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Nongenomic inhibition of oxytocin binding by progesterone in the ovine uterus.

Progesterone (P4) has been reported to inhibit oxytocin (OT) binding to its receptor in isolated murine endometrial membranes. The purpose of the present research was to 1). examine the in vivo and in vitro effect of P4 on the binding of OT to its receptor in the ovine endometrium and 2). determine whether the endometrial plasma membranes have high-affinity binding sites for P4. Ovariectomized ewes were pretreated with a sequence of estradiol-17beta (2 days) and P4 (5 days) before being treated with estradiol-17beta plus either vehicle (corn oil), P4, or P4 + mifepristone (RU 486) for 3 consecutive days. Treatment of ewes with 10 mg P4/day for 3 days suppressed binding of OT (P < 0.01) compared with that of controls, whereas concomitant treatment with the progestin antagonist RU 486 (10 mg/day) blocked the effect of P4. Similarly, incubation of endometrial plasma membranes with P4 (5 ng/ml) inhibited binding of OT (P < 0.05), whereas this effect of P4 was blocked by the presence of RU 486 (10 ng/ml). By radioreceptor assay, the endometrial plasma membranes were found to contain a high-affinity binding site for P4 and the progestin agonist promegestone (Kd 1.2 x 10-9 and 1.74 x 10-10M, respectively). Incubation of endometrial plasma membranes with P4 (5 ng/ml) significantly increased the concentration of progestin binding sites. Binding of labeled promegestone (R 5020) was competitively inhibited by excess unlabeled R 5020, P4, RU 486, and OT but not by estradiol-17beta, cortisol, testosterone, and arginine vasopressin. These data suggest a direct suppressive action of P4 on the binding of OT to OT receptors in the ovine endometrial plasma membrane.

Animals↗

Progestagen-concentrating cells in the brain, uterus, vagina and mammary glands of the galago (Galago senegalensis).

Progestagen-concentrating cells were localized in the oestrogen-primed ovariectomized galago by radioautography after injection of [3H]promegestone (R5020). In the brain, radioactivity was concentrated in the nuclei of neurones in the preoptic region and in the mediobasal hypothalamus. Labelled cells were also observed in the anterior pituitary. In the uterus (uterine horns and cervix), the muscle and stromal cells showed greater labelling than did the glandular and luminal epithelia. Labelled cells were present in the different cell layers of the vagina. The majority of glandular epithelial cells of the mammary glands exhibited a high degree of labelling. Pretreatment with an excess of unlabelled promegestone but not with an excess of nonradioactive testosterone reduced the nuclear concentration of radioactivity in these target tissues. These results show that there are no major differences in the distribution of progestagen-concentrating cells in rodents and galago.

Animals↗

Estrogen and progestin receptors in acoustic and spinal neurilemmomas. Clinicopathologic correlations.

Estradiol and progestin receptors were studied in 20 patients with neuraxial Schwann cell tumors, and their presence was correlated to the clinicopathologic features and the amount of preoperative corticosteroid therapy. Based on an arbitrary cutoff value of 200 fmol per gram of tumor as indicative of a positive receptor value in breast cancer, 4 and 13 of the neurilemmoma tissue samples could be considered as positive for estrogen and progesterone receptors, respectively. Whereas there was no convincing correlation between the estrogen and progestin receptor activity and the age, sex, or menopausal status of the patients, overweight patients had significantly higher estrogen and progestin binding values. The correlation between the amount of preoperative prednisone therapy and the amount of [3H]estradiol and [3H]promegestone binding revealed no dose relationship. Correlating [3H]estradiol and [3H]promegestone content with the histologic type of the schwannomas (Antoni types A and B, respectively), we were not able to draw conclusions, because of the predominance of Antoni type A over Antoni type B tissues in our material. The necessity of nuclear receptor assays, ligand specificity testing, and in vitro studies is stressed as a prerequisite for answering the questions whether neurilemmomas contain genuine sexual steroid hormone receptors and whether these receptors are regulated via an estrogen-estrogen-receptor system as is the case in classical sexual steroid hormone target tissues.

Adult↗

The selective estrogen enzyme modulators in breast cancer: a review.

