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Regulation of hepatic apolipoprotein synthesis in the 17 alpha-ethinyl estradiol-treated rat.

Regulatory mechanisms of hepatic apolipoprotein synthesis were studied in groups of male Sprague-Dawley rats made severely hypolipidemic by treatment with pharmacological doses of 17 alpha-ethinyl estradiol. Treatment resulted in a marked reduction of plasma cholesterol and apolipoproteins B, A-I, and A-IV. Hepatic apoA-I mRNA and apoA-I synthesis were increased in the ethinyl estradiol-treated animals. Hepatic apoA-IV protein synthesis rates were unaltered; however, a reduction of the apoA-IV mRNA level was observed. Diet-control studies suggested the effects of 17 alpha-ethinyl estradiol on apoA-I, unlike those on apoA-IV, appeared to be related to the steroid and not to reduced caloric intake. Livers of control and ethinyl estradiol-treated rats synthesized both apoBH and apoBL. Total hepatic apoB (apoBL plus apoBH) synthesis and apoB mRNA levels in the ethinyl estradiol-treated rats were similar to ad libitum fed or diet-controls. In ad libitum fed and diet-control rats, 21% and 32%, respectively, of newly synthesized hepatic apoB was apoBH. In contrast, 47% of the newly synthesized apoB in the ethinyl estradiol-treated animal was apoBH. Nucleotide sequence analysis of hepatic apoB mRNA confirmed a marked decrease in the proportion of the apoBL mRNA in ethinyl estradiol-treated animals. After cessation of 17 alpha-ethinyl estradiol treatment, the hepatic apolipoprotein A-I synthesis rate, apolipoprotein A-I and A-IV mRNA levels, and the apoBH and apoBL synthesis rates, as well as plasma apolipoprotein and cholesterol levels, returned to normal. A major finding of the present study is that pharmacological doses of ethinyl estradiol do not affect total hepatic apoB synthesis, but increase the relative amount of apoBH synthesized.

Animals↗

The effect of 17-alpha-estradiol, a possible endogenous opiate antagonist, on D-ala2-met5-enkephalinamide-induced blood pressure responses in conscious, unrestrained rats.

D-ala2-met5-enkephalinamide (DAME) produced a dose-related increase in the mean arterial blood pressure of conscious, unrestrained rats. Intravenous injection of DAME (0.5, 1, 2, and 4 mg/kg) resulted in mean systemic arterial blood pressures of 138 +/- 2, 146 +/- 5, 141 +/- 4, 156 +/- 5 mmHg, respectively. 17-alpha-estradiol and its derivatives are known to be inactive in target tissues responsive to estrogenic hormones such as 17-beta-estradiol. However, LaBella et al. (1978) found after testing a large number of steroid hormones and their metabolites that only 17-alpha-estradiol significantly inhibited binding of 3H-naloxone, an opiate antagonist, in rat-brain homogenates. The present study was designed to determine whether 17-alpha-estradiol could antagonize the cardiovascular responses elicited by intravenous injections of DAME. Intravenous infusion of 17-alpha-estradiol (1.5 mg/kg) every 2 hours for 24 hours (total infusion time was 2 minutes for each infusion) did not change the mean systemic arterial blood pressure (94 +/- 5 mmHg) compared to the blood pressure prior to infusion of 17-alpha-estradiol (99 +/- 7 mmHg). Intravenous infusion of 17-alpha-estradiol (1.5 mg/kg) 10 minutes prior to DAME (1 mg/kg, i.v.) resulted in a blood pressure of 106 +/- 9 mmHg, which is significantly less than the blood pressure of 146 +/- 5 mmHg seen with DAME (1 mg/kg, i.v.) alone. Intravenous injection of DAME (1 mg/kg) 8 hours after the last infusion of 17-alpha-estradiol produced an increase in mean systemic arterial blood pressure of 136 +/- 8 mmHg. These results indicate that 17-alpha-estradiol may function as an opiate antagonist.

Animals↗

Effects of estradiol on estrogen receptor, progesterone receptor, and tyrosinase in hamster melanoma transplanted into athymic mice.

