectomized rats. Norepinephrine turnover was increased significantly in the hypothalamus and cerebral cortex by estradiol treatment but not by any CEs tested when compared to control values. However, the turnover rate of dopamine in the cerebral cortex was increased compared to control values only by the 2-hydroxyestrogens (2-hydroxyestradiol and 2-hydroxyestrone) and estradiol was without effect. Only estrogens and CEs with physiologically significant estrogen receptor binding affinities (17 beta-estradiol, moxestrol, 2-hydroxyestradiol and 4-hydroxyestradiol) decreased the turnover rate of dopamine in the corpus striatum compared to control values. Estrogens (17 alpha-estradiol and 2-hydroxyestrone) which are weak ligands for the estrogen receptor did not affect striatal dopamine turnover. In addition, body weight gain measured during estrogen treatment was reduced by CEs and estrogens which have significant estrogen receptor affinities. These results suggest that the CEs may play a role in central modulation of catecholaminergic function by estrogens either through direct actions of the catechol moiety or activation of estrogen receptors.

Animals

Inhibition of the soluble form of testis adenylate cyclase by catechol estrogens and other catechols.

The soluble form of rat germ cell adenylate cyclase was inhibited by compounds with a catechol moiety. Among the naturally occurring catechols tested, catechol estrogens were the most potent inhibitors. Catechol estrogens at 2-6 microM inhibited enzyme activity by 50% and almost completely at 30-100 microM concentration. The inhibitory activity of catechol estrogens depends on the catechol moiety of the molecule. Catechol per se also inhibited the activity of this enzyme, 50% inhibition being achieved at about 11 microM. The two hydroxyls of the catechol moiety are essential for the inhibitory interaction with the enzyme. Thus, aromatic compounds containing only one hydroxyl group in the benzene ring, such as tyrosine, phenylephrine, estradiol, and 6 alpha-hydroxyestradiol were either completely inactive or had marginal inhibitory activity at concentrations up to 0.3-1 mM. Moreover, methylation of the hydroxyl groups of the catechol moiety of the catechol estrogens as in 2-methoxyestradiol 3-methyl ether rendered the catechol estrogens inactive. The inhibitory potency of these compounds varied greatly depending on the structure associated with the catechol ring. Thus, compounds in which catechol is associated with an aliphatic side chain, such as dopamine, L-dopa, norepinephrine, and isoproterenol, were about 11- to 34-fold less potent than catechol. On the other hand, compounds in which catechol is associated either with a hydroaromatic ring system, as in apomorphine, or with an alicyclic ring system, as in catechol estrogens, were about 2- to 5-fold more potent than catechol. The inhibitory effect of dopamine, apomorphine, and catechol estrogens was not affected by specific D-1 or D-2 antagonist, indicating that they do not act via receptors for dopamine.

Adenylyl Cyclase Inhibitors

Regioselective reaction of thiols with catechol estrogens and estrogen-O-quinones.

Incubations of [3H]estradiol and [3H]2-hydroxyestradiol (2-OHE2) with rat liver microsomes and mushroom tyrosinase were carried out in the presence of glutathione and 2-mercaptoethanol. A ratio of about 3.5:1 for the C-4 and C-1 thioether conjugates of 2-OHE2 was observed. Chemical reaction of estradiol-2, 3-O-quinone with various thiols showed that alkyl and phenyl thiols gave about a 1:1 ratio of C-4 to C-1 thioethers. However, reaction of the O-quinone with 4-nitrothiophenol gave a C-4/C-1 ratio of 0.25 while 4-bromothiophenol gave a C-4/C-1 ratio of 4.0. These studies suggest that the regioselectivity of the reaction of thiols with estrogen catechols and O-quinones may be dependent on the nature of the thiol compounds and less on steric hindrance.

Animals

Activation and irreversible binding of regiospecifically labeled catechol estrogen by rat liver microsomes: evidence for differential cytochrome P-450 catalyzed oxidations.