It is well established that increased exposure to estradiol (E(2)) is an important risk factor for the genesis and evolution of breast tumors, most of which (approximately 95-97%) in their early stage are estrogen-sensitive. However, two thirds of breast cancers occur during the postmenopausal period when the ovaries have ceased to be functional. Despite the low levels of circulating estrogens, the tissular concentrations of these hormones are significantly higher than those found in the plasma or in the area of the breast considered as normal tissue, suggesting a specific tumoral biosynthesis and accumulation of these hormones. Several factors could be implicated in this process, including higher uptake of steroids from plasma and local formation of the potent E(2) by the breast cancer tissue itself. This information extends the concept of 'intracrinology' where a hormone can have its biological response in the same organ where it is produced. There is substantial information that mammary cancer tissue contains all the enzymes responsible for the local biosynthesis of E(2) from circulating precursors. Two principal pathways are implicated in the last steps of E(2) formation in breast cancer tissues: the 'aromatase pathway' which transforms androgens into estrogens, and the 'sulfatase pathway' which converts estrone sulfate (E(1)S) into E(1) by the estrone-sulfatase. The final step of steroidogenesis is the conversion of the weak E(1) to the potent biologically active E(2) by the action of a reductive 17beta-hydroxysteroid dehydrogenase type 1 activity (17beta-HSD-1). Quantitative evaluation indicates that in human breast tumor E(1)S 'via sulfatase' is a much more likely precursor for E(2) than is androgens 'via aromatase'. Human breast cancer tissue contains all the enzymes (estrone sulfatase, 17beta-hydroxysteroid dehydrogenase, aromatase) involved in the last steps of E(2) biosynthesis. This tissue also contains sulfotransferase for the formation of the biologically inactive estrogen sulfates. In recent years, it was demonstrated that various progestins (promegestone, nomegestrol acetate, medrogestone, dydrogesterone, norelgestromin), tibolone and its metabolites, as well as other steroidal (e.g. sulfamates) and non-steroidal compounds, are potent sulfatase inhibitors. Various progestins can also block 17beta-hydroxysteroid dehydrogenase activities. In other studies, it was shown that medrogestone, nomegestrol acetate, promegestone or tibolone can stimulate the sulfotransferase activity for the local production of estrogen sulfates. All these data, in addition to numerous agents which can block the aromatase action, lead to the new concept of 'Selective Estrogen Enzyme Modulators' (SEEM) which can largely apply to breast cancer tissue. The exploration of various progestins and other active agents in trials with breast cancer patients, showing an inhibitory effect on sulfatase and 17beta-hydroxysteroid dehydrogenase, or a stimulatory effect on sulfotransferase and consequently on the levels of tissular levels of E(2), will provide a new possibility in the treatment of this disease.

17-Hydroxysteroid Dehydrogenases↗

Recent insight on the control of enzymes involved in estrogen formation and transformation in human breast cancer.

The great majority of breast cancers are in their early stage hormone-dependent and it is well accepted that estradiol (E2) plays an important role in the genesis and evolution of this tumor. Human breast cancer tissues contain all the enzymes: estrone sulfatase, 17beta-hydroxysteroid dehydrogenase, aromatase involved in the last steps of E2 bioformation. Sulfotransferases which convert estrogens into the biologically inactive estrogen sulfates are also present in this tissue. Quantitative data show that the 'sulfatase pathway', which transforms estrogen sulfates into the bioactive unconjugated E2, is 100-500 times higher than the 'aromatase pathway', which converts androgens into estrogens. The treatment of breast cancer patients with anti-aromatases is largely developed with very positive results. However, the formation of E2 via the 'sulfatase pathway' is very important in the breast cancer tissue. In recent years it was found that antiestrogens (e.g. tamoxifen, 4-hydroxytamoxifen), various progestins (e.g. promegestone, nomegestrol acetate, medrogestone, dydrogesterone, norelgestromin), tibolone and its metabolites, as well as other steroidal (e.g. sulfamates) and non-steroidal compounds, are potent sulfatase inhibitors. In another series of studies, it was found that E2 itself has a strong anti-sulfatase action. This paradoxical effect of E2 adds a new biological response of this hormone and could be related to estrogen replacement therapy in which it was observed to have either no effect or to decrease breast cancer mortality in postmenopausal women. Interesting information is that high expression of steroid sulfatase mRNA predicts a poor prognosis in patients with +ER. These progestins, as well as tibolone, can also block the conversion of estrone to estradiol by the inhibition of the 17beta-hydroxysteroid dehydrogenase type I (17beta-HSD-1). High expressison of 17beta-HSD-1 can be an indicator of adverse prognosis in ER-positive patients. It was shown that nomegestrol acetate, medrogestone, promegestone or tibolone, could stimulate the sulfotransferase activity for the local production of estrogen sulfates. This is an important point in the physiopathology of this disease, as it is well known that estrogen sulfates are biologically inactive. A possible correlation between this stimulatory effect on sulfotransferase activity and breast cancer cell proliferation is presented. In agreement with all this information, we have proposed the concept of selective estrogen enzyme modulators (SEEM). In conclusion, the blockage in the formation of estradiol via sulfatase, or the stimulatory effect on sulfotransferase activity in combination with anti-aromatases can open interesting and new possibilities in clinical applications in breast cancer.