Nuclear estrogen binding was characterized in HM-1, a malignant hamster melanoma cell line transplanted into male and female athymic mice following acute, subchronic, and chronic injection of estradiol. Nuclear binding was saturable, of high affinity (10(10) M-1) and readily soluble in low salt buffer. Saturation analyses revealed that [3H]estradiol in excess of 5.0 nM apparently bound to a second class of lower affinity (10(9) M-1), higher capacity cytosol sites. Enzyme-linked immunoassay with a specific monoclonal antibody (H222 Sp gamma) directed against the human estrogen receptor protein was in excellent agreement (r = 0.93) with values obtained using hydroxyapatite to separate bound from free ligand. Nuclear estrogen receptor content in HM-1 cells was increased maximally 1 h after acute s.c. injection of a low dose (0.1 microgram) of estradiol. The increase in nuclear receptor content was accompanied by an apparent rapid reduction in cytosol binding. Subchronic (3 days) and chronic exposure (35 days) to estradiol also produced a significant, dose-related increase in tumor nuclear estrogen receptor content. Cytosol binding for progestin was low (less than or equal to 2 fmol) to absent in HM-1 xenografts not exposed to estradiol. Subchronic and chronic exposure to estradiol induced a dose-related, specific, high affinity (10(9) M-1) cytosol binding protein for progestin(s) in HM-1 xenografts carried in male and female athymic mice. In contrast, progestin binding to nuclear receptor was not increased in estrogen-primed animals, nor did acute injection of progesterone (100 micrograms s.c.) increase the amount of saturable, high affinity (10(9) M-1) nuclear progestin receptor in control or estradiol-primed athymic mice. In contrast to the induction of progestin binding, tyrosinase activity was not altered by a similar exposure to estradiol when assayed at a saturating concentration of tyrosine. These observations suggest that the estrogen receptor in HM-1 cells may be functional but that pigmentary changes observed in mammals following chronic exposure to estradiol may not be mediated by a direct effect on the rate limiting enzyme of melanin synthesis.

Animals↗

The use of the biotinyl estradiol-avidin system for the purification of "nontransformed" estrogen receptor by biohormonal affinity chromatography.

Several biotinyl estradiol derivatives have been prepared by coupling estradiol 7 alpha-carboxylic acid to biotin via different linear linkers. All these compounds exhibit a high affinity for the estrogen receptor as determined by competitive binding assays against [3H]estradiol. These compounds also displaced the dye 4-hydroxyazobenzene-2'-carboxylic acid from the biotin-binding sites of avidin free or immobilized on agarose. It was demonstrated that only the derivatives bearing a long spacer chain (greater than 42 A greater than) between estradiol and biotin were able to bind receptor and avidin simultaneously, suggesting some steric hindrance. The biotin-avidin system has been investigated for the purification of the cytosoluble "nontransformed" estrogen receptor stabilized by sodium molybdate. The method relies on: 1) high biohormonal affinity of receptor for biotinyl estradiol derivative; 2) the specific selection by avidin-agarose column of biotinyl estradiol-receptor complexes; and 3) the biohormonal elution step by an excess of radioactive estradiol. Starting from unfractionated cytosol containing molybdate-stabilized nontransformed 8S estrogen receptor with estradiol 7 alpha-(CH2)10-CO-NH-(CH2)2-O-(CH2)2-O-(CH2)2-NH-CO-(CH2)3-NH-biotin, preliminary experiments using avidin-agarose chromatography and then a specific elution step by exchange with free [3H]estradiol, allowed a 500-1,500-fold purification. Further purification of estrogen receptor was obtained by ion exchange chromatography through a DEAE-Sephacel column and led to a congruent to 20% pure protein, assuming one binding site/65,000-Da unit. The hydrodynamic parameters of the purified receptor were essentially identical to those of molybdate-stabilized nontransformed receptor present in crude cytosol. The advantages of this double biotinyl steroid derivative-avidin chromatographic technique over more conventional affinity procedures are discussed and make it applicable to the purification of minute amounts of steroid receptors in a wide variety of tissues.

Animals↗

[Action of estradiol and progesterone on alkaline and acid phosphatase activity in the sheep uterus].

The effect was studied of 20 and 60 micrograms/kg body mass of estradiol and of the combination of 60 micrograms/kg estradiol and 1 mg/kg progesterone on the character and changes in the activity of alkaline and acid phosphatase in the endo- and myometrium of the uterus and the peripheral blood in sheep. The hormones were applied singly, i/m to 18 entire and castrated year-old female sheep. The enzyme in entire females treated with 60 micrograms/kg estradiol lowered its activity, while the enzyme in those treated with the combination raised it. The treatment of castrated females with estradiol at the rate of 60 micrograms/kg raised the activity of both alkaline and acid phosphatase in the endometrium. The activity of these enzymes in the myometrium of intact animals at estradiol and combined treatment dropped. It did not show a dependable rise in the myomentrium of castrated females when treated with both estradiol and estradiol and progesterone. Following treatment with 20 and 60 micrograms/kg body mass of estradiol with castrated, and with 60 micrograms/kg of estradiol with intacts the activity of both enzymes in the blood serum rose.

