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Lack of suppression of increased circulating prolactin by 2-hydroxyestrone.

To study the effect of 2-hydroxyestrone (2-OHE1) on circulating prolactin (PRL) in a hyperprolactinaemic state, seven anovulatory women with hyperprolactinaemia were given a 2-OHE1 infusion at a rate of 80 microgram/h for 3 h following a control infusion. Plasma samples for PRL determination were obtained at 30-minute intervals for 6h. No changes in PRL levels were observed during the 2-OHE1 infusion as compared with the control period. It was concluded under conditions of the present experiment that 2-OHE1 does not suppress circulating PRL in hyperprolactinaemic anovulatory women.

Adult↗

2-hydroxyestrone: the 'good' estrogen.

The issue of the role of 2-hydroxyestrone (2-OHE1) in breast cancer has been the subject of considerable controversy as to whether it is carcinogenic or anticarcinogenic. The expanding data base outlined below is most consistent with the conclusion that 2-OHE1 is anticarcinogenic. In every experimental model in which 2-hydroxylation was increased, protection against tumors was achieved. Correspondingly, when 2-hydroxylation was decreased, an increase in cancer risk was observed. Even more dramatically, in the case of laryngeal papillomas induction of 2-hydroxylation with indole-3-carbinol (I3C) has resulted in inhibition of tumor growth during the time that the patients continue to take 13C or vegetables rich in this compound.

Anticarcinogenic Agents↗

Structure of lysine adducts with 16 alpha-hydroxyestrone and cortisol.

Recent studies indicate that steroids containing a vicinal hydroxyketone moiety can react with proteins both in vitro and in vivo to form covalent addition products. This reaction is non-enzymatic and occurs via the Heyns rearrangement of an initial Schiff base adduct between the steroid carbonyl and the epsilon-amino group of lysine residues. The present study describes the synthesis, isolation, and structural analysis of model adducts prepared by the incubation of 16 alpha-hydroxyesterone or cortisol with NaCNBH3 and lysine derivatives blocked in the N alpha-position. The product formed from the reaction of 16 alpha-hydroxyesterone and lysine was found to have the structure predicted for a reduced Schiff base between these molecules. A stable, cortisol-lysine adduct was similarly synthesized and isolated. This conjugate was found not to be the expected reduced Schiff base but rather a C-20 cyano amine. This compound most likely was formed by the nucleophilic addition of cyanide during the course of the incubation. The observation that the cortisol-lysine Schiff base is not reducible with NaCNBH3 accounts for the observation that the incorporation rate of glucocorticoids into proteins is not increased by the presence of NaCNBH3.

Estrone↗

Temporal actions of 16 alpha-hydroxyestrone in the rat: comparisons of lordosis dynamics with other estrogen metabolites and between sexes.

16 alpha-Hydroxyesterone (16OHE1), a metabolite of estradiol (E2) and precursor of estriol (E3), binds to the estrogen receptor (ER) with low affinity (3% of E2), but is estrogenic in both in vitro and in vivo systems. This metabolite is able to bind in a non-dissociable manner to the ER. We examined these properties in vivo by assessing the temporal dynamics of estrogen metabolite action in the rat brain, using lordosis score (LS) to manual stimulation as a serial bioassay of estrogen effect. Male and female castrate Fisher rats were implanted with osmotic minipumps containing either vehicle, E2, 16OHE1, or E3. 16OHE1-induced LS was delayed in onset in both sexes relative to E2 and E3. Male LS reached a similar plateau for all metabolites, whereas female LS reached an initial LS plateau similar in amplitude to the male plateau. Over the next several days, female LS increased to reach a secondary plateau of higher amplitude, which persisted until pump removal. Upon pump removal, E2- and E3-stimulated LS fell to baseline quickly in both sexes, whereas 16OHE1-stimulated LS in males demonstrated a prolongation of maximal LS for 6 days following pump removal. These results suggest that 16OHE1 is estrogenic in the brains of both sexes. The delay of onset of LS with 16OHE1 is consistent with its poor ER affinity. Females were able to augment LS with prolonged exposure to all metabolites, while males could not. The ability of 16OHE1 to maintain maximal LS in the male long after its withdrawal is consistent with its ability to bind non-dissociably to the ER and promote prolonged estrogenic activation. However, females do not exhibit this response, suggesting a sex specificity in the dynamics of ligand-receptor action in the rat brain.

Animals↗

The effects of steroidal estrogens in ACI rat mammary carcinogenesis: 17beta-estradiol, 2-hydroxyestradiol, 4-hydroxyestradiol, 16alpha-hydroxyestradiol, and 4-hydroxyestrone.

Several investigators have suggested that certain hydroxylated metabolites of 17beta-estradiol (E2) are the proximate carcinogens that induce mammary carcinomas in estrogen-sensitive rodent models. The studies reported here were designed to examine the carcinogenic potential of different levels of E2 and the effects of genotoxic metabolites of E2 in an in vivo model sensitive to E2-induced mammary cancer. The potential induction of mammary tumors was determined in female ACI rats subcutaneously implanted with cholesterol pellets containing E2 (1, 2, or 3 mg), or 2-hydroxyestradiol (2-OH E2), 4-hydroxyestradiol (4-OH E2), 16alpha-hydroxyestradiol (16alpha-OH E2), or 4-hydoxyestrone (4-OH E1) (equimolar to 2 mg E2). Treatment with 1, 2, or 3 mg E2 resulted in the first appearance of a mammary tumor between 12 and 17 weeks, and a 50% incidence of mammary tumors was observed at 36, 19, and 18 weeks respectively. The final cumulative mammary tumor incidence in rats treated with 1, 2, or 3 mg E2 for 36 weeks was 50%, 73%, and 100% respectively. Treatment of rats with pellets containing 2-OH E2, 4-OH E2, 16alpha-OH E2, or 4-OH E1 did not induce any detectable mammary tumors. The serum levels of E2 in rats treated with a 1 or 3 mg E2 pellet for 12 weeks was increased 2- to 6-fold above control values (approximately 30 pg/ml). Treatment of rats with E2 enhanced the hepatic microsomal metabolism of E2 to E1, but did not influence the 2- or 4-hydroxylation of E2). In summary, we observed a dose-dependent induction of mammary tumors in female ACI rats treated continuously with E2; however, under these conditions 2-OH E2, 4-OH E2, 16alpha-OH E2, and 4-OH E1 were inactive in inducing mammary tumors.

Animals↗