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Effect of luteinizing hormone (LH), PGE2, 8-EPI-PGE1, 8-EPI-PGE2, trichosanthin, and pregnancy specific protein B (PSPB) on secretion of progesterone in vitro by corpora lutea (CL) from nonpregnant and pregnant cows.

Secretion of progesterone by Day 14 bovine corpora lutea (CL) of the estrous cycle and Day 200 CL of pregnancy was evaluated in vitro to determine what regulates secretion of progesterone by CL of pregnancy. Weights of Day 200 CL of pregnancy (4356 +/- 223 g) were heavier when compared to Day 14 CL of the estrous cycle of Brahman cows (3643 +/- 128 g; p < or = 0.05); however, both Day 14 and Day 200 minced CL slices secreted similar basal amounts of progesterone per unit mass (p > or = 0.05). Secretion of progesterone in vitro by Day 14 CL of the estrous cycle was increased at 4 and 8 h (p < or = 0.05) by 10 or 100 ng/mL luteinizing hormone (LH) and did not differ between doses (p > or = 0.05). Progesterone secretion in vitro by Day 200 CL of pregnancy was not increased (p > or = 0.05) by LH at 4 or 8 h. However, progesterone secretion in vitro by Day 14 CL of the estrous cycle or Day 200 CL of pregnancy was increased (p < or = 0.05) at 4 h by 10 or 100 ng/mL PGE2, which did not differ by dose or reproductive status (p > or = 0.05). At 8 h, Day 14 CL of the estrous cycle secretion of progesterone in vitro was increased (p < or = 0.05) by both doses of PGE2 but only at 8 h by 100 ng/mL from Day 200 CL of pregnancy (p < or = 0.05). Secretion of progesterone in vitro was not affected (p > or = 0.05) by 10 or 100 ng/mL 8-Epi-PGE1 or 8-Epi-PGE2 at 4 or 8 h from Day 14 CL of the estrous cycle or Day 200 of pregnancy. Trichosanthin increased (p < or = 0.05) secretion of progesterone in vitro by 10 ng/mL at 4 h and at 8 h by Day 14 CL of the estrous cycle or at 8 h by Day 200 CL of pregnancy but trichosanthin at 100 ng/mL did not affect (p > or = 0.05) secretion of progesterone in vitro by Day 14 CL of the estrous cycle or Day 200 CL of pregnancy at 4 or 8 h. Pregnancy specific protein B (PSPB) increased (p < or = 0.05) secretion of progesterone in vitro at 4 and 8 h by Day 14 CL of the estrous cycle and did not differ between incubation times (p > or = 0.05). PSPB increased secretion of progesterone at 4 h but not at 8 h (p > or = 0.05) by Day 200 CL of pregnancy. These data suggest that PGE2 or PSPB but not LH, 8-Epi-PGE1 or 8-Epi-PGE2 regulates luteal secretion of progesterone by bovine CL at mid-pregnancy. In addition, it is suggested that weights of bovine CL of pregnancy increase to compensate for a lack of placental secretion of progesterone.

Animals↗

Cocaine affects progesterone plasma levels in female rats.

Female Fischer rats injected with cocaine in a "binge" pattern (15 mg/kg, IP, three times a day, at 1-h intervals) for 1 day had significantly higher levels of progesterone than saline-treated controls (p < 0.001). When analyzed by the stage of the estrous cycle, animals in proestrus showed significantly higher cocaine-induced progesterone plasma levels than those in other stages of the cycle (p < 0.01). Progesterone plasma levels were also increased after a single dose of cocaine (15 mg/kg). However, 3 h postinjection progesterone plasma levels had returned to normal. Thus, cocaine modulation of progesterone plasma levels appears to be an acute effect. In ovariectomized rats pretreated with estrogen, progesterone, or estrogen + progesterone, no significant differences were observed in progesterone plasma levels after acute "binge" pattern cocaine administration. Thus, acute cocaine induced increases in progesterone plasma levels in intact female rats are probably due to an increase in secretion rates of progesterone rather than an acceleration of its biotransformation. Due to the profound effects of progesterone in the modulation of CNS plasticity, the modulation of progesterone plasma level by cocaine may have implications for reproductive processes and neuronal functions of women. Moreover, cocaine may affect the progesterone levels in women utilizing progesterone-based contraception or steroid replacement treatment after menopause.

Animals↗

Effect of basal lamina on progesterone production by chicken granulosa cells in vitro--influence of follicular development.

