EP1274409A2 - Antiprogestins a activite partielle d'agonistes - Google Patents

Antiprogestins a activite partielle d'agonistes

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Publication number
EP1274409A2
EP1274409A2 EP01922626A EP01922626A EP1274409A2 EP 1274409 A2 EP1274409 A2 EP 1274409A2 EP 01922626 A EP01922626 A EP 01922626A EP 01922626 A EP01922626 A EP 01922626A EP 1274409 A2 EP1274409 A2 EP 1274409A2
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EP
European Patent Office
Prior art keywords
progestin
antiprogestin
dexamethasone
activity
sample
Prior art date
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EP01922626A
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German (de)
English (en)
Inventor
S. Stoney Simons, Jr.
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US Department of Health and Human Services
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US Department of Health and Human Services
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Publication of EP1274409A2 publication Critical patent/EP1274409A2/fr
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    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N33/00Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
    • G01N33/48Biological material, e.g. blood, urine; Haemocytometers
    • G01N33/50Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing
    • G01N33/74Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing involving hormones or other non-cytokine intercellular protein regulatory factors such as growth factors, including receptors to hormones and growth factors
    • G01N33/743Steroid hormones
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K31/00Medicinal preparations containing organic active ingredients
    • A61K31/56Compounds containing cyclopenta[a]hydrophenanthrene ring systems; Derivatives thereof, e.g. steroids
    • A61K31/57Compounds containing cyclopenta[a]hydrophenanthrene ring systems; Derivatives thereof, e.g. steroids substituted in position 17 beta by a chain of two carbon atoms, e.g. pregnane or progesterone
    • A61K31/573Compounds containing cyclopenta[a]hydrophenanthrene ring systems; Derivatives thereof, e.g. steroids substituted in position 17 beta by a chain of two carbon atoms, e.g. pregnane or progesterone substituted in position 21, e.g. cortisone, dexamethasone, prednisone or aldosterone
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P15/00Drugs for genital or sexual disorders; Contraceptives
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P15/00Drugs for genital or sexual disorders; Contraceptives
    • A61P15/04Drugs for genital or sexual disorders; Contraceptives for inducing labour or abortion; Uterotonics
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P15/00Drugs for genital or sexual disorders; Contraceptives
    • A61P15/08Drugs for genital or sexual disorders; Contraceptives for gonadal disorders or for enhancing fertility, e.g. inducers of ovulation or of spermatogenesis
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P15/00Drugs for genital or sexual disorders; Contraceptives
    • A61P15/18Feminine contraceptives
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P35/00Antineoplastic agents
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P5/00Drugs for disorders of the endocrine system
    • A61P5/24Drugs for disorders of the endocrine system of the sex hormones
    • A61P5/32Antioestrogens
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P7/00Drugs for disorders of the blood or the extracellular fluid
    • A61P7/06Antianaemics
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N2500/00Screening for compounds of potential therapeutic value
    • G01N2500/02Screening involving studying the effect of compounds C on the interaction between interacting molecules A and B (e.g. A = enzyme and B = substrate for A, or A = receptor and B = ligand for the receptor)

Definitions

  • This invention relates generally to the identification of a class of compounds that behave as antiprogestins with partial agonist activity, and methods for their use.
  • HREs hormone response elements
  • the human progesterone receptor (PR) occurs as three different isoforms: PR-A, PR-B, and PR-C (Kastner et al., EMBO J 9: 1603-1614, 1990; Wei et al., Mol Endo 10:1379-1387, 1996), of which PR-A and PR-B are the most abundant.
  • PR-A vs. PR-B isoforms is not constant among target tissues, and this can alter the cellular response, because the activity of each isoform can vary.
  • Antisteroids are defined as compounds that block the action of agonist steroids. However, virtually all antisteroids retain some agonist activity under selected conditions. Partial agonist activity was once viewed as a defect of an antisteroid when the objective was to synthesize compounds that would block all of the activity of an agonist steroid. More recently, it has become clear that partial agonist activity can be a highly desirable feature. Thus, in endocrine therapies of disease states, it is beneficial to retain agonist activity in as many of the unaffected tissues as possible. For example, tamoxifen is now widely used as an antiestrogen in the treatment of breast cancer, because tamoxifen behaves as an estrogen in bone tissue, and therefore, does not demineralize the bones of patients.
  • RU-486 the most commonly used antiprogestin, displays partial agonist activity only under selected conditions (Meyer et al., EMBO J 9:3923-3932, 1990; Jackson et al. Mol Endo 11 :693-705, 1997).
  • RTI 3021-020 RTI 3021-020
  • RTI-020 RTI 3021-020
  • Antiprogestin compounds with partial agonist activity are useful for treating various progestin-regulated diseases and conditions. Such antiprogestin compounds also have a large number of research applications. However, the few known antiprogestins have only limited partial agonist activity, and there remains a need in the art for antiprogestins with broad-range partial agonist activity.
  • the present invention overcomes previous shortcomings in the art by providing methods for inhibiting progestin activity, based on the identification of a class of compounds that have a broader range of progestin partial agonist activity than previously known antiprogestin compounds SUMMARY OF THE INVENTION
  • the invention features a method of inhibiting progestin activity in a subject in need of such inhibition.
  • the method includes administering an effective amount of a C-17-derivatized dexamethasone antiprogestin to the subject.
  • the invention features a method of treating or preventing a progestin-dependent condition in a subject in need of such treatment or prevention.
  • the method includes administering an effective amount of a C-17-derivatized dexamethasone antiprogestin to the subject.
  • the subject may be a mammal, such as a human, a farm animal, a domestic animal, or a laboratory animal, and the subject may be female.
  • the method may be used for: regulating menses; treating or preventing a benign progestin-dependent condition, such as endometriosis, leiomyoma, ovarian cysts, premenstrual syndrome, anemia, dysmenorrhea, or pelvic inflammatory disease; or treating a progestin-responsive tumor, such as a breast carcinoma, an ovarian carcinoma, a prostate carcinoma, an endometrial carcinoma, a cervical carcinoma, a leiomyosarcoma, or a meningioma.