Acid Phosphatase↗

[Glucose oxidation and insulin receptors in isolated adipocytes from rats treated with progesterone and estradiol].

To find the cause of insulin resistance in pregnancy, the effects of estradiol (0.002 mg/day) treatment in male (n = 6) and ovariectomized (n = 8) rats, progesterone (0.05 mg/day) treatment in male (n = 9) and female (n = 6) and ovariectomized (n = 8) rats and combined estradiol and progesterone treatment in male (n = 7) and ovariectomized (n = 8) rats on (1-14C) glucose oxidation and insulin receptors in isolated fat cells were examined. All groups were treated for 5 days. Control rats were treated with the solvents. The results were as follows: 1) Decreased responsiveness to insulin on (1-14C) glucose oxidation was observed in adipocytes from male rats treated with estradiol and estradiol + progesterone, female rats treated with progesterone and ovariectomized rats treated with estradiol + progesterone. 2) There was no significant difference among the insulin bindings to adipocytes from rats treated with estradiol, progesterone and estradiol + progesterone. These results suggest that estradiol itself is potent in inducing insulin resistance in male rats, but in female rats progesterone primed with estradiol is necessary to induce insulin resistance, and that they may act at some post-receptor sites. These sex hormones may play an important role in inducing the insulin resistance in pregnancy.

Adipose Tissue↗

Estriol and estrone interaction with the estrogen receptor. II. Estriol and estrone-induced inhibition of the cooperative binding of [3H]estradiol to the estrogen receptor.

Kinetic analysis of the estrogen receptor's cooperative equilibrium [3H]estradiol binding (Sasson, S., and Notides, A. C., (1982) J. Biol. Chem. 257, 11540-11545) provides a sensitive method for probing the binding of partial agonists to the estrogen receptor. We studied the effects of estriol and estrone on the positive cooperativity of [3H]estradiol binding to the partially purified, calf uterine estrogen receptor. The receptor was titrated with variable concentrations of [3H]estradiol in combination with estriol or estrone, while maintaining a constant molar ratio of the estriol or estrone to the [3H]estradiol. With either a 4-fold molar excess of estriol or a 25-fold molar excess of estrone above the [3H]estradiol concentrations, the receptor's positive cooperative [3H]estradiol binding was inhibited. The Scatchard plot showed a transition from a convex to a linear curve and a decrease in the Hill coefficient value from 1.61 +/- 0.02 (n = 7) in the absence of estriol or estrone to 1.04 +/- 0.04 (n = 4) in the presence of estriol and 0.99 +/- 0.03 (n = 4) in the presence of estrone. The inhibition of the positive cooperativity of [3H]estradiol binding by estriol or estrone was shown not to be due to isotope dilution of the specifically bound [3H]estradiol by the unlabeled estriol or estrone. These kinetic analyses demonstrate that the positively cooperative equilibrium binding of [3H]estradiol by the receptor, which is characteristic of the receptor's activation process, is eliminated by estriol and estrone and consistent with their partial agonist-antagonist activities observed in vivo.

Animals↗

Estradiol modulates thyroid hormone regulation of the human glycoprotein hormone alpha subunit gene.

We have examined mechanisms of regulation of the human glycoprotein hormone alpha subunit gene by thyroid hormone (T3) and estradiol. Pituitary-derived GH3 cells were transiently transfected with chimeric constructs comprising between 1,500 and 98 base pairs of human alpha subunit gene 5'-flanking sequence fused to the bacterial gene encoding chloramphenicol acetyltransferase (h alpha CAT) and treated with T3 and estradiol, alone and in combination. In pituitary cells, 98 base pairs of alpha gene 5'-flanking sequence were sufficient to mediate both inhibition of alpha gene promoter activity by T3 and stimulation by estradiol; inhibition of the alpha promoter by T3 was antagonized by estradiol. Mutation of nucleotides essential for T3 receptor binding to the alpha gene thyroid hormone response element abolished the response of h alpha CAT expression to estradiol as well as T3. In contrast to pituitary GH3 cells, estradiol treatment alone had no effect on expression of either h alpha CAT or the endogenous alpha gene in JEG-3 choriocarcinoma cells cotransfected with a human thyroid hormone receptor expression vector, but estradiol antagonized suppression of both endogenous and transfected alpha promoter activity by T3. Gel mobility shift assays demonstrated specific binding of in vitro synthesized human estrogen receptor (ER) to the alpha gene thyroid hormone response element. These findings suggest that estradiol modulates expression of the human alpha subunit gene in pituitary and choriocarcinoma cells by direct binding of ER to the alpha gene promoter, and that interaction of ER with the alpha gene negative TRE accounts for the antagonistic effects of estradiol and T3.