Experiments were conducted in vitro to study the regulation of progesterone production in chicken granulosa cells by homologous basal lamina isolated from preovulatory follicles of chicken ovary. The majority of components of the basal lamina (90-95% by weight) were solubilized with guanidine-HCl (and designated fraction 1); the remaining components were solubilized with beta-mercaptoethanol containing guanidine-HCl (and designated fraction 2). The ability of fraction 1 to regulate progesterone production in granulosa cells obtained from the largest (F(1), mature), third largest (F(3), growing), fifth to seventh largest (F(5-7), growing) follicles and a pool of small yellow follicles (SYF, immature) of chicken ovary was assessed. Granulosa cells isolated from SYF follicles were in the least differentiated (undifferentiated) and those obtained from F(1) follicles were in the most differentiated state. The ability of fraction 1 to regulate progesterone production by chicken granulosa cells was influenced both by the state of cell differentiation and the form of the matrix material (whether solid or liquid). When fraction 1 was added as liquid to the incubation mixture, it promoted progesterone production by granulosa cells at all stages of differentiation; however, it caused a greater relative increase in the amount of progesterone produced by undifferentiated (SYF) and differentiating (F(3)) granulosa cells than by differentiated (F(1)) ones. In the presence of the liquid-form of fraction 1, luteinizing hormone (LH) stimulated progesterone production in differentiated (F(1)) and differentiating (F(5-7)) granulosa cells. Similarly, follicle-stimulating hormone (FSH) stimulated progesterone production by differentiating (F(3)) and undifferentiated (SYF) granulosa cells in the presence of the liquid-form of fraction 1 protein. In culture wells that had been pre-coated with fraction 1 (solid-form), progesterone production by less differentiated (SYF, F(5-7)) granulosa cells was enhanced, whereas progesterone production by differentiated (F(1)) cells was reduced. The solid-form of fraction 1 augmented LH-stimulated progesterone production by less differentiated (F(5-7)) granulosa cells however, it attenuated LH-induced progesterone production in differentiated (F(1)) cells. FSH-promoted progesterone production in granulosa cells from immature follicles (SYF) was augmented by solid-form of fraction 1 whereas the effect of FSH on cells obtained from older follicle (F(3)) was suppressed by solid-form of fraction 1. In experiments in which gonadotropin action was attenuated by solid-form of fraction 1, the amount of progesterone produced in the presence of maximally inhibiting concentrations of fraction 1 protein was greater than control values (no fraction 1, no gonadotropin). These results show that basal lamina of the ovarian follicle can regulate progesterone production by granulosa cells. The data demonstrate that the interactions between the components of basal lamina and LH or FSH on granulosa cell function were dependent on the stage of follicular development and were influenced by the form of the matrix material. It is concluded that the basal lamina of the chicken ovarian follicle is biologically active and regulates granulosa cell function.

Animals↗

Increased progesterone secretion and 3 beta-hydroxysteroid dehydrogenase activity in human cumulus cells by pregnenolone is limited to the high steroidogenic active cumuli.

PURPOSE: Several reports imply that lower progesterone secretion by cumulus-oocyte complexes (COCs) is associated with lower fertilization in the corresponding oocyte. The possible role of progesterone in oocyte fertilization in humans was studied using two approaches: (a) increasing the total progesterone secretion by culturing more than one COC per dish; and (b) increasing the cumulus cell progesterone secretion by providing pregnenolone as a substrate. METHODS: Mature COCs were cultured individually or cocultured in groups. Oocyte fertilization and progesterone secretion were tested after 20 hr and 3 days in culture, respectively. The cumuli from individually plated COCs were cultured in the absence of oocyte for an additional 3 days in order to test the effects of pregnenolone on progesterone secretion and the 3 beta-hydroxysteroid dehydrogenase (3 beta-HSD) activity. A comparable study with pregnenolone was performed on the corresponding granulosa-lutein cells. RESULTS: Increasing the number of COC to two instead of one led to a significant increase in both fertilization rate and progesterone secretion. The addition of pregnenolone during days 3-6 increased significantly both progesterone secretion and 3 beta-HSD activity. Comparable results were observed in granulosa-lutein cells subjected to pregnenolone treatment. Following the first 3 days culture, cumulus masses were categorized as secreting high or low progesterone levels. Adding pregnenolone had a greater effect on both progesterone secretion and 3 beta-HSD activity in the high-progesterone-secreting cumuli. CONCLUSIONS: Addition of pregnenolone increased progesterone secretion and 3 beta-HSD more efficiently in the higher-progesterone-secreting cumuli. Coculture of two COCs instead of one led to a higher fertilization rate and greater progesterone secretion.

3-Hydroxysteroid Dehydrogenases↗

Differential effect of exogenous human chorionic gonadotrophin on progesterone production from normal or malfunctioning corpus luteum.