  • a benign progestin-dependent condition such as endometriosis, leiomyoma, ovarian cysts, premenstrual syndrome, anemia, dysmenorrhea, or pelvic inflammatory disease
  • a progestin-responsive tumor such as a breast carcinoma, an ovarian carcinoma, a prostate carcinoma, an endometrial carcinoma, a cervical carcinoma, a leiomyosarcoma, or a meningioma.
  • the method may be used for preventing pregnancy.
  • the C-17-derivatized dexamethasone antiprogestin may be administered prior to ovulation or prior to coitus, or after ovulation or after coitus.
  • the administering inhibits implantation of an embryo in the subject or the administering inhibits ovulation in the subject.
  • the method is for inducing cervical ripening in a female.
  • the cervical ripening may be preparatory to labor and delivery of offspring, or preparatory to dilatation and curettage.
  • the administering is carried out in order to induce expulsion of an embryo or fetus from the subject.
  • the invention features a method of detecting a progestin or a progestin agonist in a sample.
  • the method includes the steps of: a) contacting the sample with a reaction mixture containing a progesterone receptor and a C- 17- derivatized dexamethasone antiprogestin; and b) measuring progestin activity in the reaction mixture, wherein an increase in progestin activity, as compared to the amount of progestin activity measured in a reaction mixture not contacted with the sample, detects a progestin or a progestin agonist in the sample.
  • the invention features a method of screening a substance for progestin activity.
  • the method includes the steps of: a) contacting the substance with a reaction mixture including a progesterone receptor and a C-17-derivatized dexamethasone antiprogestin; and b) measuring progestin activity in the reaction mixture, wherein an increase in progestin activity, as compared to the amount of progestin activity measured in a reaction mixture not contacted with the substance, identifies a substance having progestin activity.
  • the invention features a method of screening a substance for antiprogestin activity.
  • the method includes the steps of: a) contacting the substance with a first reaction mixture including a progesterone receptor and a progestin or a progestin agonist; b) measuring progestin activity in the first reaction mixture; and c) comparing the progestin activity in the first reaction mixture with an amount of progestin activity in a second reaction mixture including a progesterone receptor, a progestin or a progestin agonist, and a C-17-derivatized dexamethasone antiprogestin.
  • the invention features a method of detecting an antiprogestin in a sample.
  • the method includes the steps of: a) contacting the sample with a first reaction mixture comprising a progesterone receptor and a progestin or a progestin agonist; b) measuring progestin activity in the first reaction mixture; and c) comparing the progestin activity in the first reaction mixture with an amount of progestin activity in a second reaction mixture including a progesterone receptor, a progestin or a progestin agonist, and a C-17-derivatized dexamethasone antiprogestin.
  • the invention features a method of inhibiting progestin activity in a cell in need of such inhibition.
  • the method includes administering an effective amount of a C-17-derivatized dexamethasone antiprogestin to the cell.
  • the cell may be a mammalian cell, such as a human, monkey, mouse, or rat cell.
  • the cell may be a primary cell, i.e., taken directly from the mammal, or the cell may be from an established cell line, for example, CV-1 or 1470.2.
  • the invention features a method of detecting a gene whose expression is modulated by an antiprogestin.
  • the method includes the steps of: a) contacting a progesterone receptor with a C-17-derivatized dexamethasone antiprogestin, wherein the progesterone receptor is present within a sample that includes a gene that is positively or negatively regulated by the progesterone receptor; b) measuring the expression level of the gene in the sample; and c) comparing the expression level of the gene in the sample with the expression level of the gene in a sample not contacted with the C-17-derivatized dexamethasone antiprogestin.
  • the C-17- derivatized dexamethasone antiprogestin may be a partial antiprogestin, i.e., a partial progestin agonist.
  • the sample not contacted with the C-17-derivatized dexamethasone antiprogestin may be contacted with a pure progestin agonist, such as R5020.
  • a progestin or a progestin agonist may be added to the sample, for example, before, after, or at the same time as the C-17-derivatized dexamethasone antiprogestin is added to the sample.
  • the sample may be a mammal, a cell, or a cell extract.
  • the C-17- derivatized dexamethasone antiprogestin may be dexamethasone-21-mesylate or dexamethasone-oxetanone.
  • Fig. 1 is a graph showing the effect of PR concentration on total transactivation and -fold induction of a progestin-responsive reporter gene in transiently co-transfected 1470.2 cells treated with R5020.
  • Fig. 2 is a diagram showing the structures of glucocorticoid agonists and progestin agonists, partial agonists and antagonists.
  • Fig. 3 is a graph showing the Dex-Mes-induced transcriptional activity of a progestin-responsive reporter gene in 1470.2 cells co-transfected with the reporter gene and PR cDNA.
  • Fig. 4 is a graph showing the Dex-Ox-induced transcriptional activity of a progestin-responsive reporter gene in 1470.2 cells co-transfected with the reporter gene and PR cDNA.
  • Fig. 5 A is a graph showing the relative activity of Dex, Dex-Mes, Dex-Ox, and RTI 3021-020 with the glucocorticoid receptor in 1470.2 cells not transfected with PR cDNA.
  • Fig. 5B is a graph showing the relative partial progestin activity of Dex, Dex- Mes, Dex-Ox, and RTI 3021-020 in 1470.2 cells transfected with different concentrations of PR cDNA.
  • Fig. 6 is a graph showing the cell-free competition of [ 3 H]R5020 binding to PR by non-radioactive steroids.
  • Fig. 7 is a graph showing the antiprogestin properties of Dex-Mes and Dex-Ox.
  • Dexamethasone is a potent glucocorticoid that displays very low affinity (Ojasoo et al., JMed Chem 31 :1160-1169, 1988) and activity (Vegeto et al, Mol Endocrinol 7:1244-1255, 1993) for the progesterone receptor (PR).
  • the present invention provides the surprising discovery that C-17 derivatives of Dex behave as antiprogestins with partial agonist activity.
  • both Dex-21 -mesylate (Dex- Mes), which is an affinity label and antagonist for glucocorticoid receptors (GR) (Simons and Thompson, Proc NatlAcadSci USA 78:3541-3545, 1981)
  • Dex-Ox Dex- oxetanone
  • PR-A and PR-B displayed high amounts of partial progestin activity with both PR-A and PR-B in two different cell lines, including CV-1 cells.
  • Dex-Ox and Dex-Mes had affinities for the cell-free PR that were consistent with their whole cell action arising from binding to the intracellular PR protein, and displayed partial progestin activity under conditions where other reported partial progestins were inactive.