Base Sequence↗

Specific inhibition of the contraction of the rat aorta by estradiol 17 beta.

Short-term exposure to estradiol 17 beta is known to inhibit the contraction of vascular smooth muscle preparations that is thought to be mediated by a [Ca++]-dependent mechanism. The purpose of this investigation was to examine the effect of prolonged exposure of vascular preparations to estradiol 17 beta to provide significant time for protein synthesis. We find that treatment of rat aortic rings with estradiol 17 beta (0.37-37 microM) for 15 to 180 min and subsequent removal of the estrogen by washing, attenuated the vasoconstrictor responses to phenylephrine and potassium chloride in a time-dependent manner. The maximum inhibitory effect took 120 min to develop. The inhibitory effect was endothelium independent and not blocked by the cyclooxygenase inhibitor, indomethacin, or by the endothelium derived relaxing factor inhibitor, Nw-nitro-L-arginine methyl ester. This effect was highly stereo-specific in that the 17 alpha isomer was significantly less potent than the 17 beta isomer of estradiol. Further, compared to other steroids, estradiol 17 beta was the most potent. The inhibitory effect of estradiol was blocked completely by pretreatment with the protein synthesis inhibitors, cycloheximide and puromycin, but not by actinomycin D. Electron microscopy showed an increase in ribosomal expression at the rough endoplasmic reticulum after incubation of the rat aorta with estradiol for 120 min. This indicates increased protein synthesis after exposure to estradiol 17 beta. We speculate that the time dependent inhibitory effect of estradiol 17 beta on vascular smooth muscle is related to protein synthesis at the translational level.

Animals↗

Regulation of cyclin B1 by estradiol and polyamines in MCF-7 breast cancer cells.

Recent studies have identified a family of proteins called cyclins that control cell cycle. Among these proteins, cyclin B synthesis and degradation are necessary and sufficient to cause a Xenopus egg cell-free system to oscillate between S and M. To understand the link between hormonal regulation of cell growth and the expression of B-type cyclins, we studied the effect of estradiol on cyclin B1 mRNA in a hormone-responsive breast cancer cell line, MCF-7. Cells were synchronized at G1 by isoleucine starvation, and estradiol was added along with the removal of cell cycle block. Flow cytometric analysis showed 81 +/- 7% cells in G1 after 30 h of isoleucine starvation. Significant population of cells progressed to S by 16 h after the addition of estradiol, whereas a comparable transition occurred in control cells by 36 h only. In cells progressing from G1-->S-->G2-->M under the influence of estradiol, there was a significant increase in cyclin B1 mRNA at 30 and 36 h, consistent with the accumulation of this cyclin in G2/M. In addition, we found that cyclin B1 mRNA degradation occurred early in G1, and this process was accelerated by estradiol. At 2 h after removal of the isoleucine block, there was a 40% reduction in the level of cyclin B1 mRNA in estradiol-treated cells compared to untreated controls. Cyclin B1 protein degradation followed a similar pattern, as determined by Western blots using a monoclonal anti-cyclin B1 antibody. Since previous studies suggested a polyamine pathway in the mechanism of action of estradiol, we questioned whether polyamines are important in controlling the level of cyclin B1 mRNA. Treatment of synchronized cells with the polyamine biosynthetic inhibitor, difluoromethylornithine attenuated cyclin B1 mRNA degradation in the presence of estradiol. This process was mostly reversed by exogenous putrescine and spermidine but not by putrescine homologues. Collectively, these data suggest that the mechanism of cell growth regulation by estradiol in MCF-7 cells includes alterations in cyclin B1 mRNA. Our data also indicate molecular pathways for the action of polyamines in estrogenic control of cell cycle.

Biogenic Polyamines↗

DDT mimicks estradiol stimulation of breast cancer cells to enter the cell cycle.