To examine whether luteal phase defect is, in part, causally related to insufficient gonadotrophin stimulation, we compared the relation of the increment of serum progesterone concentrations in response to human chorionic gonadotrophin (HCG) with its basal level at mid-luteal phase. Thirty-eight naturally cycling infertile women aged between 27-41 years old were evaluated for hormonal responses to HCG injection at the mid-luteal phase. We measured luteinizing hormone (LH), follicle stimulating hormone (FSH), oestradiol and progesterone concentrations, before and 1, 2 and 3 h after the administration of HCG (5000 IU, i.m.) 7 days after ovulation verified by ultrasonography. Eleven out of 38 women exhibited progesterone concentrations below 10 ng/ml (low progesterone group), and those remaining showed progesterone concentrations of > or = 10 ng/ml (normal progesterone group). The basal LH, FSH and oestradiol concentrations were essentially the same in both groups. Progesterone concentrations rose significantly 1 h after the injection and levelled off thereafter. The increment of progesterone concentrations at 1 h in the normal progesterone group was 5.7 ng/ml on the average, whereas that in low progesterone group was 1.1 ng/ml. Furthermore, the percentage increase in progesterone concentrations at 1 h in the normal progesterone group was significantly greater than that in the low progesterone group. Both groups equally exhibited significant but marginal increases in oestradiol concentrations 1 h after the injection. LH and FSH concentrations at 3 h decreased significantly in both groups. In summary, HCG readily stimulates progesterone production in normally functioning corpus luteum whereas its stimulatory effect is minimal on malfunctioning corpus luteum. This suggests that luteal phase defect is not caused by inadequate gonadotrophin stimulation and, therefore, does not benefit from HCG administration.

Adult↗

Metabolic clearance rate, production rate and mammary uptake of progesterone in the goat.

The dynamics of progesterone uptake and metabolism in the mammary gland of the goat have been measured and related to the metabolic clearance rate and production rate of the hormone determined by tracer kinetic techniques. The metabolic clearance rate of progesterone from blood was 3-13 plus or minus 0-35 (S.E.M.) 1/min in ten experiments on six goats; values tended to be slightly higher in pregnant than in non-pregnant goats. The production rate of progesterone at oestrus, and at day 3 of the normal cycle, was less than 0-01 mug/min. During the luteal phase of the oestrous cycle the production rate was 8-5 and 14-6 mug/min in 2 animals, and in the second half of pregnancy, 15-3 plus or minus 0-6 mug/min (5 animals). Progesterone was extracted from the circulation by the mammary gland of conscious goats with an efficiency of 49-4 plus or minus 11-3% in non-pregnant, and 51-7 plus or minus 11-5% in pregnant aniamals. The mean clearance rate of progesterone by the udder was 0-279 1/min, 8-8% of the metabolic clearance rate. Mammary uptake of progesterone in goats with an actively secreting corpus luteum was 0-64 plus or minus 0-29 mug/min, which gave an estimated value of 0-11-1-88 ng/min/g mammary gland. The mammary extraction of progesterone was investigated in a goat 3 days after oestrus when any high affinity receptor sites would presumably be unoccupied. During the infusion of progesterone into a mammary artery, tissue sample were taken from various organs, including the mammary gland, and the concentration of labelled compounds at steady state was determined. A high mammary extraction of progesterone was found to be determined. A high mammary extraction of progesterone was found to be attributable principally to progesterone metabolism. The metabolites of progesterone were removed from the gland in venous blood and were not stored to any appreciable extent in mammary tissue. Experiments in vitro confirmed the findings in vivo that mammary tissue metabolized labelled progesterone and also pregnenolone and androstenedione; metabolism of dehydroepiandrosterone, oestradiol-17 beta, oestrone and cortisol was relatively small. Confirmation of our previous finding that the mammary gland of the goat can synthesize progesterone from labelled pregnenolone infused into the gland in vivo, further implicated this organ as an active site of metabolism of certain steroids. The physiological role of steroid metabolism in the mammary gland is discussed.

Androstenedione↗

Role of ovarian progesterone and potential role of prostaglandin F2alpha and prostaglandin E2 in modulating the uterine response to infectious bacteria in postpartum ewes.