  • both Dex derivatives were more active than either RU 486 or RTI 3021-020 under comparable conditions. These results are particularly significant, as very few partial agonists exist for PR.
  • Dex-Mes and Dex-Ox retained partial agonist activity independent of the PR isoform (PR-A or PR-B), the enhancer, the promoter, the reporter, or the cells examined.
  • Dex-Mes and Dex-Ox offer promise as mixed progestin agonists under a wider variety of laboratory and clinical settings than the previously reported compounds.
  • the activity of Dex-Mes and Dex-Ox with PR was totally unexpected. Dex itself has very little, if any, affinity for, or activity with, PR. Thus, it would have been predicted that derivatives of Dex would have been similarly inactive. Clearly this is not the case, as Dex-Mes and Dex-Ox displayed between 5% and 95%> agonist activity with PR, depending upon the conditions. These results suggest that other D-ring derivatives of Dex should be similarly active as partial PR agonists.
  • Dex-Ox and Dex-Mes are electrophilic affinity label that forms covalent bonds with the glucocorticoid receptor, although it does not covalently label PR (Simons et al., J Biol Chem 262:9676-9680, 1987).
  • Dex-Ox and Dex-Mes are antiglucocorticoids
  • use of these compounds as antiprogestins will probably not have major side effects of blocking glucocorticoid action, as Dex-Ox and Dex-Mes usually display significant amounts of partial glucocorticoid activity (Mercier et al., J Steroid Biochem 25:11-20, 1986; Szapary et al, J Biol Chem 271 :30576-30582, 1996). This is in contrast to the most commonly used antiprogestin, RU 486, which is a pure antiglucocorticoid in a wide variety of cells.
  • Dex-Mes and Dex-Ox as antiprogestins should be accompanied by reduced side effects, since fewer actions of glucocorticoid receptors will also be inhibited. Therefore, C-17 derivatives of Dex, such as Dex-Mes and Dex- Ox, offer the prospect of being useful partial progestin agonists in a broad variety of clinical and research situations in which partial progestin activity is desired. Definitions
  • progestin or “progestin agonist” is meant any compound, natural or synthetic, that is capable of binding to a progesterone receptor and stimulating progestin activity under physiological conditions.
  • progestin and progestin agonist include, respectively, progesterone and promegestone (R5020; Fig. 2).
  • progestin activity is meant the ability of progestins and progestin agonists to regulate certain physiological processes.
  • the amount of progestin activity in a sample may be determined, for example, by measuring the amount of: progestin (or progestin agonist) binding to a progesterone receptor (PR), e.g., the PR-A, PR-B, or PR-C receptor; progestin-stimulated expression of a progesterone receptor-regulated reporter gene in a whole cell or in a cell-free transcription system; progestin-stimulated cell growth or gene expression; endometrial wall thickening during the secretory phase of the menstrual cycle; ovulation; fertility (e.g., as indicated by blastocyst implantation or parturition); and/or inhibition of cervical ripening prior to parturition.
  • Relative progestin biological activity in a sample e.g., an animal; tissue, blood, or urine from an animal; cells; or
  • progestin activity is meant a rise in the level of progestin activity measured as described above, for example, an augmentation of the amount of progestin bound to a progesterone receptor; an augmentation of the progestin- stimulated expression of a progesterone receptor-regulated reporter gene in a whole cell or a cell-free transcription system; or an acceleration of a progestin-dependent physiological process, such as cell growth.
  • the increase is by at least 1.5- fold to 2-fold, more preferably by at least 3-fold, and most preferably by at least 5-fold.
  • the decrease is by at least about 20%>, and may be larger, e.g., by at least about 21%-40%, 41%-60%, 61%-80%, 81%-90%, or 91%- 100%).
  • a pure antiprogestin will cause a 100%) decrease, but smaller decreases are often desirable in compounds that would be considered as partial antiprogestins (i.e., antiprogestins with partial agonist activity).
  • progestin-dependent disease or “progestin-dependent condition” is meant an affliction, disorder, or physiological state that depends upon progestin activity for its existence or that is exacerbated by progestin activity.
  • progestin-dependent diseases include, for example, progestin-responsive tumors (as defined below); endometriosis; dysmenorrhea; and premenstrual syndrome.
  • progestin-dependent conditions include, for example, ovulation; the presence of a secretory endometrium capable of supporting blastocyst implantation; the inhibition of uterine contraction and/or cervical ripening; and pregnancy.
  • progestin-responsive tumor is meant a tumor that contains progesterone receptors and whose growth and/or metastatic potential is stimulated by the binding of progestin to progesterone receptors within the tumor.
  • antiprogestin or “progestin antagonist” is meant any compound, natural or synthetic, that inhibits the activity of a progestin or a progestin agonist.
  • a previously known example of an antiprogestin is RU 38,486 (RU 486; Fig. 2).
  • the antiprogestins of the invention are C-17 derivatives of dexamethasone, e.g., as shown in Fig. 2 and as described herein.
  • An antiprogestin or progestin antagonist may have (but does not necessarily have) progestin partial agonist activity.
  • C-17-derivatized dexamethasone is meant a chemical derivative of dexamethasone that contains a chemical group at its C-17 position that is different from the chemical group shown at the C-17 position of dexamethasone (Fig. 2). As used herein, any C-17-derivatized dexamethasone will also have antiprogestin activity.
  • Preferred examples of C- 17-derivatized dexamethasones include dexamethasone 21 - mesylate (Dex-Mes; Fig. 2) and dexamethasone oxetanone (Dex-Ox; Fig. 2).
  • progestin partial agonist or “progestin mixed agonist” is meant an antiprogestin that, in certain circumstances (for example, in certain types of cells), displays some progestin activity.
  • a progestin partial agonist or mixed agonist may bind to and inhibit the ability of a progesterone receptor to activate expression of a progestin-dependent gene in one cell type, but, in binding to a progesterone receptor in a second cell type, may allow the progesterone receptor to activate expression of a progestin-dependent gene (for example, a gene encoding a progesterone receptor, a gene encoding ⁇ -lactalbumin, or a gene under the transcriptional regulation of a mouse mammary tumor virus (MMTV) promoter).