Estrogens play a critical role in the etiology of found breast cancer. Estradiol promotes the growth of breast cancer cells in vivo and in vitro. Exogenous estrogens in both the environment and in the human diet increase the growth of breast cancer cells in vitro. A role for xenoestrogens in breast cancer etiology has been proposed but remains controversial. We examined the effects of the xenoestrogenic pesticide 1,1,1-trichloro-2,2-bis(chlorophenyl)ethane (DDT) on estrogen-receptor (ER)-positive MCF-7 and T-47D human breast cancer cells as well as on ER-negative HS 578Bst breast cancer cells and rat liver cells. Estradiol and DDT were found to increase the growth of MCF-7 cells in the presence of insulin. The activity of cyclin-dependent kinase (Cdk)2 increased in growth-arrested T-47D and MCF-7 cells treated with beta-estradiol or DDT. The steroidal antiestrogen ICI 182,780 prevented both growth and Cdk2 activation induced by estradiol or DDT. Increased phosphorylation of Cdk2 and the retinoblastoma protein (pRb1O5) was observed in ER-positive cells treated with DDT or estradiol. Cdk2 activity was not affected by DDT or estradiol in ER-negative HS 578Bst breast cancer cells or in rat liver epithelial cells. Cyclin D1 protein synthesis was increased by DDT and estradiol in MCF-7 cells. DDT and estradiol-induced ER-dependent transcriptional activation of estrogen response elements (EREs) in stably transfected MVLN cells, and ERE activation by low doses of DDT was increased by insulin. These findings suggest that DDT can stimulate breast cancer cells to enter into the cell cycle by directly affecting key regulatory elements. The relative potency of DDT in inducing cell-cycle progression appears to be only 100-300 times less than that of estradiol when measured in the presence of insulin. Therefore, the cancer risks associated with DDT exposure may be greater than first thought, especially when additional mitogenic stimuli are present.

Animals↗

Effect of dietary 2(3)-tert-butyl-4-hydroxyanisole on the metabolism and action of estradiol and estrone in female CD-1 mice.

Administration of 0.75% 2(3)-tert-butyl-4-hydroxyanisole (BHA) in AIN-76A diet to female CD-1 mice for 3 weeks increased liver microsomal glucuronidation of estradiol, estrone, 4-aminophenol, and 4-nitrophenol by 103, 187, 162, and 92%, respectively (at pH 7.4). The overall rate of NADPH-dependent metabolism of estradiol and estrone by liver microsomes of BHA-treated animals as determined by substrate disappearance was increased by 20-40% over that by liver microsomes from control animals. The rate of 2-hydroxylation of estradiol and estrone (the major metabolic pathway) was increased by 24-38%, the rate of formation of 6alpha-hydroxyestradiol plus 6beta-hydroxyestradiol was increased by 90-115%, and the rate of 6beta-hydroxyestrone formation (a minor metabolite formed in liver microsomes from control mice) was increased by approximately 370% over controls. In contrast, BHA administration had little or no effect on the liver microsomal formation of 4- and 16alpha-hydroxylated estradiol and estrone metabolites. Measurable levels of estradiol and estrone were observed in the serum and uterus of ovariectomized CD-1 mice at 30 min after a single i.p. injection of 100 or 300 ng of estradiol or estrone, and these levels were decreased by 30-60% in animals fed a 0.75% BHA diet for 18 days prior to the injection of estrogen. Feeding a 0.75% BHA-supplemented diet to ovariectomized CD-1 mice for 18 days inhibited the uterotropic effect of estradiol or estrone (45 or 75 ng/mouse, i.p. once daily for 3 days) as compared to the response of animals fed the control diet. BHA administration also inhibited estradiol- or estrone-stimulated [3H]thymidine incorporation into uterine DNA. In conclusion, feeding a 0.75% BHA-supplemented diet to female CD-1 mice for 2-3 weeks increased the activities of liver microsomal enzymes that catalyze uridine 5'-diphosphoglucuronic acid-dependent glucuronidation and NADPH-dependent oxidation of estradiol and estrone, enhanced the in vivo metabolism of these estrogens, and inhibited their uterotropic action.

Animals↗

Pharmacokinetics of orally administered estradiol valerate. Results of a single-dose cross-over bioequivalence study in postmenopausal women.