In sheep and cattle, the postpartum uterus is resistant to bacterial challenge until after corpora lutea develop. A 2 x 2 factorial arrangement of treatments was used to determine whether prostaglandins may mediate the effects of progesterone in transforming the postpartum uterus from resistant to susceptible. On d 14 postpartum, ewes (n = 6/group) were ovariectomized or sham ovariectomized, and the vena cava was catheterized for daily collection of uteroovarian-enriched blood. From d 15 to 20, ewes received twice daily intramuscular injections of progesterone in sesame oil or plain sesame oil. On d 20, each uterus received 75 x 10(7) cfu of Arcanobacterium pyogenes and 35 x 10(7) cfu of Escherichia coli. Uteri were collected on d 25 and examined for signs of infection. For each blood sample, unstimulated and mitogen-stimulated lymphocyte proliferation was measured as [3H]thymidine incorporation, smears were prepared for differential white blood cell (WBC) counts, and progesterone, prostaglandin F2alpha, (PGF2alpha), and prostaglandin E2 (PGE2) were quantified. All 12 progesterone-treated, but only two of the 12 oil-treated, ewes developed uterine infections (P < 0.001). Progesterone treatment increased (P < 0.001; 3.1 vs 1.5 ng/mL) and ovariectomy decreased (P < 0.001; 3.7 vs 0.9 ng/mL) vena caval progesterone. Progesterone treatment reduced (P < 0.01) PGF2alpha, (303.9 vs 801.3 pg/mL), and PGF2alpha was greater (P < 0.05) before than after inoculation (626.4 vs 478.8 pg/mL). The PGE2 concentration was greater in progesterone-treated, ovary-intact ewes than in ewes in the other groups (ovariectomy x progesterone treatment; P < 0.01). Ovariectomy increased (P < 0.005; 4.4 vs 2.9 pmol) and progesterone treatment decreased (P < 0.05; 3.2 vs 4.1 pmol) concanavalin A-stimulated lymphocyte proliferation. Ovariectomy increased lipopolysaccharides-stimulated proliferation (P < 0.05; 2.4 vs 1.9 pmol). For neutrophils per 100 WBC, the ovariectomy x progesterone and progesterone x period interactions were significant (P < 0.01). The ovariectomy x progesterone interaction was significant (P < 0.01) for lymphocytes per 100 WBC. Ovariectomy decreased monocytes (P < 0.001; 10 vs 13) and increased eosinophils (P < 0.001; 10 vs 5) per 100 WBC. Progesterone makes the postpartum uterus in ewes susceptible to infection, but ovariectomy allows ewes to remain resistant; uterine prostaglandins may mediate this change. This model creates opportunities to determine the mechanisms responsible for the shift from resistance to susceptible.

Actinomycetales Infections↗

Fish meal supplementation alters uterine prostaglandin F2alpha synthesis in beef heifers with low luteal-phase progesterone.

The objective of the current study was to evaluate the effect of omega-3 fatty acids in fish meal on mitigating uterine PGF2alpha synthesis in heifers with low luteal-phase concentrations of progesterone. Animals were individually fed a corn silage-based diet supplemented with fish meal (5% of DMI; n = 12) or corn gluten meal (6% of DMI; n = 13). Estrous cycles were synchronized using PGF2alpha beginning on d 25 of supplementation. Random heifers from each supplement group (n = 6 fish meal, and n = 7 corn gluten meal) were given three additional i.m. injections of PGF2alpha (25 mg) at 12-h intervals beginning at 0600 on d 3 after estrus to induce formation of corpora lutea that secrete lower concentrations of progesterone. Jugular blood samples were collected daily commencing on d 1 and continuing through d 16 of the estrous cycle to determine serum progesterone concentrations. Oxytocin was administered i.v. (100 IU) to heifers on d 16 after estrus to stimulate uterine PGF2alpha synthesis. Before statistical analyses, heifers were sorted to either normal or low luteal-phase progesterone as determined from serum progesterone on d 9 of the estrous cycle. After sorting, treatment groups consisted of 1) normal luteal progesterone + fish meal (n = 6); 2) low luteal progesterone + fish meal (n = 6); 3) normal luteal progesterone + corn gluten meal (n = 6); and 4) low luteal progesterone + corn gluten meal (n = 7). Serum concentrations of the PGF2alpha metabolite following oxytocin stimulation tended (P = 0.09) to be greater in heifers with low luteal-phase progesterone compared with heifers with normal luteal-phase progesterone. Fish meal supplementation mitigated this response in heifers with low luteal-phase progesterone (P < 0.05), but had no effect on heifers with normal luteal-phase progesterone. In conclusion, the omega-3 fatty acids in fish meal seem to decrease uterine PGF2alpha synthesis in heifers with low luteal-phase serum concentrations of progesterone.

Animal Feed↗

Transcriptional regulation of the murine multidrug resistance gene mdr1b by progesterone occurs via an indirect mechanism.