  • MMTV mouse mammary tumor virus
  • sample is meant an animal (i.e., a warm-blooded animal, e.g., a human, a farm animal, a domestic animal, or a laboratory animal, as described hereinbelow); any body fluid (e.g., but not limited to, blood, urine, cerebrospinal fluid, semen, sputum, saliva, tears, joint fluids, body cavity fluids, or washings), tissue, or organ obtained from an animal; a cell (either within an animal, taken directly from an animal, or a cell maintained in culture or from a cultured cell line); a lysate (or lysate fraction) or extract derived from a cell; a molecule derived from a cell or cellular material (such as a DNA molecule used as a transcription template in a cell-free transcription assay); or a compound to be tested for progestin or antiprogestin activity (e.g., a test compound), which is assayed or analyzed for progestin or
  • body fluid
  • modulation in the gene expression level or “alteration in the level of gene expression” is meant a change in the amount of transcription, translation, mRNA stability, or protein stability, such that the overall amount of a product of the gene, i.e., an mRNA or polypeptide, is increased or decreased.
  • subject any animal that has progesterone receptors, to which the C-17-derivatized dexamethasone antiprogestins of the invention are administered for therapeutic or experimental purposes, or to regulate fertility.
  • the subject may be a cold-blooded animal, such as a fish, a reptile, or an amphibian, or the subject may be a a warm-blooded animal, such as a human, a farm animal, a domestic animal, or a laboratory animal, as described herein.
  • the subject may also be a cell or a DNA molecule in a cell-free environment (for example, a DNA molecule used as a transcription template in a cell-free transcription assay).
  • reaction mixture any environment that contains a progesterone receptor and can be used to measure progestin or antiprogestin activity of a test substance or progestin or antiprogestin activity within a sample.
  • the reaction mixture may be, for example, within a test tube or within a well of a tissue culture dish or microtiter plate containing a progesterone receptor either in soluble form or bound to a solid phase; upon the surface of a filter or a polymer bead carrying a progesterone receptor; or within an animal, animal tissue, cell, cell lysate, or cell extract containing a progesterone receptor.
  • an effective amount of a C-17-derivatized antiprogestin is meant an amount that is useful for performing the stated function (e.g., inhibition of progestin activity; treatment or prevention of a progestin-dependent condition) of the antiprogestin for which an effective amount is expressed.
  • the exact amount required will vary, depending upon recognized variables, such as the subject to be treated, the reason for treatment, and the specific C-17-derivatized dexamethasone antiprogestin compound employed. Thus, it is not possible to specify an exact “effective amount”. However, as described below, an appropriate "effective amount may be determined by one of ordinary skill in the art using only routine experimentation.
  • a subject such as a human, a farm animal, a domestic animal, or a laboratory animal, as described hereinbelow, or a cell, a cell-free transcription system, or a DNA molecule, for which it is desirable to treat, prevent, inhibit, or regulate a progestin-dependent disease or condition (or modulate progestin- dependent gene expression), or that is subjected to experimental administration of the C-17-derivatized antiprogestins of the invention in order to study their pharmacological properties, such as, but not limited to, safety, efficacy, or physiological effects.
  • treat is meant to administer the antiprogestin compounds of the invention to a subject, to a cell, or to a cell-free transcription system, in order to: eliminate a progestin-dependent disease or condition within a subject; stabilize or delay the progression of a progestin-dependent disease or condition within a subject; decrease the frequency or severity of symptoms and/or recurrences of a progestin-dependent disease or condition within a subject; or modulate progestin-dependent gene expression in the subject, cell, or cell-free transcription system.
  • prevent is meant to minimize the chance that a subject will develop a progestin-dependent disease or condition, or to delay the development of a progestin- dependent disease or condition in a subject.
  • the antiprogestin compounds of the invention may be administered to minimize the chance that a female subject will become pregnant.
  • antiprogestin therapy may be initiated prior to disease onset, thereby lessening the chance that the subject will fall prey to the disease, and/or delaying the onset of the disease, relative to the time that onset would have occurred, had antiprogestin therapy not been initiated.
  • about is meant ⁇ 10%> of a recited value.
  • Progesterone and other progestins play a major role in reproductive health and function, as well as in other extra-reproductive physiological processes. Based upon our current knowledge of these various biochemical pathways, it is now considered desirable to employ antiprogestin therapy, when possible, for the treatment, prevention, or regulation of a broad array of progestin-dependent diseases and conditions.
  • Compounds having antiprogestin activity are characterized by antagonizing the effects of progesterone or another progestin. As such, they may be used in any instance in which it may be desirable to modulate progestin activity.
  • the C-17-derivatized dexamethasone antiprogestins of the invention may be used to regulate fertility during the female reproductive cycle of an animal of this invention. They may therefore be used to control irregularities in the human menstrual cycle or to synchronize or repress the fertile periods of commercial animals (e.g., fish, cows, sheep, pigs, goats, or chickens), laboratory animals (e.g., apes, chimpanzees, rats, mice, or guinea pigs), or domestic animals (dogs, cats, ferrets, birds, rabbits, or horses). They may also be used to lessen menstrual flow, thereby being useful in the treatment or prevention of anemia and dysmenorrhea.
  • commercial animals e.g., fish, cows, sheep, pigs, goats, or chickens
  • laboratory animals e.g., apes, chimpanzees, rats, mice, or guinea pigs
  • domestic animals dogs, cats
  • Regulation of the female reproductive cycle by the antiprogestins of the invention also provides useful therapy for the prevention or treatment of premenstrual syndrome, endometriosis, leiomyoma (uterine fibroids), and/or ovarian cysts.
  • the progestins of the invention may be used to lessen the chance that a tubal pregnancy may occur.
  • the C-17-derivatized dexamethasone antiprogestins of the invention may be used as contraceptive agents for the prevention of pregnancy.
  • the antiprogestins of the invention may be administered prior to ovulation, or subsequent to ovulation.
  • the antiprogestins of the invention may be administered prior to coitus or after coitus to prevent pregnancy.
  • An antiprogestin dosage that is effective for contraception is one that inhibits fertility, e.g., by inhibiting ovulation or implantation of a fertilized egg or blastocyst.