Estradiol and 2-hydroxyestradiol labeled with 3H at different positions in rings A or B were incubated with male rat liver microsomes, and their oxidative transformation was followed by the transfer of 3H into 3H2O. 14C-labeled estrogen or catechol estrogen was used to determine the fraction that becomes bound covalently to microsomal protein. The further metabolism of 2-hydroxyestradiol involves activation of the steroid at C-4 and, to a much lesser extent at C-1, by a cytochrome P-450 mediated reaction as indicated by the effects of NADPH, spermine, SKF-525A, and CO in the microsomal system. Glutathione promoted the loss of 3H from C-4 of either estradiol or 2-hydroxyestradiol but had less effect on this reaction at C-1 and inhibited it at C-6,7. It also abolished the irreversible binding of 14C-labeled estradiol and 2-hydroxyestradiol to microsomal protein. NADPH was needed specifically for glutathione to exert its effect both on the transfer of 3H into 3H2O and on the formation of water-soluble products from catechol estrogen by rat liver microsomes. It could not be replaced by NADP, NAD, or NADH. Ascorbic acid inhibited these enzymatic reactions but did not affect significantly the initial 2-hydroxylation of estradiol. Evidence is also provided for the further hydroxylation of 2-hydroxyestradiol at C-6 (or C-7). These results indicate that cytochrome P-450 activates catechol estrogens by an electron abstraction process.

Animals

Inhibition of the preovulatory prolactin surge in the rat by catechol estrogens: functional and temporal specificity.

Catechol estrogens, administered iv to cycling rats on the morning of proestrus, were able to block the preovulatory PRL surge on the afternoon of the same day. Only catechol estrogens with a low affinity for the estrogen receptor, such as 2-hydroxyestrone and 2-hydroxyestradiol-17 alpha were effective in this respect, while the estrogenic catechol estrogen 2-hydroxyestradiol was unable to influence the PRL surge. The effectiveness of the PRL surge abolition was highly dependent on the state of the endogenous estradiol levels at the time of administration. Only doses given just before the peak secretion of estradiol were effective in blocking the PRL surge. Despite similarities in the inhibition of the preovulatory LH and PRL surges by catechol estrogens, these are considered to occur by different mechanisms because the LH secretion is blocked by all catechol estrogens, while the PRL surge is affected only by catechol estrogens with no estrogen agonist properties. The catechol estrogen blockade of the PRL surge may have physiological parallels and provides a useful probe of the mechanisms of the estrogen-PRL axis.

Animals

A method for estimating catechol estrogen metabolism from excretion of noncatechol estrogens.

The relationship of catechol estrogen metabolism to disease has seldom been investigated because of analytic difficulties. Estradiol (E2) and estrone (E1) are oxidized simultaneously at either ring A or ring D, and the rate of catechol estrogen formation (r2) is reciprocally related to the rate of 16 alpha-hydroxylation (r3). The rate of ovarian estrogen production (X10) can be summarized as to metabolic outcome: X10 = r10 + r2 + r3 + r(u), where r10 is the loss of E1 and E2 in urine, and ru is the fecal and urinary loss of unknown oxidative products. Assuming a constant r(u) between subjects: constancy of the X10 concentration between subjects during similar menstrual cycle phases. In the absence of xenobiotics, r2 x r3 are reciprocally interrelated: r2 x r3 = K (an oxidation constant whose limiting factor is the biologically available estrogen at the cell surface). To the extent that r10 approximates estrogens available for cellular metabolism, the rate of catechol estrogen metabolism may be determined from (Formula; see text) From published data K = 12.4 +/- 0.8 of the standard error of the mean. Pearson correlation coefficients between actual and estimated catechol estrogen excretion in groups of subjects ranged from 0.61 to 0.97 (median, 0.88). This method has been useful for clinical investigation of the relationship of catechol estrogen metabolism to disease until better methods to measure catechol estrogen directly are available.

Body Weight

Synthesis and characterization of estrogen 2,3- and 3,4-quinones. Comparison of DNA adducts formed by the quinones versus horseradish peroxidase-activated catechol estrogens.