The murine multidrug resistance gene mdr1b is highly induced in the endometrium during pregnancy. Evidence suggests that induction occurs mainly as a result of progesterone action. To study the molecular mechanisms involved in this induction, 5'-flanking sequences between -540 and +97 of the mdr1b gene were fused to the reporter gene, bacterial chloramphenicol acetyltransferase (p540CAT). Unlike most progesterone-responsive genes, mdr1b is preferentially activated by the A form of the progesterone receptor. We now report that activation is not observed with a DNA-binding domain mutant of progesterone receptor A (PRA) suggesting that induction occurs at the transcriptional level. Time course experiments demonstrated that induction was first observed 12 hr after hormone addition, suggestive of a secondary (or late) response gene. Sequence comparison highlighted the region M1 (-234 to -206), which contains a partially conserved progesterone response element. Its functional significance was evaluated by expression assays and gel shift analysis. Reporter plasmids with modifications of this element were transfected into HeLa cells. Constructs containing the native M1 element, or a mutated element (M1mt) that eliminated any similarity to a progesterone response element, were induced four-fold by progesterone whereas an element containing a consensus progesterone response element (M1PRE) was induced eight-fold. In addition, by gel shift analysis, the M1 element did not bind the progesterone receptor or any other factors. This suggested that the M1 region does not participate in the response to progesterone. 5' Nested deletion analysis, used to identify other regions of the upstream regulatory region that contributed to induction by progesterone, demonstrated that enhancer sequences between -122 and -65, which contain binding sites for C/EBPbeta and NF-Y, were important. Mutations in the binding sites for these factors decreased induction by progesterone. On the basis of our studies using 540 bp of upstream sequence, mdr1b is activated transcriptionally by progesterone, in an indirect manner dependent on basal factors.

Animals↗

Progesterone synthesized by Schwann cells during myelin formation regulates neuronal gene expression.

Previously, progesterone was found to regulate the initiation and biosynthetic rate of myelin synthesis in Schwann cell/neuronal cocultures. The mRNA for cytochrome P450scc (converts cholesterol to pregnenolone), 3beta-hydroxysteroid dehydrogenase (3beta-HSD, converts pregnenolone to progesterone), and the progesterone receptor were found to be markedly induced during active myelin synthesis. However, the cells in the cocultures responsible for these changes were not identified. In this study, in situ hybridization was used to determine the localization of the enzymes responsible for steroid biosynthesis. The mRNA for cytochrome P450scc and 3beta-HSD were detected only in actively myelinating cocultures and were localized exclusively in the Schwann cells. Using immunocytochemistry, with minimal staining of the Schwann cells, we found the progesterone receptor in the dorsal root ganglia (DRG) neurons. The progesterone receptor in the neurons translocated into the nuclei of these cells when progesterone was added to neuronal cultures or during myelin synthesis in the cocultures. Additionally, a marked induction of the progesterone receptor was found in neuronal cultures after the addition of progesterone. The induction of various genes in the neurons was also investigated using mRNA differential display PCR in an attempt to elucidate the mechanism of steroid action on myelin synthesis. Two novel genes were induced in neuronal cultures by progesterone. These genes, along with the progesterone receptor, were also induced in cocultures during myelin synthesis, and their induction was blocked by RU-486 (a progesterone receptor antagonist). These genes were not induced in Schwann cells cultured alone after the addition of progesterone. These results suggest that progesterone is synthesized in Schwann cells and that it can indirectly regulate myelin formation by activating transcription via the classical steroid receptor in the DRG neurons.

3-Hydroxysteroid Dehydrogenases↗

Hormonal regulation of myometrial estrogen, progesterone, and oxytocin receptors in the pregnant and pseudopregnant hamster.

Estrogen receptor (Re) and progesterone receptor (Rp) concentrations were measured in the myometrium of hamster uterus during pregnancy and pseudopregnancy. Comparison of Re and Rp levels with serum estradiol and progesterone titers revealed that receptor concentration was low when progesterone was elevated during pregnancy and pseudopregnancy. However, Re and Rp levels increased when progesterone levels dropped at the end of each condition. In comparing serum estradiol relative to progesterone at the end of pregnancy and pseudopregnancy, it was discovered that Re and Rp recovery occurred not only when the estradiol to progesterone ratio increased (pseudopregnancy) but also when the ratio did not change (pregnancy). This suggested that serum progesterone was the primary determinant of receptor down-regulation, and this was confirmed by comparing the receptor recovery response to estrogen and progesterone withdrawal in the decidualized hamster uterus. Total Re levels increased to the same extent after progesterone withdrawal whether or not serum estradiol was maintained. When serum estrogen was maintained at a steady state, nuclear Re (nRe) increased within 4 h of progesterone withdrawal, and estrogen-dependent protein responses (Rp and oxytocin receptor) were obtained within 8 h. Thus, progesterone-induced down-regulation of nRe and estrogen-dependent proteins is rapidly reversed upon removal of hormone. The recovery response of Re, Rp, and oxytocin receptor to progesterone withdrawal can be blocked by cycloheximide treatment at 4 h, suggesting that receptor recovery involves protein synthesis. These results are consistent with the hypothesis that progesterone down-regulates the Re system by a selective action on nRe retention.