  • progestin fluxes during the menstrual cycle and the role of progestin in ovulation and development of the secretory endometrium (i.e., an endometrium that allows implantation of a blastocyst)
  • the skilled practitioner can readily ascertain an effective antiprogestin dosage level and frequency to be used in the methods of the invention.
  • Antiprogestins may also be used for cervical ripening prior to labor induction, such as in term or post-term pregnancies, or when labor must be induced to expel a dead fetus. Antiprogestins may also be used to end a pregnancy by inducing expulsion of a living embryo or fetus from the womb, or to promote dilatation of the cervix prior to uterine curettage.
  • the antiprogestins of the invention may be used to treat progestin-responsive tumors, whether benign or metastatic, or to prevent the initial development or recurrence of cancer, particularly in subjects known to be at greater than normal risk for such cancers, compared to the general population (e.g., subjects that have a hereditary risk for such cancers, or who have previously had cancer).
  • the C-17-derivatized dexamethasone antiprogestins of the invention and compounds identified using any of the methods disclosed herein may be administered to subjects with a pharmaceutically acceptable diluent, carrier, or excipient, in unit dosage form.
  • pharmaceutically acceptable is meant a material that is not biologically or otherwise undesirable, i.e., the material may be administered to an individual along with a C-17-derivatized dexamethasone antiprogestin without causing any undesirable biological effects or interacting in a deleterious manner with any of the components of the pharmaceutical composition in which it is contained.
  • Conventional pharmaceutical practice may be employed to provide suitable formulations or compositions to administer such compositions to subjects.
  • Any appropriate route of administration may be employed, for example, but not limited to, intravenous, parenteral, transcutaneous, subcutaneous, intramuscular, intracranial, intraorbital, ophthalmic, intraventricular, intracapsular, intraspinal, intracisternal, intraperitoneal, intranasal, intrarectal, intravaginal, aerosol, or oral administration.
  • Therapeutic formulations may be in the form of liquid solutions or suspensions; for oral administration, formulations may be in the form of tablets or capsules; for intranasal formulations, in the form of powders, nasal drops, or aerosols; for intravaginal formulations, vaginal creams, suppositories, or pessaries; for transdermal formulations, in the form of creams or distributed onto patches to be applied to the skin.
  • Methods well known in the art for making formulations are found in, for example, Remington: The Science and Practice of Pharmacy (19th ed.) ed. A.R. Gennaro, Mack Publishing Company, Easton, PA 1995.
  • Formulations for parenteral administration may, for example, contain excipients, sterile water, or saline, polyalkylene glycols such as polyethylene glycol, oils of vegetable origin, or hydrogenated napthalenes.
  • Biocompatible, biodegradable lactide polymer, lactide/glycolide copolymer, or polyoxyethylene-polyoxypropylene copolymers may be used to control the release of the compounds.
  • Other potentially useful parenteral delivery systems for molecules of the invention include ethylene-vinyl acetate copolymer particles, osmotic pumps, implantable infusion systems, and liposomes.
  • Formulations for inhalation may contain excipients, for example, lactose, or may be aqueous solutions containing, for example, polyoxyethylene-9-lauryl ether, glycocholate and deoxycholate, or may be oily solutions for administration in the form of nasal drops, or as a gel.
  • the C-17-derivatized dexamethasone antiprogestins of the invention may be administered to a subject in an amount sufficient to inhibit progestin activity in a subject in need thereof, or to treat, prevent, inhibit, or regulate a progestin-dependent condition in a subject in need of such treatment, prevention, inhibition, or regulation.
  • the optimal dosages used will vary according to the individual being treated, the particular compound being used, and the chosen route of administration. The optimal dosage will also vary among individuals on the basis of age, size, weight, gender, and physical condition. Methods for determining optimal dosages are described, for example, in Remington: The Science and Practice of Pharmacy (19th ed.) ed. A.R. Gennaro, Mack Publishing Company, Easton, PA 1995.
  • the amount of active ingredient that may be combined with a carrier material to produce a single dosage form will vary depending upon the disease treated, the animal species, and the particular mode of administration. A therapeutically effective amount may be determined by routine experimentation and by analogy from the amounts used to treat the same disease states with analogous antiprogestin compounds.
  • a unit dose of the antiprogestin may preferably contain between 0.001 milligram (mg) and 1 gram of the active ingredient.
  • an antiprogestin of the invention would be administered in an amount ranging from approximately 0.001 to 10 mg/kg of body weight, and preferably, from 0.1 to 3 mg/kg would be administered.
  • the compounds may be administered daily one to four times per day, preferably once or twice a day.
  • Antiprogestins may also be administered weekly, monthly, or sporadically (for example, after coitus), as is well known in the art. Examples of antiprogestin administration regimens may be found, for example, in Bygdeman et al., Eur J Contracept Reprod Health Care 4:103-107, 1999 and Spitz and Robbins, Hum Reprod Update 4:584-593, 1998.
  • the efficacy of administration of a particular dose of an C-17-derivatized dexamethasone antiprogestin can be determined by evaluating the particular aspects of the medical history, signs, symptoms, and objective laboratory tests that are known to be useful in evaluating the status of a subject in need of inhibition of progestin activity or a subject that requires treatment, prevention, inhibition, or regulation of a progestin- dependent disease or condition.
  • These signs, symptoms, and objective laboratory tests will vary, depending upon the particular disease or condition being treated or prevented, as will be known to any clinician who treats such subjects or a researcher conducting experimentation in this field.
  • a subject's frequency or severity of recurrences is shown to be improved, 2) the progression of the disease is shown to be stabilized or delayed, or 3) the need for use of other medications for treating the condition or disease is lessened or obviated, then a particular treatment will be considered efficacious.
  • the antiprogestins of the present invention in using the antiprogestins of the present invention to treat a progestin-responsive tumor, inhibition of tumor growth or metastases, or shrinkage of the tumor, are indications that an antiprogestin treatment is efficacious.
  • a decrease in the signs or symptoms of a diagnosed progestin-dependent disease or condition (such as endometriosis or uterine fibroids) after antiprogestin treatment indicates the efficaciousness of the treatment.
