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D O Toft

Publications and source records attributed to D O Toft.

At least 73 records · Page 4Linked to original sources

Immunologic analysis of human breast cancer progesterone receptors. 1. Immunoaffinity purification of transformed receptors and production of monoclonal antibodies.

A monoclonal antibody (MAb), designated PR-6, produced against chick oviduct progesterone receptors [Sullivan, W. P., Beito, T. G., Proper, J., Krco, C. J., & Toft, D. O. (1986) Endocrinology (Baltimore) 119, 1549-1557] cross-reacts with the Mr 120,000 human B receptors. An immunomatrix prepared with PR-6 was used to purify progesterone receptors (PR) from T47D human breast cancer cells. Single-step immunoaffinity chromatography results in enrichment of B receptors (identified by immunoblot with PR-6 and by photoaffinity labeling with [3H]promegestone) to a specific activity of 1915 pmol/mg of protein (or 23% purity) and with 27% yield. Purity and yields as judged by gel electrophoresis and densitometric scanning of the B protein were approximately 1.7-fold higher due to partial loss in hormone binding activity at the elution step. A second purification step by diethylaminoethyl chromatography gives further enrichment to 3720 pmol/mg of protein (or 44% purity) to yield essentially two proteins, 120-kilodalton (kDa) B receptors and a 76-kDa non-steroid binding protein, each in approximately equivalent amounts. B receptors purified under these conditions are transformed and biologically active. They were maintained as undegraded 120-kDa doublets and retained both hormone and DNA binding activities. Isolated B receptors were free of the 90-kDa non-steroid binding protein observed to be associated with 8S untransformed receptors in other systems and were free also of the non-hormone binding 105-108-kDa B antigen described previously to copurify with chick PR. These purified B receptors were used as immunogen for production of four monoclonal antibodies against human PR. Three of the MAbs, designated as B-30 (IgG1), B-64 (IgG1), and B-11 (IgM), are specific for B receptors. The fourth MAb, A/B-52 (IgG1), reacts with both A and B receptors. The IgG MAbs are monospecific for human PR since they recognize and absorb native receptor-hormone complexes, displace the sedimentation of 4S receptors on salt containing sucrose gradients, and, by immunoblot assay of crude T47D cytosol, react only with receptor polypeptides. Although mice were injected with B receptors only, production of A/B-52 which recognized both A and B receptors provides evidence that these two proteins share regions of structural homology. These new MAbs are valuable reagents for further studies of human receptor structure and function and for clinical immunodetection of PR in breast tumors.

Animals↗

Immunologic analysis of human breast cancer progesterone receptors. 2. Structure, phosphorylation, and processing.

We have used a monoclonal antibody (MAb) directed against chick oviduct progesterone receptors (PR), that cross-reacts with human PR, to analyze PR structure and phosphorylation. This MAb, designated PR-6, interacts only with B receptors (Mr 120,000) of T47D human breast cancer cells; it has no affinity for A receptors (Mr 94,000) or for proteolytic fragments from either protein. The antibody immunoprecipitates native B receptors and was used to study the structure of native untransformed 8S and transformed 4S receptors, using sucrose density gradient analysis, photoaffinity labeling, and gel electrophoresis. On molybdate-containing low-salt gradients, PR-6 complexes with 8S B receptors, causing their shift to the bottom of the gradient while A receptors remain at 8 S. Therefore, A and B receptors form separate 8S complexes, and we conclude that A and B do not dimerize in the holoreceptor. Similar gradient studies using salt-containing, molybdate-free buffers show that there are two forms of salt-transformed 4S receptors, comprising either A proteins or B proteins, suggesting that A and B are also not linked to one another in transformed PR. The independence of A- and B-receptor complexes was confirmed by the finding that purified, transformed B receptors bind well to DNA-cellulose. Since PR-6 cross-reacts with nuclear PR, it was used to analyze nuclear PR processing--a down-regulation step associated with receptor loss as measured by hormone binding. Insoluble nuclear receptors and soluble cytosol receptors were measured by immunoblotting following treatment of T47D cells for 5 min to 48 h with either R5020 or progesterone. From 8 to 48 h after R5020 treatment, immunoassayable receptors decreased in nuclei and were not recovered in cytosols. Nuclear receptors also decreased after progesterone treatment but replenished in cytosols between 8 and 24 h after the start of treatment. Thus, processing involves a true loss of nuclear receptor protein, and not just loss of hormone binding activity, and occurs after progesterone or R5020 treatment. This loss is chronic, however, only in R5020-treated cells. Additional studies focused on the covalent modifications of receptors. We previously described shifts in apparent molecular weight of nuclear PR following R5020 treatment using in situ photoaffinity labeling. To show whether these shifts can be explained by receptor phosphorylation, untreated cells and hormone-treated cells were metabolically labeled with [32P]orthophosphate, and the B receptors were isolated by immunoprecipitation with PR-6 and analyzed by sodium dodecyl sulfate (SDS) gel electrophoresis.(ABSTRACT TRUNCATED AT 400 WORDS)