17-Hydroxysteroid Dehydrogenases↗

The selective estrogen enzyme modulator (SEEM) in breast cancer.

Human breast cancer tissue contains all the enzymes (estrone sulfatase, 17beta-hydroxysteroid dehydrogenase, aromatase) involved in the last steps of estradiol biosynthesis. This tissue also contains sulfotransferase for the formation of the biologically inactive estrogen sulfates. In the last years, it was demonstrated that various progestins (promegestone, nomegestrol acetate, medrogestone), as well as tibolone and its metabolites are potent inhibitors of sulfatase and 17beta-hydroxysteroid dehydrogenase activities. It was also shown that medrogestone, nomegestrol acetate, promegestone or tibolone can stimulate the sulfotransferase activity for the local production of estrogen sulfates. All these data, in addition to numerous agents, which can block the aromatase action, lead to the new concept of selective estrogen enzyme modulators (SEEM), which can largely apply to breast cancer tissue. The exploration of various progestins and other active agents in trials with breast cancer patients, showing an inhibitory effect on sulfatase and 17beta-hydroxysteroid dehydrogenase, or a stimulatory effect on sulfotransferase, will provide a new possibility in the treatment of this disease.

17-Hydroxysteroid Dehydrogenases↗

Progestins and breast cancer.

In the last years there has been an extraordinary development in the synthesis of new progestins. These compounds are classified, in agreement with their structure, in various groups which include progesterone, retroprogesterones, 17alpha-hydroxyprogesterones, 19-norprogesterones, 17alpha-hydroxyprogesterone derivatives, androstane and estrane derivatives. The action of progestins is a function of many factors: its structure, affinity to the progesterone receptor or to other steroid receptors, the target tissue considered, the biological response, the experimental conditions, dose, and metabolic transformation. The information on the action of progestins in breast cancer patients is very limited. Positive response with the progestins: medroxyprogesterone acetate and megestrol acetate was obtained in post-menopausal patients with advanced breast cancer. However, extensive information on the effect of progestins was obtained in in vitro studies using hormone-dependent and hormone-independent human mammary cancer cell lines. It was demonstrated that in the hormone-dependent breast cancer cells, various progestins (nomegestrol acetate, tibolone, medrogestone, promegestone) are potent sulfatase inhibitory agents. The progestins can also involve the inhibition of mRNA of this enzyme. In another series of studies it was also demonstrated that various progestins are very active in inhibiting the 17beta-hydroxysteroid dehydrogenase for the conversion of estrone to estradiol. More recently it was observed that the progestins promegestone or medrogestone stimulate the sulfotransferase for the formation of estrogen sulfates. Consequently, the blockage in the formation of estradiol via sulfatase, or the stimulatory effect on sulfotransferase activity, by progestins can open interesting and new possibilities in clinical applications in breast cancer.

17-Hydroxysteroid Dehydrogenases↗

Biological effects of progestins in breast cancer.

Developments in the synthesis of different progestins have opened up new possibilities for the biological effects and therapeutic uses of these compounds. The actions of progestins are a function of their structure, affinity to the progesterone receptor or to other steroid receptors, the target tissue considered, the biological response, the experimental conditions, dose, and metabolic transformation. Data on the action of progestins in breast cancer patients are very limited. A positive response with the progestins medroxyprogesterone acetate and megestrol acetate has been obtained in postmenopausal patients with advanced breast cancer. However, extensive information on the effect of progestins was obtained in in vitro studies using hormone-dependent and hormone-independent human mammary cancer cell lines. It was demonstrated that in hormone-dependent breast cancer cells, various progestins (nomegestrol acetate, medrogestone, promegestone) as well as tibolone, are potent sulfatase-inhibitory agents. Progestins may also be involved in the inhibition of the mRNA of this enzyme. In another series of studies, it was also demonstrated that various progestins are very active in inhibiting the 17 beta-hydroxysteroid dehydrogenase for the conversion of estrone to estradiol. More recently, it has been observed that promegestone or medrogestone stimulates the sulfotransferase for the formation of estrogen sulfates. Clinical trials of these enzymatic effects on the formation and transformation of estradiol in breast cancer patients could be the next step to investigate new therapeutic possibilities for this disease.