Catechol estrogens (CE) are among the major metabolites of estrone (E1) and 17 beta-estradiol (E2). Oxidation of these metabolites to semiquinones and quinones could generate ultimate carcinogenic forms of E1 and E2. The 2,3- and 3,4-quinones of E1 and E2 were synthesized by MnO2 oxidation of the corresponding CE, following the method for synthesizing E1-3,4-quinone [Abul-Hajj (1984) J. Steroid Biochem. 21, 621-622]. Characterization of these compounds was accomplished by UV, nuclear magnetic resonance, and mass spectrometry. The relative stability of these compounds was determined in DMSO/H2O (2:1) at room temperature, and the 3,4-quinones were more stable than the 2,3-quinones. The four quinones directly reacted with calf thymus DNA to form DNA adducts analyzed by the 32P-postlabeling method. The adducts were compared to those formed when the corresponding CE were activated by horseradish peroxidase (HRP) to bind to DNA. The E1- and E2-2,3-quinones formed much higher levels of DNA adducts than the corresponding 3,4-quinones. In addition, many of the adducts (70-90%) formed by the E1- and E2-2,3-quinones appeared to be the same as those formed by activation of 2-OHE1 or 2-OHE2 by HRP to bind to DNA. Little overlap was observed between the adducts formed by E1- and E2-3,4-quinones and HRP-activated 4-OHE1 and 4-OHE2. These results suggest that semiquinones and/or quinones are ultimate reactive intermediates in the peroxidatic activation of catechol estrogens.

Autoradiography

Borate and molybdate inhibition of catechol estrogen and pyrocatechol methylation by catechol-O-methyltransferase.

The possibility that boron and molybdenum anions can influence sex steroid metabolism by forming complexes with catechol estrogens has been studied in vitro. The formation of 2-methoxyestrone (2-OHE1 2-Me) from 2-hydroxyestrone (2-OHE1) by catechol-O-methyltransferase (COMT) was followed by measuring the transfer of the radiolabeled methyl group from S-adenosylmethionine. In the presence of both sodium tetraborate and sodium molybdate using a phosphate buffer medium, the formation of 2-OHE1 2-Me decreased as the anion:2-OHE1 molar ratio was increased. However, the reverse effect was observed when using a tris buffer medium and further investigation showed that phosphate and sulphate also enhanced COMT activity in a tris buffer medium. Boric acid affinity medium, used as a substitute for borate salt, also showed a negative relationship with enzyme activity in a phosphate buffer medium, and inhibition of methylation was more marked than with the free anion. Erythrocytes contain appreciable amounts of COMT, which is mostly responsible for the rapid O-methylation of catechol estrogens in blood. The methylation of a simple catechol compound, 1,2-dihydroxybenzene (pyrocatechol) was therefore studied using rat red blood cell lysates. Methylation was inhibited in a concentration-related manner by borate, as found in the studies of 2-OHE1. It is possible that high dietary intakes of boron or molybdenum could regulate the rate of catabolism, or even the metabolic fate of the major estrogens.

Animals

Estrogen 2- and 4-hydroxylase activity, catechol estrogen formation, and implications for estrogen carcinogenesis in the hamster kidney.

Estrogen 2- and 4-hydroxylase (ESH), a microsomal enzyme which mediates the formation of catechol estrogens, has been studied in the kidneys of castrated male Syrian hamsters, a species uniquely susceptible to induction of renal carcinomas by both steroidal and stilbene estrogens. The apparent Km for estrone was 17.0 microM, and Vmax was 0.5 pmol per mg protein per min for ESH in renal microsomes derived from castrated hamsters. Different steroidal estrogen substrates exhibited decreasing catechol formation with hamster kidney microsomal preparations in the following order: estrone greater than d-equilenin greater than 17 beta-estradiol greater than equilin greater than ethynyl estradiol greater than estriol. Except for beta-dienestrol, the stilbene estrogens revealed levels of catechol formation that were similar to 17 beta-estradiol. These findings provide a rationale for the weak carcinogenic activity of ethynyl estradiol, estriol, and beta-dienestrol, since they were poor substrates for hamster renal ESH and for the relatively potent carcinogenic activity of the distal metabolite of diethylstilbestrol, indenestrol B/A, which exhibited substantial levels of o-hydroxylation when used as a substrate. Interestingly, ESH activity was significantly greater in the hamster kidney compared to corresponding rat tissue, and catechol estrogen formation was found to be 2.5- to 19-fold higher in the hamster kidney compared to the rat, using various steroidal and stilbene estrogen substrates. Moreover, the finding that a 3.5- to nearly 6-fold decrease, compared to untreated levels, in catechol formation in kidneys but not in livers of alpha-naphthoflavone-exposed hamsters, depending on the steroidal or stilbene estrogen substrate used, is consistent with the belief that the catechol estrogen pathway is pertinent to events leading to estrogen-induced renal tumorigenesis in the hamster.