Animals↗

Non-genomic immunosuppressive actions of progesterone inhibits PHA-induced alkalinization and activation in T cells.

Progesterone is an endogenous immunomodulator, and can suppress T-cell activation during pregnancy. When analyzed under a genome time scale, the classic steroid receptor pathway does not have any effect on ion fluxes. Therefore, the aim of this study was to investigate whether the non-genomic effects on ion fluxes by progesterone could immunosuppress phytohemagglutinin (PHA)-induced human peripheral T-cell activation. The new findings indicated that, first, only progesterone stimulated both [Ca2+]i elevation and pHi decrease; in contrast, estradiol or testosterone stimulated [Ca2+]i elevation and hydrocortisone or dexamethasone stimulated pHi decrease. Secondly, the [Ca2+]i increase by progesterone was dependent on Ca2+ influx, and the acidification was blocked by Na+/H+ exchange (NHE) inhibitor, 3-methylsulphonyl-4-piperidinobenzoyl, guanidine hydrochloride (HOE-694) but not by 5-(N,N-dimethyl)-amiloride (DMA). Thirdly, progesterone blocked phorbol 12-myristate 13-acetate (PMA) or PHA-induced alkalinization, but PHA did not prevent progesterone-induced acidification. Fourthly, progesterone did not induce T-cell proliferation; however, co-stimulation progesterone with PHA was able to suppress PHA-induced IL-2 or IL-4 secretion and proliferation. When progesterone was applied 72 h after PHA stimulation, progesterone could suppress PHA-induced T-cell proliferation. Finally, immobilization of progesterone by conjugation to a large carrier molecule (BSA) also stimulated a rapid [Ca2+]i elevation, pHi decrease, and suppressed PHA-induced proliferation. These results suggested that the non-genomic effects of progesterone, especially acidification, are exerted via plasma membrane sites and suppress the genomic responses to PHA. Progesterone might act directly through membrane specific nonclassical steroid receptors to cause immunomodulation and suppression of T-cell activation during pregnancy.

Adult↗

Progesterone pretreatment enhances cellular sensitivity to cadmium despite a marked activation of the metallothionein gene.

Previously, we found that in vivo pretreatment with progesterone markedly increased cadmium lethality in rats, apparently by enhancing cadmium-induced hepatonecrosis. Therefore, the present study was designed to investigate this phenomenon at the molecular level in an in vitro system. TRL-1215 rat liver cells were exposed to various concentrations of progesterone (0, 1, 10, and 100 microM) for 24 hr and subsequently exposed to cadmium (0, 1, 5, 10, and 50 microM; as CdCl2) for an additional 24 hr. Although the levels of progesterone used were essentially nontoxic, progesterone pretreatment resulted in a concentration-dependent increase in sensitivity to cadmium as assessed by loss of mitochondrial enzyme activity (tetrazolium-based dye assay) and loss of cytosolic enzyme activity (glutamic oxaloacetic transaminase). The effects of progesterone treatment on intracellular levels of metallothionein (MT), an inducible metal-binding protein generally associated with cadmium tolerance, were also measured. Progesterone (100 microM) alone increased MT levels 2.4-fold, while cadmium (10 microM) alone resulted in a 7-fold increase over control. Progesterone pretreatment followed by cadmium exposure caused a marked, 16-fold induction in MT synthesis, a level of activity that has been associated with acquired tolerance to cadmium. In addition, progesterone pretreatment clearly induced transcription of the MT gene as evidenced by enhanced cadmium-induced accumulation of cellular MT mRNA. Progesterone pretreatment had no effect on the level of glutathione, a cellular thiol thought to be important in detoxication of cadmium prior to MT gene activation and MT protein accumulation, or on cellular accumulation of cadmium during the initial 3 hr of exposure to the metal. The proportion of total cellular cadmium bound to MT in cells pretreated with progesterone was greater than that in the cells treated with cadmium alone, indicating an enhanced sequestration of the metal by MT after pretreatment. These results indicate that progesterone, at nontoxic levels, markedly exacerbates cadmium toxicity at the cellular level in liver cells. This is in accord with the observed progesterone-induced enhancement of the hepatotoxic effects of cadmium in vivo. The observed facilitation of cytotoxicity is not based in altered toxicokinetics of cadmium and occurs despite a pronounced activation of the MT gene resulting in an enhanced sequestration of cadmium by MT. The mechanism by which progesterone enhances cadmium toxicity deserves further study.