17-Hydroxysteroid Dehydrogenases↗

The SEEM: selective estrogen enzyme modulators in breast cancer.

Human breast cancer tissue contains all the enzymes (estrone sulfatase, 17 beta-hydroxysteroid dehydrogenase, aromatase) involved in the last steps of estradiol biosynthesis. This tissue also contains sulfotransferase for the formation of the biologically inactive estrogen sulfates. In the past years, it has been demonstrated that various progestins (promegestone, nomegestrol acetate, medrogestone) as well as tibolone and its metabolites are potent inhibitors of sulfatase and 17 beta-hydroxysteroid dehydrogenase activities. It was also shown that medrogestone, nomegestrol acetate, promegestone or tibolone can stimulate the sulfotransferase activity for the local production of estrogen sulfates. All these data, in addition to numerous agents which can block the aromatase action, lead to the new concept of Selective Estrogen Enzyme Modulators (SEEM) which can largely apply to breast cancer tissue. The exploration of various progestins and other active agents in trials with breast cancer patients, showing an inhibitory effect on sulfatase and 17 beta-hydroxysteroid dehydrogenase, or a stimulatory effect on sulfotransferase, will provide a new option in the treatment of this disease.

Antineoplastic Agents, Hormonal↗

Biological effects of progestins in breast cancer.

The action of progestins is derived from many factors: structure, affinity for the progesterone receptor or for other steroid receptors, the target tissue considered, the biological response, the experimental conditions, the dose and metabolic transformation. The proliferative response to progestins in human breast cancer cells is contradictory: some progestins inhibit, others stimulate, have no effect at all, or have a dual action. For instance, medroxyprogesterone acetate has a stimulatory effect on breast cancer cells after a short period of treatment, but this effect becomes inhibitory when treatment is prolonged. It has been demonstrated that, in hormone-dependent breast cancer cells, various progestins (nomegestrol acetate, medrogestone, promegestone) are potent sulfatase inhibitory agents. The progestins can also involve the inhibition of the mRNA expression of this enzyme. In another series of studies it was also demonstrated that some progestins are very active in inhibiting 17beta-hydroxysteroid dehydrogenase for the conversion of estrone to estradiol. More recently it was observed that the progestins promegestone and medrogestone stimulate sulfotransferase for the formation of estrogen sulfates. Consequently, the action of progestins in blocking estradiol formation via sulfatase, or in stimulating the effect on sulfotransferase activity, can open interesting and new possibilities in clinical applications in breast cancer.

17-Hydroxysteroid Dehydrogenases↗

Soluble urokinase-type plasminogen activator receptor is over-expressed in uterine endometrium from women with endometriosis.

Extracellular matrix degradation by secreted proteases, e.g. plasmin, is essential for endometrial functions such as blastocyst implantation and menstruation. We investigated whether the expression of plasmin(ogen) activating or inhibiting factors in endometrial cells from women with endometriosis was different from women without the disease. Endometrial biopsies were obtained from 10 patients with and 16 women without endometriosis. Cells were cultured in Dulbecco's modified Eagle's medium (DMEM)/F12 supplemented with diethylstilboestrol (10(-10) M) alone or combined with promegestone (5 x 10(-8) or 5 x 10(-6) M). Urokinase plasminogen activator (uPA), plasminogen activator inhibitor (PAI)-1 and -2, and soluble uPA receptor (suPA-R) concentrations were assayed by enzyme-linked immunosorbent assay (ELISA) in the conditioned media. uPA and PAI-2 concentrations were not influenced by steroid treatment and did not differ between women with and without endometriosis, whereas PAI-1 was significantly up-regulated by promegestone in both groups. In contrast, suPA-R expression was not influenced by steroid treatment but was significantly higher in cells from endometriosis patients. This is the first report on suPA-R secretion in endometrial cells and the results indicate an altered activation of plasmin(ogen) in endometrium from women with endometriosis that could lead to a higher proteolytic potential of retrogradely menstruated endometrial fragments with consecutive development of endometriotic foci.