Breast Neoplasms↗

Relationship of the 90-kDa murine heat shock protein to the untransformed and transformed states of the L cell glucocorticoid receptor.

Incubation of molybdate-stabilized L cell cytosol with a monoclonal antibody directed against the 100-kDa glucocorticoid-binding protein causes the immune-specific adsorption to protein A-Sepharose of both the 100-kDa glucocorticoid receptor and the 90-kDa murine heat shock protein (hsp90) (Sanchez, E. R., Toft, D. O., Schlesinger, M. J., and Pratt, W. B. (1985) J. Biol. Chem. 260, 12398-12401). When the glucocorticoid receptor in cytosol is transformed to the DNA-binding state, hsp90 dissociates. In this paper, we show that temperature-mediated dissociation of hsp90 from the receptor is a hormone-dependent event in the same manner as temperature-mediated transformation to the DNA-binding state. In contrast to temperature-mediated transformation, ammonium sulfate causes both dissociation of hsp90 from the receptor and conversion of the receptor to the DNA-binding form in a manner that does not require the presence of steroid. The untransformed form of the glucocorticoid receptor and the strongly negatively charged hsp90 protein behave similarly on DEAE-cellulose chromatography, suggesting that the hsp90 component may contribute significantly to the net negative charge behavior of the non-DNA-binding form of the receptor complex.

Ammonium Sulfate↗

Identification of the 90 kDa substrate of rat liver type II casein kinase with the heat shock protein which binds steroid receptors.

It was recently reported that the type II casein kinase of rat liver cytosol co-purified with a major 90 kDa substrate when subjected to gel filtration at low ionic strength. The identity of the 90 kDa substrate was unknown. We have verified this report and have shown that the 90 kDa substrate is recognized by a monoclonal antibody prepared against the 90 kDa heat shock protein. This ubiquitous phosphoprotein is known to increase in abundance in cells subjected to heat stress and has been shown to complex steroid receptors and certain retrovirus tyrosine kinases.

Animals↗

Structure-function properties of the chicken progesterone receptor A synthesized from complementary deoxyribonucleic acid.

The chicken progesterone receptor (PR) cDNA has been cloned and sequenced in our laboratory. Functional receptor A was synthesized from cDNA in two independent systems, by transient transfection of receptor-negative COS M6 cells and by in vitro transcription and translation. These receptors exhibited DNA and hormone binding properties similar to the native PR from oviduct. The ability of receptor to induce target gene transcription was measured by cotransfection of receptor-negative CV-1 cells with expression vectors containing the receptor A cDNA and a progesterone-inducible promotor linked to the chloramphenicol acetyl transferase (CAT) gene. In these assays, receptor A produced hormone-dependent induction of CAT activity. In order to define the functional domains of receptor A, expression constructs coding for C-terminal deletion proteins were prepared. Deletion of the C-terminus resulted in loss of hormone binding activity as well as a loss of CAT induction. However, when 290 amino acids were removed from the C-terminus, this severely truncated receptor protein produced hormone-independent target gene activation. Mutant receptor proteins which retained the highly conserved cysteine-rich (C1) region were able to bind to DNA-cellulose, although removal of 290 amino acids from the C-terminus resulted in reduced affinity for DNA. Deletion of part or all of the C1 region resulted in loss of both DNA-binding and transcriptional activation capacities. These results confirm that C1 functions in DNA binding and transcriptional activation and that hormone binding activity can be localized to the C-terminal half of the protein.