  • Progestins are involved in diverse physiological processes. Although best studied for their role in the female reproductive cycle and in diseases and conditions of the female reproductive organs such as the breast, ovary, uterus, and cervix, progestins also play a role in male animals, both in normal physiology and in disease. In particular, progestin may play a role in the development and/or progression of prostate cancer and meningiomas. As progestin levels in both male and female subjects both affect and reflect a subject's health and reproductive status, measurement of a subject's progestin and/or antiprogestin levels allows the diagnosis and/or monitoring of a progestin-dependent disease or condition in the subject.
  • the C-17-derivatized dexamethasone antiprogestins of the invention may be employed in diagnostic assays for the measurement of progestin levels and/or antiprogestin levels in such subjects. These diagnostic assays may also be used to monitor progestin, progestin agonist, and/or antiprogestin levels in a subject receiving treatment for the purpose of inhibiting or regulating progestin activity (e.g., for contraception, regulation of menses, or induction of cervical ripening).
  • diagnostic assays may also be used to monitor progestin, progestin agonist, and/or antiprogestin levels in a subject receiving treatment for the purpose of inhibiting or regulating progestin activity (e.g., for contraception, regulation of menses, or induction of cervical ripening).
  • a progestin or progestin agonist in a sample from a subject e.g., a tissue biopsy, blood, urine, cells, cell lysate, or cell extract
  • the sample is added to a reaction mixture (e.g., within a well of a microtiter plate) that contains a progesterone receptor.
  • a reaction mixture e.g., within a well of a microtiter plate
  • a C-17-derivatized dexamethasone antiprogestin of the invention is added to the well either before, after, or at the same time as the addition of the sample to the well.
  • One of ordinary skill in the art will know how to measure the amount progestin or progestin agonist activity using one of the many receptor binding assays known in the art, such as the cell-free receptor binding assay described in
  • Example N The relative increase in progestin activity, for example, indicated by a decrease in binding of a labeled (e.g., radioactive, colorimetric, or fluorometric) C-17- derivatized dexamethasone antiprogestin to the progesterone receptors in the sample well, as compared to a control well not containing the sample, indicates the relative level of progestin in the sample.
  • a labeled e.g., radioactive, colorimetric, or fluorometric
  • assays for progestin activity in a sample, or high-throughput screens to identify compounds that have progestin activity may also be performed using one of the many known reporter gene assays, for example, the luciferase reporter gene assay described in Examples II-IV below.
  • the reaction mixture e.g., in a microtiter well
  • the reporter gene e.g., the reporter gene described in Examples II-IV below
  • any other factors necessary for transactivation of the reporter gene by the progesterone receptor may also be performed using one of the many known reporter gene assays, for example, the luciferase reporter gene assay described in Examples II-IV below.
  • the reporter gene and progesterone receptor may be within a cell or within a cell-free extract, for example.
  • the microtiter well would also contain a C- 17- derivatized dexamethasone antiprogestin of the invention, which may be introduced into the well either before, after, or at the same time as the sample or test compound is added to the well.
  • the sample or test substance is added to the microtiter well, and the amount of reporter gene activity is then measured.
  • An increase in reporter gene activity compared to the amount of reporter gene activity in a control microtiter well lacking the sample or the test compound, indicates the progestin activity of the sample or test compound.
  • Antiprogestin activity may be analogously detected in a sample from a subject, for example, using a progesterone receptor binding assay as described above.
  • the sample is added to a reaction mixture containing a progesterone receptor and a progestin or progestin agonist.
  • the progestin activity in the mixture is measured (e.g., by the amount of binding to progesterone receptors) and compared with the progestin activity in a second microtiter well that contains, in addition to a progesterone receptor and a progestin or progestin agonist, a C-17-derivatized dexamethasone antiprogestin of the invention.
  • the progestin activity in the second microtiter well is compared to the progestin activity in a third well that contains the progesterone receptor and the progestin or progestin agonist, but lacks the antiprogestin.
  • Analogous assays may also be employed in high-throughput screens to identify compounds that have antiprogestin activity by using a test compound as the sample, rather than a sample from a subject.
  • reporter gene assays may be used to measure antiprogestin activity in samples or test compounds being assayed for antiprogestin activity.
  • the sample or test compound is added to a reaction mixture (e.g., in a microtiter well) containing a progesterone receptor and a reporter gene regulated by the progesterone receptor, as described above.
  • a progestin or a progestin agonist may be added to measure antiprogestin activity in samples or test compounds being assayed for antiprogestin activity.
  • a reaction mixture e.g., in a microtiter well
  • a progesterone receptor e.g., a reporter gene regulated by the progesterone receptor
  • the amount of reporter gene activity within the well is measured and compared with the amount of reporter gene activity in a second well containing a progesterone receptor, a progesterone receptor-responsive reporter gene, a progestin or a progestin agonist, plus a C-17- derivatized dexamethasone antiprogestin.
  • a decrease in reporter gene activity in the first well that is at least about 20% of the decrease in reporter gene activity in the second well (wherein the decrease in the second well is in comparison to the amount of reporter gene activity in a third well lacking the antiprogestin) indicates that the sample or test compound contains antiprogestin activity.
  • the antiprogestin compounds of the invention can also be used to detect genes that are positively or negatively regulated by antiprogestins.
  • a sample containing mammalian cells or a mammalian cell-free transcription or transcription/translation extract i.e., containing progesterone receptors, genes that are transcriptionally regulated by progesterone receptors, and any other factors necessary to support transcription or transcription/translation
  • a C-17-derivatized antiprogestin of the invention is contacted with a C-17-derivatized antiprogestin of the invention, such that the antiprogestin binds to the progesterone receptors and modulates expression of one or more downstream genes
  • exogenous progestin or a progestin agonist to the samples either before, after, or at the same time as the antiprogestin is added to the sample.
  • the mRNA and/or protein patterns in the treated samples are compared to those in untreated control samples, and increases or decreases in specific mRNAs or proteins in the treated sample indicate an mRNA or protein encoded by a gene that is positively or negatively regulated by the particular antiprogestin used in the experiment.
  • the gene encoding the mRNA or protein is then identified by well known methods (for example, using Serial Analysis of Gene
  • novel drugs with progestin or antiprogestin activity may be identified from large libraries of natural products or synthetic (or semi-synthetic) extracts or chemical libraries according to methods known in the art.
  • test extracts or compounds are not critical to the screening procedure(s) of the invention. Accordingly, virtually any number of chemical extracts or compounds can be screened using the exemplary methods described herein. Examples of such extracts or compounds include, but are not limited to, plant-, fungal-, prokaryotic- or animal-based extracts, fermentation broths, and synthetic compounds, as well as modification of existing compounds.