A randomized, single-dose cross-over study in 32 postmenopausal women was performed to demonstrate bioequivalence of two estradiol valerate containing formulations (first sequence of Klimonorm as test preparation). The serum levels of estradiol, free and conjugated estrone were measured until 48 h after an oral dosage of 4 mg estradiol valerate (CAS 979-32-8). The mean AUC(0-48) of estradiol was calculated as 1006.6 +/- 479.4 h x pg x ml-1 (Test) and 1015.2 +/- 555.2 h x pg x ml-1 (Reference). The corresponding (AUC(0-48) of the active metabolite, free estrone, exceeded that of estradiol at 3578.3 h x pg x ml-1 (Test) and 3485.1 h x pg x ml-1 (Reference). Much higher was the AUC(0-48) for conjugated estrone at 132.4 h x ng x ml-1 (Test) and 133.6 h x ng x ml-1 (Reference). Mean estradiol Cmax values of 39.8 +/- 17.7 pg/ml (Test) and 42.9 +/- 21.0 pg/ml (Reference) were attained 8.2 +/- 4.5 h (Test) and 10.0 +/- 5.9 h (Reference) after the administration of 4 mg estradiol valerate. Maximal free estrone concentrations of 163 pg/ml (Test) and 174.3 pg/ml (Reference) were reached after 7.2 h (Test) and 7.5 h (Reference). Maximal conjugated estrone concentrations of 15.5 ng/ml (Test) and 16.2 ng/ml (Reference) were reached after 2.4 h (Test) and 2.0 h (Reference). The terminal elimination half-life of estradiol was calculated at 16.9 +/- 6.0 h (Test) and 15.0 +/- 4.8 h (Reference), that of free estrone at 16.3 h (Test) and 13.5 h (Reference), that of conjugated estrone at 11.8 h (Test) and 10.6 h (Reference). After logarithmic transformation, the 90% confidence intervals of the AUC(0-48) and Cmax ratios for estradiol and also for the metabolites (free and conjugated estrone) were within the acceptance ranges for bioequivalence. Therefore the test preparation and the reference preparation are bioequivalent.

Administration, Oral↗

17 beta-estradiol levels in blood and cerebrospinal fluid after ocular and nasal administration in women and female rhesus monkeys (Macaca mulatta).

17 beta-estradiol was applied ocularly to menstruating and postmenopausal women. The absorption by blood was measured. A rapid increase of both estradiol and estrone was seen with higher plasma levels in the menstruating group, possibly due to a better conjunctival circulation. Twenty-one rhesus monkeys were given estradiol suspension or solution ocularly or nasally. The absorption by blood and cerebrospinal fluid was measured and compared to intravenous injection of 0.5 mg estradiol. Estradiol increased in plasma after 1'. Maxima were reached at 15'. Estradiol solution gave higher plasma levels than estradiol suspension. At 5' they amounted to the levels found after i.v. injection. The estradiol levels in cerebrospinal fluid never exceeded the corresponding plasma levels and were generally low. The increase in cerebrospinal fluid was thought to be secondary to the raised plasma levels.

Administration, Intranasal↗

Relationship between serum luteinizing hormone and estradiol in prepubertal boars.

Effects of estradiol on serum luteinizing hormone (LH) were studied in prepubertal boars. In Exp. 1, 15-wk-old boars were given (iv) 50 mug estradiol, 1 mg testosterone or 1.5 ml ethanol. Estradiol (P<0.05) decreased LH over a 2.5-hr period, but testosterone did not. In Exp. 2, an estradiol implant reduced LH sample variance (P<0.01) while LH (547 +/- 96 vs 655 +/- 43 pg/ml) and estradiol (14.2 +/- 3.3 vs 18.4 +/- 1.0 pg/ml; control vs implant) were unchanged in 12-wk-old boars. Pulsatile LH releases (4.3 +/- 1.1 vs 3.0 +/- 0.4 pulses/pig/8 hr; control vs treated) and pulse amplitude (272 +/- 34 vs 305 +/- 40 pg/ml) were not affected. The implant tended to decrease serum testosterone (4.86 +/- 0.75 vs 7.66 +/- 1.51 ng/ml; P<0.10). In Exp. 3, LH was higher after zero implants than after four implants (279 +/- 7 vs 227 +/- 9 pg/ml; P<0.01), and LH after two implants was also higher than after four implants (263 +/- 7 pg/ml; P<0.01) in 14-wk-old boars in a Latin square design. Peak LH after 40 mug gonadotropin releasing hormone (GnRH) was less after two and four implants (1,100 +/- 126 and 960 +/- 167 pg/ml, respectively; P<0.01) than after zero implants (1,742 +/- 126 pg/ml). Slope of the first 20 min of LH response to GnRH was greater after zero implants (45.3 pg/min; P<0.05) than after either two or four implants (20.6 and 16.9 pg/min, respectively). Implant treatment decreased serum testosterone (P<0.025) but increased estradiol (P<0.10). Small changes in serum estradiol resulted in changes in LH. These changes in sample variance and mean LH were recognized by boars as different from normal because serum testosterone decreased. Changes in LH may result from estradiol's negative effect on pituitary responsiveness to endogenous GnRH because response to exogenous GnRH was depressed by estradiol.