Animals↗

Sequence and expression of a functional chicken progesterone receptor.

We have cloned and sequenced 4.5 kilobases (Kb) of cDNA encoding the chicken progesterone receptor. The complete cDNA contains an open reading frame of 2361 nucleotides in length and encodes a polypeptide of 787 amino acids with a mol wt of 85.9 K. At least four mRNA species have been detected in chick oviduct cells. Direct sequencing of variant cDNAs has suggested that two of the mRNAs (4.5 Kb and 3.6 Kb) differ only in the length of their 3'-untranslated regions. A third mRNA (1.8 Kb) produces a truncated polypeptide which encodes the immunoreactive NH2 terminal sequence of the receptor but lacks the hormone binding regional and half of the DNA-binding domain. The polypeptide expressed from the receptor cDNA in progesterone receptor negative Cos M-6 cells is indistinguishable from oviduct progesterone receptor in terms of hormone binding and antibody reactivity. Furthermore, the cloned receptor is capable of activating transcription of a target gene. This activation is progesterone dependent (with half-maximal stimulation at approximately 3.3 x 10(-10) M) and specific for the target gene.

Amino Acid Sequence↗

Molecular cloning of the chicken progesterone receptor.

To define the functional domains of the progesterone receptor required for gene regulation, complementary DNA (cDNA) clones encoding the chicken progesterone receptor have been isolated from a chicken oviduct lambda gt11 cDNA expression library. Positive clones expressed antigenic determinants that cross-reacted with six monospecific antibodies derived from two independent sources. A 36-amino acid peptide sequence obtained by microsequencing of purified progesterone receptor was encoded by nucleotide sequences in the longest cDNA clone. Analysis of the amino acid sequence of the progesterone receptor deduced from the cDNA clones revealed a cysteine-rich region that was homologous to a region found in the estrogen and glucocorticoid receptors and to the avian erythroblastosis virus gag-erb-A fusion protein. Northern blot analysis with chicken progesterone receptor cDNA's indicated the existence of at least three messenger RNA species. These messages were found only in oviduct and could be induced by estrogens.

Amino Acid Sequence↗

Peptide mapping analysis of the avian progesterone receptor.

Progesterone receptor from the chicken oviduct has been shown to exist as two 8 S forms (I and II). Form I contains a protein of Mr = 75,000 and form II contains a protein of Mr = 110,000. In addition to these hormone-binding proteins, both receptor forms contain a protein with Mr = 90,000 that does not bind steroid. To investigate the possibility that these proteins are structurally related, they were isolated by preparative sodium dodecyl sulfate gel electrophoresis and subjected to peptide mapping analyses after digestion with Staphylococcus aureus V-8 protease, papain, or alpha-chymotrypsin. Receptor proteins labeled with [32P]orthophosphate in tissue minces were also subjected to peptide mapping analysis. The electrophoretic patterns of peptide fragments of the 90-kDa protein from receptor forms I and II were identical but were different from the peptide patterns obtained from the 75- and 110-kDa proteins which generated similar peptide patterns, indicating that these are structurally related. However, some differences were evident, indicating that these latter two proteins are not identical substrates for proteases. A one-dimensional comparison of the phosphopeptide patterns from the 75- and 110-kDa proteins also showed them to be similar, but not identical. Two-dimensional maps of phosphopeptides generated from the 75- and 110-kDa protein after complete tryptic digestion revealed multiple sites of phosphorylation which were identical except for one phosphopeptide that was unique to the 110-kDa protein. These results show the two progesterone-binding proteins to be very similar in structure, but to differ considerably from the 90-kDa protein.

Animals↗

Nuclease resistance and the enrichment of native nuclear acceptor sites for the avian oviduct progesterone receptor.