Cells, Cultured↗

Glucocorticoid hormone binding to human adipose tissue.

Binding of triamcinolone was examined in cytosolic preparations of human adipose tissue obtained during surgery. A saturable specific binding was found. Non-specific binding comprised on an average 28% of total binding. The affinity and concentration of binding sites were in the same order as previously described for glucocorticoid hormone binding in other tissues and in rat adipose tissue. There was a large difference in these variables between different individuals. The binding was inhibited competitively by non-labelled triamcinolone, promegestone, dexamethasone and 17-beta-estradiol, in that order of potency. The promegestone inhibition was effective requiring only about 25% higher concentration than triamcinolone to obtain inhibition of half the triamcinolone binding. There was more binding of triamcinolone in omental than in subcutaneous abdominal adipose tissue when expressed per unit of protein and per unit cell surface area but not when expressed per adipocyte.

Adipose Tissue↗

Relative binding affinity of various progestins and antiprogestins to a rabbit myometrium receptor.

Relative binding affinity (RBA) of various progestins and antiprogestins to a cytoplasmic receptor prepared from the myometrium of estrogenized immature female rabbits was investigated. The cytosol was incubated with tritiated promegestone (3H-R5020) in the presence of various concentrations of non-radioactive promegestone (R5020) as standard on the one hand, and several progestins and antiprogestins on the other hand. The incubate was subjected to isoelectric focusing in slabs of polyacrylamide gel and the bound radioactivity in the peak of the receptor was measured, RBA was expressed as a percentage given by the ratio of those concentrations of R5020 and the compound tested which were required for a 50% displacement of 3H-R5020. The RBA's of the progestins tested were in the following order: R5020 greater than norethisterone greater than levonorgestrel greater than progesterone greater than medroxyprogesterone acetate. There was practically no binding to dextronorgestrel, cortisol, testosterone, and estradiol. In the group of antiprogestins, there were no significant differences in the RBA of the compounds RU 486, RU 42633 (monodemethyl derivative of RU 486) and ZK 98.734. Another two derivatives of RU 486, RU 42848 (didemethyl) and RU 42698 (propargyl), had lower RBA's than RU 486. Two 13,17-stereoisomers related to the above antiprogestins (i.e. compounds ZK 98.299 and ZK 115.716) exhibited a decreased RBA in comparison with the compound ZK 98.734.

Animals↗

(Z)-17 beta-hydroxy-17 alpha-(2-[125I]iodovinyl)-4-estren-3-one: a new specific gamma-emitting ligand for determination of progesterone receptor.

An iodine-125 labeled ligand for progesterone receptor determination was synthesized: (Z)-17 beta-hydroxy-17 alpha-(2-[125I]iodovinyl)-4-estren-3-one ([125I]SH-D 510). The ligand is stable chemically as well as under the conditions of a receptor assay. The relative binding affinity of the nonradioactive compound towards human uterine progesterone receptor was 7.0 for the Z-isomer (promegestone (R5020) 1.0) and 0.95 for the E-isomer. 4 S and 8 S receptor forms were obtained on sucrose density gradient analysis. Progesterone receptors were assayed in 103 human mammary tumour cytosols, using either [3H]promegestone or [125I]SH-D 510. The coefficient of correlation was r = 0.951.

Animals↗

In vitro and ex vivo binding to uterine progestin receptors of the rat as a tool to assay progestational activity of glucocorticoids.

The competition of some widely employed glucocorticoids with the binding of [3H]-promegestone, a highly potent synthetic progestagen, to uterine cytosol progestin receptors of the immature rat has been studied both in in vitro and ex vivo experiments. The relative binding affinities (RBA's) to progesterone were determined in vitro: fluocinolone acetonide greater than triamcinolone acetonide greater than betamethasone 17-valerate greater than prednisolone, betamethasone, triamcinolone and cortisol. After pretreating rats in vivo with progesterone or chlormadinone acetate (subcutaneously), a dose-dependent decrease in in vitro binding of [3H]-promegestone to uterine cytosol was evident. Similar decreases were obtained after pretreatment with some of the other glucocorticoids tested. Potency ratios to progesterone, arbitrarily set at 1.0, were: fluocinolone acetonide 86.7, triamcinolone acetonide 5.6, betamethasone valerate 4.1, chlormadinone acetate 2.6. Prednisolone, betamethasone, triamcinolone and cortisol were inactive. Both the in vitro and the ex vivo results clearly indicate that glucocorticoids interact with the uterine cytosol progestin receptor system, depending on their chemical structures; this interaction may account for some of their unwanted side-effects in the endocrine system. Moreover, this experimental system may prove to be a useful tool for evaluation of the progestational activities of glucocorticoids and other steroids, using the rat as an animal model.