Journal Article↗

Metabolic clearance rates and interconversions of estrone and 17beta-estradiol in normal males and females.

The continuous infusion of (3)H-6,7-estrone and (3)H-6,7-estradiol has been used to study the metabolic clearance rate (MCR), the interconversions, and the red cell uptake of these steroids in normal males and females. The whole blood MCR of estrone is 1,990 +/- 120 liters per day/m(2) (SE) in males and 1,910 +/- 100 liters per day/m(2) in females. The whole blood MCR of estradiol is 1,600 +/- 80 liters per day/m(2) in males and 1,360 +/- 40 liters per day/m(2) in females. The values in females do not vary significantly when studied in the follicular or luteal phase of the cycle. At least 35% of the total estrone metabolism in both sexes is extrasplanchnic and at least 25% of the total estradiol metabolism in males, and 15% in females is extrasplanchnic. The [rho](BB) (2,1) [transfer constant of estradiol to estrone, which is equivalent to the fraction of the precursor (estradiol) converted to the product (estrone) when both the infusion of the precursor and the measurement of the product are in peripheral blood] is 15%; and the [rho](BB) (1,2) [transfer constant of estrone to estradiol, which is equivalent to the fraction of the precursor (estrone) converted to product (estradiol) when both the infusion of the precusor and the measurement of the product are in peripheral blood] is 5% in both males and females. Our findings concerning the radioactivity in whole blood, as measured by our procedure, were the following: 15-20% of estrone in both sexes and 15% of estradiol in males is associated with red cells. Only 2% of the whole blood radioactivity of estradiol in females is associated with red cells. Changes in the distribution of radioactivity between plasma and red cells will influence the MCR as calculated from plasma, but not as calculated from whole blood.

Journal Article↗

Estradiol, Administered Acutely, Protects Ischemic Myocardium in Both Female and Male Rabbits.

BACKGROUND: The benefits of chronic administration of estrogen to postmenopausal women are well documented; however, the acute effects of exogenous estradiol on myocardium after coronary artery occlusion and reperfusion in male and female animal models are unknown. We tested the influence of acute pretreatment with estradiol on the development of myocardial necrosis in two protocols, studying intact anesthetized female and male rabbits. METHODS AND RESULTS: 17beta-estradiol (1 mg) was given 15 minutes before coronary artery occlusion in the treated groups (n = 10 females, 10 males); control rabbits (n = 11 females, 10 males) received water. All rabbits underwent 30 minutes of coronary artery occlusion and 4 hours of reperfusion. Myocardial blood flow was similar between groups at 10 minutes after treatment and during coronary artery occlusion and reperfusion. Thus estradiol did not increase blood flow. Heart rate and systemic pressure were also similar between groups. Estradiol levels during coronary artery occlusion were 1-8 pg/mL in untreated female and male rabbits and 66 +/- 28 (male) and 352 +/- 273 (female) in treated rabbits. Although the size of the ischemic risk zones was similar in both groups in both protocols, estradiol-treated rabbits of both sexes developed significantly less necrosis. Infarct size as a percent of the risk region was 10 +/- 1% in female estradiol-treated rabbits compared with 23 +/- 5% in controls (P <.03) and 16 +/- 4% in estradiol-treated male rabbits compared with 31 +/- 5% in control males (P =.03). Although male rabbits had larger infarcts than female rabbits, sex was not a significant covariate for infarct size. CONCLUSIONS: Estradiol exerts a protective effect on ischemic myocardium that is not associated with an increase in myocardial blood flow or alteration in hemodynamics. This study shows that acute administration of estrogen before coronary artery occlusion reduces infarct size in both male and female rabbits.

Journal Article↗

Bioassay of Estradiol Mustard for Possible Carcinogenicity (CAS No. 22966-79-6).