  • Synthetic compound libraries are commercially available, e.g., from Brandon Associates (Merrimack, NH) and Aldrich Chemical (Milwaukee, WI).
  • libraries of natural compounds in the form of bacterial, fungal, plant, and animal extracts are commercially available from a number of sources, including Biotics (Sussex, UK), Xenova (Slough, UK), Harbor Branch Oceangraphics Institute (Ft. Pierce, FL), and PharmaMar, U.S.A.
  • the C-17-derivatized dexamethasone antiprogestins used in the methods of the invention may be readily synthesized using techniques generally known to synthetic organic chemists. Suitable methods for synthesizing Dex-Mes and Dex-Ox, for example, are provided in the Examples below, and are known in the art. Dex-Ox and Dex-Mes may be further modified, for example, by replacing the oxygen of the four- membered ring of Des-Ox (Fig.
  • C-21 -derivatized dexamethasone antiprogestins may be used in the methods of the invention.
  • Such C-21 -derivatized antiprogestins may be synthesized, for example, as described in Simons et al., J Steroid Biochem 13:311 -322, 1980.
  • C-17-derivatized dexamethasone antiprogestins that are particularly useful in the methods of the invention, for example, those having both antiprogestin and partial agonist activity, may be readily identified using methods that are well known to those of ordinary skill in the art.
  • cited hereinabove and hereinbelow are numerous references that describe in vitro and in vivo methods for evaluating the relative antiprogestin and partial agonist activity of a compound.
  • the present invention is more particularly described in the following examples, which are intended as illustrative only, since numerous modifications and variations therein will be apparent to those of ordinary skill in the art.
  • MMTVLuc (pLTRLuc) was obtained from Gordon Hager (NIH, Bethesda, MD). The Renilla null luciferase reporter was obtained from Promega (Madison, WI).
  • Cell culture and transfection Monolayer cultures of COS-7 cells were grown at 37°C with 5% CO 2 in Dulbecco's modified Eagle's medium (DMEM; GIBCO/BRL Life Technologies, Inc.) supplemented with 5%> of fetal bovine serum, respectively.
  • DMEM Dulbecco's modified Eagle's medium
  • the 1470.2 mouse mammary adenocarcinoma cells (Pennie et al., Mol Cell Biol 15:2125-2134, 1995) were grown in DMEM with 4.5 g glucose/L (Quality Biologicals, Inc.) whereas T47D cells were grown in Dulbecco's modified Eagle's medium with high glucose (4.5 g/L, 2 mM glutamine, and 60 ng/ml insulin), both with 10% of fetal bovine serum.
  • the 1470.2 cells were transiently transfected with the human PR-B construct, 1 ⁇ g of MMTVLuc, and 50 ng Renilla null luciferase, with the total transfected DNA brought up to 3 ⁇ g/60 mm dish with pBSK + DNA, using the calcium phosphate method as previously described (Szapary et al., J Biol Chem 271:30576-30582, 1996). Following 24 h of steroid treatment, the cells were harvested in lx Passive Lysis Buffer (0.5 ml / dish; Promega, Madison, WI).
  • CV-1 and T47D cells were transiently transfected with human PR plasmids and 1 ⁇ g reporter construct (GREtkCAT, GREtkLuc, or MMTVLuc) as assayed as described (Szapary et al., J Biol Chem 271 :30576-30582, 1996).
  • Fig. 2 shows the structures of the agonist and antagonist steroids used in our studies.
  • the structures of the agonists for GR (Dex) and PR (R5020) are shown above the bold line.
  • the structures for the two new partial antiprogestins of the invention (Dex-Mes and Dex-Ox), which previously have been described as antiglucocorticoids (Simons and Thompson, Proc NatlAcadSci USA 78:3541- 3545, 1981; Pons and Simons, J Org Chem 46:3262-3264, 1981 ; Lamontagne et al., Endocrinology 114:2252-2263, 1984), are below the bold line.
  • the previously described antiprogestins (RTI 3021-020 and RU 486), are also below the bold line.
  • Data analysis The biological activity with subsaturating concentrations of agonist, or saturating concentrations of antagonist, was expressed as percent of maximal activity with saturating concentrations of agonist (30 nM R5020 unless otherwise noted).
  • the fold induction with 30 nM R5020 was calculated as either the normalized chloramphenicol acetyl transferase (CAT) or luciferase activity with 30 nM R5020 divided by the basal activity obtained with ethanol. Individual values were generally within ⁇ 20%> of the average, which was plotted.
  • the 1470.2 cells were selected for the majority of assays for two reasons. First, they have no endogenous PR, thereby allowing the introduction by transient transfection of either PR-A or PR-B isoforms. Second, the 1470.2 cells afforded a much larger dynamic range of transactivation vs. concentration of transiently transfected PR than did CV-1 cells (3 to 20-fold induction over about a 5- fold concentration of PR). Therefore, experiments in 1470.2 cells could be conducted under several conditions in which PR was limiting for transactivation.
  • Fig. 1 is a control experiment showing the effect of PR concentration on total transactivation and -fold induction in transiently transfected 1470.2 cells.
  • Triplicate 1470.2 cells were transfected as described in Example I above with MMTVLuc reporter and the indicated amounts of human PR-B plasmid, plus 50 ng of Renilla plasmid as an internal control for transfection, and then treated with EtOH ⁇ 30 nM R5020. After determining the relative levels of Luciferase expression, the data were normalized for Renilla expression and plotted both as total activity with 30 nM R5020 (filled circles) and as fold induction above the basal (EtOH) activity (open squares) vs. PR concentration. Error bars indicate the SD of triplicate plates.
  • Fig. 3 shows the transactivational activity of Dex-Mes in 1470.2 cells transiently transfected with PR.
  • Triplicate 1470.2 cells were transfected with the indicated amounts of PR-B plasmid as described in Fig. 1 and treated with EtOH ⁇ 30 nM R5020, 1 ⁇ M Dex-Mes, or 10 ⁇ M Dex-Mes. All data were normalized for Renilla expression. The relative levels of total Luciferase expression were then plotted for EtOH, 30 nM R5020, and 10 ⁇ M Dex-Mes. The numbers in parentheses above the bars for 30 nM R5020 indicate the fold induction.