Animals

Effects of chronic treatment with thyroxine and estradiol on estrogen concentration in serum and on hepatic microsomal catechol estrogen formation in female rats.

The effects of chronic treatment with thyroxine (T4) and estradiol on hepatic microsomal metabolism of estrogens to catechol products were studied and the extent to which activity in vitro correlated with serum estradiol concentrations in vivo was assessed. Female rats were treated with either estradiol benzoate (EB; 56 micrograms/kg/day from silastic implants), T4 (50 micrograms/kg/day, s.c.) or combined EB + T4 for 35 days. Animals treated with EB + T4, but not T4 alone, showed a significant increase above controls both in the concentration of triiodothyronine in serum and food consumption. Serum concentrations of endogenous estradiol in untreated control and T4-treated animals were similar. Although both EB-treated groups received comparable doses of steroid from silastic implants, the concentration of estradiol in serum was 30% lower in EB + T4-treated animals than in animals treated with EB alone. Formation of catechol estrogen metabolites by hepatic microsomes was not significantly altered by EB and T4 administered separately, but enzyme activity was increased significantly with combined hormonal therapy. In contrast, microsomal hydroxylation of testosterone was not increased by treatment with EB + T4, data which suggest that total steroid hydroxylase activity was not enhanced by combined hormonal administration. Correlation analysis of microsomal catechol estrogen formation in vitro with serum concentrations of estradiol in vivo indicated related to the concentration of estrogen in serum only after coadministration of a low dose of T4 with EB.

Animals

Carcinogenicity of catechol estrogens in Syrian hamsters.

Estradiol and other estrogens induce renal carcinoma in male Syrian hamsters. The mechanism of carcinogenesis still remains unclear. Activation of estrogens to catechol metabolites has in the past been postulated to play a role in estrogen-induced carcinogenesis. Therefore, the carcinogenic activity of catechol estrogens was investigated. After 175 days of treatment, 4-hydroxyestradiol was found to be as carcinogenic as estradiol in male Syrian hamsters (4/5 and 4/5 animals with kidney tumors, respectively). Animals treated with 2-hydroxyestradiol (0/5) or 2-methoxyestradiol (0/6) did not develop renal carcinoma. The catechol estrogens failed to be mutagenic in the Ames test (reversions of his- S. typhimurium to histidine prototrophy in the TA 100 strain). The lack of carcinogenic activity of 2-hydroxyestradiol was not due to a failure to stimulate estrogen-dependent tumor growth. Growth of H-301 cells, an estrogen-dependent hamster kidney tumor cell line, was supported in vivo by estrogens in the following order: estradiol greater than 4-hydroxyestradiol greater than 2-hydroxyestradiol. Stimulation of tumor growth by 2-methoxyestradiol was not detected. It was concluded that the carcinogenic activity of 4-hydroxyestradiol was consistent with a role of catechol metabolites in estrogen-induced carcinogenesis. However, the intrinsic carcinogenic or hormonal activity of 2-hydroxyestradiol probably can not be assessed accurately in vivo because of its rapid methylation and metabolic clearance.

Animals

Comparison of assays for catechol estrogen synthase activity: product isolation vs radioenzymatic catechol-O-methyltransferase-coupled procedures.

Reported values for the activity of enzymes mediating catechol estrogen formation by hamster kidney and liver, measured by catechol-O-methyltransferase-coupled radioenzymatic assay, have been uniformly low and there have been marked discrepancies in values reported from different laboratories. Therefore, we examined the validity of the radioenzymatic assay used in these studies. NADPH-dependent estrogen 2- and 4-hydroxylase activity of hamster liver microsomes measured by radioenzymatic assay was comparable to that reported in the literature but at least one order of magnitude lower than that obtained with a direct product isolation assay. Several features of the radioenzymatic assay were identified which, together, contribute to the underestimation of enzyme activity. They include, incomplete protection from oxidative degradation of both the catechol estrogens generated and of the catechol-O-methyltransferase and assay conditions which are suboptimal for O-methylation of the catechol estrogens. We conclude that results obtained using the catechol-O-methyltransferase-based radioenzymatic assay can only be considered valid if a consistent stoichiometric relationship can be demonstrated between the amounts of catechol estrogens and their O-methylated products.

Animals