Animals↗

Absorption of oral progesterone is influenced by vehicle and particle size.

The oral route of progesterone administration has long been considered impractical because of poor absorption and short biologic half-life. Recent reports suggest that micronization of progesterone enhances absorption and increases serum and tissue levels of progesterone. This study checks serum progesterone levels before and 0.5, 1, 2, 3, 4, and 6 hours after oral administration of 200 mg of progesterone in seven subjects. Progesterone was plain milled, micronized, plain milled in oil, micronized in oil, or micronized in enteric-coated capsules. All patients exhibited a significant increase in serum progesterone levels after oral progesterone administration. Mean peak progesterone levels (30.3 +/- 7.0 ng/ml) (p less than 0.005) were achieved with micronized progesterone in oil at 2.0 +/- 0.3 (p less than 0.05) hours after administration. Four types of oral progesterone had equivalent mean peak elevations and mean times to peak: plain milled, 9.6 +/- 2.5 ng/ml at 4.0 +/- 0.5 hours; micronized 13.2 +/- 2.4 ng/ml at 3.2 +/- 0.4 hours; plain milled in oil, 11.3 +/- 3.0 ng/ml at 4.0 +/- 0.5 hours; and micronized in enteric-coated capsules, 11.2 +/- 3.0 ng/ml at 4.1 +/- 0.7 hours. Contrary to traditional teaching, these data show that significant serum progesterone levels can be achieved by oral administration. Absorption can be significantly improved by the physical characteristics of the progesterone and the vehicle used with oral administration.

Absorption↗

Progesterone decreases the concentration of hypothalamic and anterior pituitary estrogen receptors in ovariectomized rats.

In a study of cellular mechanisms of progesterone's antiestrogenic action on behavior and neuroendocrine responses, we investigated the influence of progesterone on the concentration of estrogen receptors in the hypothalamus-preoptic area (HP), anterior pituitary gland (AP), and uterus of chronically estradiol-treated ovariectomized rats. Ovariectomized (OVX) rats were implanted s.c. with 15 mm silastic capsules of estradiol. One week later, they were injected with progesterone or oil vehicle and killed 6 h or 24 h later. Confirming previous reports, progesterone caused a decrease in the concentration of uterine cytosol and nuclear estrogen receptors at both times. Less consistent results were obtained in HP and AP; a decrease in the concentration of HP cytosol estrogen receptors was detected at 6 h, as was a small decrease in the concentration of HP nuclear estrogen receptors at 24 h. More consistent results were seen when a low priming dose of estradiol was used. Although progesterone was without effect on the concentration of nuclear estrogen receptors in HP and AP at 6 h, cytosol receptor levels were depressed by 25% in HP and 14% in AP. At 24 h after progesterone injection, nuclear estrogen receptor levels were decreased in all tissues, while cytosol estrogen receptor levels remained depressed. A study of the time course of progesterone's suppression of cytosol estrogen receptor concentration revealed that the effect is transient, occurring by 6 h after progesterone injection, but returning to baseline by 48 h after injection. Scatchard analysis confirmed that the decreased concentration of cytosol binding in HP was due to a decrease in the concentration of binding sites. As with nearly all of progesterone's neuroendocrine effects, the suppression of estrogen receptor levels requires estrogen priming. HP and AP cytosol from progesterone-treated rats did not seem to contain an estrogen receptor-regulatory factor as do uterine cell nuclei; loss of binding sites at 37 degrees C was no faster in cytosol from progesterone-treated rats. These results demonstrate that, under some conditions, progesterone decreases HP and AP estrogen receptor concentrations. Unlike progesterone's action in the uterus, the primary effect in the brain and pituitary gland seems to be on the cytosol receptor.

Animals↗

In vitro progesterone modulation of amphetamine-stimulated dopamine release from the corpus striatum of ovariectomized estrogen-treated female rats: response characteristics.