  • this GR was inactive with the added Dex-Mes.
  • Dex-Mes transactivational activity was seen only after adding PR-B.
  • Dex-Mes exhibited between 5% and 50% agonist activity for both human PR-A and human PR-B induction of either GREtkC AT or MMTVLuc reporters. Therefore, the partial agonist activity of Dex-Mes with PR was independent of receptor form (PR-A or PR-B), enhancer, promoter, gene (GREtkC AT and MMTVLuc), and cell type (1470.2 and CV-1 cells).
  • Example III PR partial agonist activity of Dex-Ox
  • FIG. 2 Another C-17 derivative of Dex, Dex-Ox (Fig. 2), also possessed partial agonist activity for PR induction of MMTVLuc in transiently transfected 1470.2 cells.
  • Fig. 4 shows the transcriptional activity of Dex-Ox in 1470.2 cells with transiently transfected PR.
  • Triplicate 1470.2 cells were transfected with the indicated amounts of PR-B plasmid as described for the experiment shown in Fig. 1 , but without Renilla, and treated with EtOH ⁇ 30 nM R5020, or 300 nM Dex-Ox. All data were normalized for protein levels in the cell lysates.
  • the relative levels of total Luciferase expression were then plotted for EtOH, 30 nM R5020, and 300 nM Dex-Ox.
  • the numbers in parentheses above the bars for 30 nM R5020 indicate the fold induction.
  • the percent of maximal induction by 30 nM R5020 that was achieved with 300 nM Dex-Ox with the two PR concentrations is displayed in the insert graph.
  • the error bars represent the SD of triplicate plates.
  • Fig. 4 shows that Dex-Ox is a partial agonist, as increasing concentrations of Dex-Ox up to 3 ⁇ M did not afford any increase in total transactivation. Dose-response curves yielded an EC 50 of about 30 nM, compared to 0.4 nM for R5020. Furthermore, as with Dex-Mes, the amount of agonist activity as percent of maximal transactivation by saturating concentrations of R5020 was higher in the presence of more PR. Again, the activity of Dex-Ox was not due to the endogenous GR as shown by the inactivity in the absence of transfected PR (Fig. 5 A) and by the increased total activity with added PR-B (Fig. 5B).
  • Dex-Ox also displayed between 40% and 60% agonist activity with PR-B in CV-1 cells with GREtkCAT and in T47D cells, which contain endogenous PR- A and B, with the GREtkLuc reporter. Therefore, as with Dex-Mes, the partial agonist activity of Dex-Ox with PR is independent of enhancer, promoter, gene, and cell type.
  • Example IV PR agonist activity of Dex-Mes and Dex-Ox compared to other antiprogestins
  • the partial agonist RTI 3021-020 has been described as being inactive in CV-1 cells (Wagner et al., Proc NatlAcadSci USA 93:8739-8744, 1996), and we have confirmed this. Furthermore, we found that Dex-Mes and Dex-Ox display much more agonist activity than either RIT 3021-020 or RU 486 in CV-1 cells. A more detailed study was then performed in 1470.2 cells, in which greater induction responses with PR can be observed.
  • Figs. 5 A and 5B show a comparison of relative partial progestin activity of Dex
  • R5020 (30 pM, 90 pM, or 30 nM), or 1 ⁇ M Dex, Dex-Mes (DM), Dex-Ox, or RTI
  • Dex-Mes and Dex-Ox appear to have broader-range mixed agonist activity for
  • Example V Cell-free binding of Dex-Mes and Dex-Ox to PR
  • Fig. 6 shows a cell-free competition of [ 3 H]R5020 binding by non-radioactive steroids.
  • Duplicate samples of overexpressed human PR-B containing [ 3 H]R5020 and increasing concentrations of the indicated non-radioactive steroids were incubated and analyzed as described in Example I above. The observed residual binding data were then expressed as percent of uncompeted [ 3 H]R5020 binding and plotted as a function of the concentration of non-radioactive steroid. The error bars indicate the range of duplicate samples.
  • the cell-free competition binding experiments shown in Fig. 6 indicated a binding affinity for Dex-Ox and Dex-Mes that was 1.4% and ⁇ 0.3%, respectively, that of R5020. These affinities closely correlated with the EC 50 s of Dex-Ox (1.3%) and Dex-Mes (0.11%) relative to R5020. This correlation strongly supports the conclusion that the partial agonist activity of Dex-Ox and Dex-Mes derives from their binding to PR.
  • Example VI Antiprogestin activity of Dex-Mes and Dex-Ox To determine whether Dex-Mes and Dex-Ox have antiprogestin activity, we assessed the ability of these steroids to antagonize progestin-activated induction of a reporter gene by PR. Triplicate cultures were transfected as described for the experiment shown in Fig. 1 and induced with the indicated concentrations of R5020 ⁇ Dex-Mes or Dex-Ox. The absolute levels of luciferase activity ( ⁇ S.D. of triplicate values) were plotted. In view of the lower affinity of Dex-Mes vs.
  • Dex-Ox for PR we used 1 ⁇ M and 10 ⁇ M Dex-Mes, but only 1 ⁇ M Dex-Ox, to inhibit the action of 300 pM R5020. With high enough concentrations, each Dex derivative reduced the activity of 300 pM R5020 to that of the competing steroid alone (Fig. 7). Therefore, Dex-Mes and Dex-Ox are antiprogestins with potencies that parallel their affinity for PR.

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Abstract

L'invention concerne des procédés pour inhiber l'activité de la progestine dans une cellule ou chez un sujet nécessitant cette inhibition ainsi que des procédés pour traiter ou prévenir les états dépendants de la progestine chez un sujet ne nécessitant pas ce traitement ou la prévention. Les procédés consistent à administrer à la cellule ou au sujet une quantité efficace d'antiprogestine dexaméthasone dérivée de C-17. L'invention concerne aussi des procédés pour cribler les substances à des fins de détection d'une activité de progestine ou d'antiprogestine ainsi que des procédés pour détecter des progestines, des agonistes des progestines ou des antiprogestines dans un échantillon en utilisant les antiprogestines dexaméthasones dérivées de C-17 que décrit l'invention.
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