Animals↗

Role, control and expression of estrone sulfatase and 17 beta-hydroxysteroid dehydrogenase activities in human breast cancer.

Breast cancer tissue contains the enzymes necessary for local synthesis of estradiol (E2) and it was demonstrated that, despite the presence of the sulfatase and its messenger in hormone-dependent and hormone-independent breast cancer cells, this enzyme operates particularly in hormone-dependent cells. Different progestins: Nomegestrol acetate, Promegestone, Tibolone (Org OD14) and its metabolites (Org-OM38, Org 4098 and Org 30126), as well as Danazol, can block the conversion of estrone sulfate to E2 very strongly in hormone-dependent breast cancer cells. The last step in the formation of E2 is the conversion of estrone (E1) to estrogen by the action of 17 beta-hydroxysteroid dehydrogenase. This activity is preferentially in the reductive direction (formation of E2) in hormone-dependent cells, but oxidative (E2-->E1) in hormone-independent cells. Using intact hormone-dependent cells, it was observed that Nomegestrol acetate. Promegestone as well as Danazol, can block the conversion of E1 to E2. Clinical trials of these "anti-enzyme" substances in breast cancer patients could be the next step to investigate new therapeutic possibilities for this disease.

17-Hydroxysteroid Dehydrogenases↗

Progesterone augments proliferation induced by epidermal growth factor in a feline mammary adenocarcinoma cell line.

Steroid hormones and peptide growth factors promote growth and development of normal mammary tissues and some types of breast cancer. Ovarian steroids may influence mammary growth directly or indirectly. The epidermal growth factor (EGF) family of proteins may also regulate mammary growth. These two pathways may function independently of each other or they may act in concert, with steroids inducing transcription of genes that encode growth factors or growth factor receptors. We used a feline mammary adenocarcinoma cell line (K12) to address whether there was an interrelation between progesterone (PGN) and EGF-associated growth pathways. K12 cells responded to EGF by a dose-dependent increase in proliferation. PGN or promegestone (R5020, a synthetic progestagen) alone did not stimulate K12 growth, but when EGF and PGN, or EGF and R5020 were combined, they were synergistic. This synergistic response was abrogated by the PGN receptor antagonist RU486 or by antibodies that blocked binding of EGF to its receptor. K12 cells expressed characteristic double-affinity EGF receptors, as well as p185 (a functionally and structurally related protein, product of the neu gene) on their surface. PGN receptors were also found on intact cells and in cleared cytosols. Stimulation of K12 cells by PGN or by R5020 induced a two- to threefold increase in the number of high-affinity surface EGF receptors after 24 h. Stimulation of these cells by PGN also affected the relative levels of phosphorylation of the EGF receptor and p185 within minutes, but not of other cellular phosphoproteins. Our results show that PGN enhances the EGF-induced growth of K12 cells and suggest that this effect may be mediated at least partly via an increase in the number or function of high-affinity EGF receptors.

Adenocarcinoma↗

Progesterone induced expression of alkaline phosphatase is associated with a secretory phenotype in T47D breast cancer cells.

In our previous work we reported on stimulation of a tissue unspecific alkaline phosphatase (liver/bone/kidney, L/B/K) in the human breast cancer cell line T47D by progestins. Here we show that in these cells the synthetic progestin R5020 (Promegestone) induces transcription of a 2.7-kilobase ALP mRNA. In this cel line, maximal induction is reached after 24 hours, decreases to 50% after 72 hours and is sensitive to inhibitors of protein synthesis. The induction of ALP mRNA and enzyme activity is specific for R5020 and dexamethasone and is completely inhibited in the presence of 10(-7) M RU486. When treated with R5020 for 48 hours, T47D cells exhibit a substantially altered phenotype, lipid vacuoles accumulate all over the cytoplasm, conferring to the cells a secretory morphology. This phenotype is associated with increased ALP enzyme activity which is also maximal at 48 hours. This effect is progestin specific since other steroids do not lead to the same macroscopical changes.

Alkaline Phosphatase↗