We have previously reported that a pulsatile infusion of progesterone directly into superfusion chambers containing corpus striatal tissue fragments of ovariectomized estrogen-treated female rats augmented amphetamine-stimulated dopamine release in vitro. In an attempt to understand some of the means by which progesterone modulates dopamine release under these in vitro conditions, we examined two characteristics of this effect of progesterone. First, to determine the threshold dose of progesterone and whether it was necessary for progesterone to be administered in a pulsatile mode, in Expt. I we examined the effect of a single, brief infusion of progesterone at doses of 2, 4 and 40 ng/ml. Second, to evaluate the temporal relationship between progesterone infusion and its capacity to augment amphetamine-stimulated dopamine release, in Expt. II we varied the interval between progesterone infusion and amphetamine challenge, with amphetamine infused at 10, 30, 50 or 90 min post-progesterone. The results of Expt. I indicate that a single 10-min infusion of progesterone at 2 ng/ml was adequate to produce an accentuated response to amphetamine infusion. Although further increases were obtained following the 4 and 40 ng/ml doses, these values failed to differ significantly from the levels obtained with the 2 ng/ml dose. From Expt. II, we observed that this effect of progesterone was relatively rapid with statistically significant increases in amphetamine-stimulated dopamine release occurring at 30 min post-progesterone and similar responses being maintained at 50 and 90 min post-progesterone.(ABSTRACT TRUNCATED AT 250 WORDS)

Amphetamines↗

Progesterone facilitation of lordosis in male and female Sprague-Dawley rats following priming with estradiol pulses.

Adult male Sprague-Dawley rats rarely exhibit progesterone-facilitated lordosis following steroid treatments which are effective in females. In contrast, progesterone-facilitated lordosis has been observed following priming with estradiol pulses in another strain. The aim of this study was to compare progesterone-facilitated feminine sexual behavior in adult male and female Sprague-Dawley rats following priming with estradiol benzoate (EB) or estradiol pulses. Female sexual behavior was measured in adult, gonadectomized males and females treated as follows: Two pulses of estradiol followed by progesterone or oil the next day; EB (two doses) for 3 days, and progesterone or oil the next day. These protocols were repeated at 4- or 6-day intervals, respectively. Progesterone-facilitated lordosis was observed consistently in both sexes treated with estradiol pulses. By the fifth test, lordosis quotients did not differ between the sexes, but the lordosis ratings in progesterone-treated males remained lower than those observed in females. Proceptivity (hop-darting) was facilitated by progesterone in females, but was never observed in males. Lordosis was induced in both sexes by 15 micrograms EB, but was not reliably facilitated by progesterone. Treatment with the lower dose of EB (1.5 micrograms) induced high levels of receptivity in females (occasionally facilitated by progesterone), but not in males regardless of subsequent treatment (i.e, progesterone or oil). These data suggest that progesterone-facilitated lordosis can be induced in male Sprague-Dawley rats, if a regimen of estradiol pulses is used. Thus, the brain of the adult male is not inflexibly differentiated with regard to progesterone facilitation of feminine receptive behavior.

Animals↗

Specific interactions of steroids, arylhydrocarbons and flavonoids with progesterone receptors from the cytosol of the fungus Rhizopus nigricans.

Rhizopus nigricans (R. nigricans) transforms fungitoxic progesterone into the less toxic 11alpha-hydroxyprogesterone which is then able to exit the mycelia into the surrounding water. Hydroxylation of progesterone is an inducible process in which cytosolic progesterone receptors could be involved. In the present study, we characterised receptors with respect to ligand specificity and to their involvement in progesterone induction of hydroxylase. EC(50) values of different ligands (steroids, xenobiotic arylhydrocarbons and natural flavonoids) were determined by competition studies using 40nM ((3)H)progesterone. C21 and C19 3-oxo-4-ene steroids were good competitors (EC(50) of progesterone 2.3 +/- 0.1 x 10(-7)M, EC(50) of androsten-3,17-dione 24 +/- 2 x 10(-7)M). The presence of hydroxyl groups in steroids significantly decreased the affinity for receptors. The arylhydrocarbons alpha-naphthoflavone and ketoconazole exhibited EC(50) values of 0.3 +/- 0.01 x 10(-7)M and 27 +/- 5 x 10(-7)M, respectively, whereas beta-naphthoflavone and benzo(a)pyrene were not able to displace labelled progesterone completely. The competition curves obtained by natural flavonoids also did not reach the bottom level of non-labelled progesterone, indicating the interaction at some allosteric binding site(s) of progesterone receptors. All ligands were examined for their involvement in progesterone-hydroxylase induction. Steroid agonists induced the enzyme in a dose-dependent manner in accordance with their affinity for receptors, whereas arylhydrocarbons and natural flavonoids did not induce the enzyme. The agonistic action of steroids, together with the antagonistic action of alpha-naphthoflavone, strongly suggests the involvement of progesterone receptors in progesterone signalling resulting in the induction of progesterone-hydroxylase.

Allosteric Regulation↗