A bioassay of the experimental anticancer drug estradiol mustard for possible carcinogenicity was conducted by administering the chemical by gavage to Sprague-Dawley rats and B6C3F1 mice. Groups of 35 rats and 34-36 mice of each sex were administered estradiol mustard at one of the following doses, either 0.62 or 1.25 mg/kg body weight for rats and either 15 or 30 mg/kg body weight for mice. The vehicle used for the test chemical consisted of 0.05% polysorbate 80 in phosphate-buffered saline. The rats and mice were dosed three times per week for 52 weeks, then observed for an additional 30-34 weeks. Controls consisted of groups of 10 rats and 15 mice of each sex that were not administered the chemical (untreated controls) and also of groups of 10 rats of each sex, 14 male mice, and 16 female mice administered the vehicle alone (vehicle controls). Pooled controls were also used. All surviving rats were killed at 84-86 weeks and all surviving mice at 82-86 weeks. Mean body weights of male rats and male and female mice administered estradiol mustard were lower throughout the greater part of the study than those of corresponding vehicle or untreated controls; mean body weights of dosed female rats were unaffected. Administration of the test chemical had no significant effect on the survival of either male or female rats. A large number of dosed mice died prior to the end of the study. The numbers of dosed male mice which were at risk as long as 52 weeks were sufficient, however, for development of tumors appearing up to that time. Time-adjusted analysis and life-table analyses were applied to data obtained with the mice. In rats, no tumors were observed in a statistically significant incidence in the animals administered estradiol mustard. In mice, lymphoma or lymphocytic leukemia occurred at significant incidences in low-dose (P=0.018) and high-dose (P<0.001) groups of males compared with those in the pooled vehicle controls (controls 0/28, low-dose 6/32, high-dose 17/29) and at significant incidences in low-dose (P=0.020) and high-dose (P=0.002) groups of females compared with those in the corresponding vehicle controls (controls 0/14, low-dose 9/30, high-dose 11/23). In addition, the incidences of lymphoma were statistically significant for dose-related trend for both the males (P<0.001) and the females (P=0.003). Since lymphoma was observed in male mice as early as 25 weeks, life-table analyses of the incidence in each sex were performed. The results indicated a dose association (P=0.001) between the administration of estradiol mustard and the time of observation of lymphoma in either sex of mice. In mice, alveolar/bronchiolar adenoma or carcinoma occurred at a significant incidence (P=0.004) in the low-dose group of males compared with the pooled vehicle controls (controls 2/28, low-dose 12/30, high-dose 5/24) and at a significant incidence (P=0.022) in the low-dose group of females compared with the pooled vehicle controls (controls 1/28, low-dose 7/27, high-dose 1/18). Sarcoma of the myocardium similarly occurred at a significant incidence (P=0.015) in the low-dose group of males compared with the pooled vehicle controls (controls 0/28, low-dose 6/30, high-dose 2/24) and at a significant incidence (P=0.002) in the low-dose group of females compared with the pooled vehicle controls (controls 0/28, low-dose 8/27, high-dose 1/12). The survival of both high-dose males and high-dose females was slightly lower than that of the respective low-dose groups and may account for the higher numbers of pulmonary tumors and myocardial sarcomas among low-dose mice of both sexes. The association of myocardial sarcoma with administration of the chemical in both dosed groups of each sex is strengthened by the fact that these tumors of the myocardium have not occurred in the more than 500 male and 500 female historical-control mice of this strain at the laboratory. Squamous cell carcinoma of the stomach occurred in the dosed male mice (high-dose 2/29) and in the dosed female mice (low-dose 2/26, high-dose 2/14) but was absent in all controls. Although the incidences in this bioassay were too low to be statistically significant, the fact that no squamous-cell carcinomas of the stomach have occurred in the more than 500 male and 500 female historical-control mice of this strain at this laboratory indicates that these gastric tumors were related to the administration of the estradiol mustard. It is concluded that under the conditions of this bioassay, estradiol mustard administered in a buffered saline vehicle was not carcinogenic in Sprague-Dawley rats. Estradiol mustard was carcinogenic in both male and female B6C3F1 mice, inducing lymphoma, sarcoma of the myocardium, alveolar adenoma or carcinoma, and squamous-cell carcinoma of the stomach. Levels of Evidence of Carcinogenicity: Male Rats: Negative Female Rats: Negative Male Mice: Positive Female Mice: Positive Synonym: estradiol, bis((p-bis(2-chloroethyl)-amino)phenyl)acetate

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