High-affinity nucleoprotein acceptor sites for the avian oviduct progesterone receptor (PR) have been enriched by a combination of nuclease digestion and centrifugation. These enriched binding elements exhibited markedly enhanced PR binding on a per mass DNA basis compared to chromatin (20- to 25-fold) or dehistonized chromatin (4- to 5-fold). Electrophoretic analysis of the nuclease-resistant DNA showed that there is a set of DNA fragments of 100-150 base pairs that are protected from digestion. Excessive digestion resulted in smaller DNA fragments and a loss of PR binding activity. The PR binding was saturable using a crude receptor preparation and displayed a competition with the same receptor preparation that was labeled with nonradioactive progesterone. The enhanced binding was also demonstrable using highly purified receptor preparations that exhibit two classes of binding sites both of which are of high affinity and saturable as assessed by Scatchard analyses. These two high-affinity classes of binding sites are shown to be competed by unlabeled purified PR. The nuclease resistance of these nucleoprotein acceptor sites from chromatin is a property similar to the nuclear matrix binding sites suggesting a relationship between these two classes of nuclear acceptor sites.

Animals↗

Preparation of monoclonal antibodies to the avian progesterone receptor.

In an effort to obtain additional probes for analysis of the avian progesterone receptor, this receptor was isolated and used to prepare several monoclonal antibodies. Progesterone receptor purified from oviduct cytosol by chromatography on deoxycorticosterone-Sepharose and heparin-agarose was used as the immunizing antigen. Twenty-nine hybridoma cultures which tested positive in an enzyme-linked immunosorbent assay against the receptor preparation were subcloned resulting in establishment of 12 stable cell lines. Of these, 5 produced antibodies capable of complexing receptor-bound progesterone from cytosol as measured by adsorption of receptor-antibody complexes onto antimouse immunoglobulin G-agarose. Each was used to generate ascites and the purified antibodies were designated alpha PR 6, 11, 13, 16, and 22. In addition to precipitating receptor-bound progesterone from cytosol, the antibodies were also effective in increasing the sedimentation velocity of progesterone receptor centrifuged on glycerol gradients, and in recognizing receptor proteins that were resolved by denaturing gel electrophoresis and transferred to nitrocellulose (Western blots). Immunoisolation of receptor was also demonstrated using receptor labeled covalently with the synthetic progestin, R5020. The antibodies were specific for progesterone receptor and did not cross-react with estrogen receptor from the oviduct or glucocorticoid receptor from chick liver. Two antibodies, alpha PR 6 and alpha PR 22, also recognized some mammalian forms of the progesterone receptor. Both antibodies reacted with progesterone receptor from the rabbit uterus and alpha PR 6 recognized human progesterone receptor. Four of the antibodies recognized both A and B forms of the avian receptor while alpha PR6 was specific for the B form.

Animals↗

A 90,000-dalton binding protein common to both steroid receptors and the Rous sarcoma virus transforming protein, pp60v-src.

Previous studies have shown that the avian progesterone receptor, when in the nontransformed 8 S state, is complexed to another cellular protein having a molecular weight of 90,000. In this report, we show that this receptor-binding protein is indistinguishable from the 90,000-dalton protein which associates in a complex with the Rous sarcoma virus transforming protein, pp60v-src. This identity was established by the following criteria. 1) Monoclonal antibodies directed against the pp60v-src-associated 90-kDa protein recognized the 90-kDa progesterone receptor binding protein in an immunoblot assay. Conversely, monoclonal antibodies that recognize the progesterone receptor binding protein bind to the 90-kDa protein which complexes with pp60v-src. 2) Peptide maps prepared from the 90-kDa proteins immunoprecipitated from chicken cells with monoclonal antibodies directed against either the 90-kDa receptor binding protein or the 90-kDa pp60v-src-associated protein were indistinguishable. 3) Preincubation of the progesterone receptor complex with monoclonal antibodies prepared against the pp60v-src-associated protein caused a shift in the sedimentation of the progesterone receptor. Previous studies have established that the pp60v-src-associated protein is indistinguishable from one of the major heat shock proteins which are induced under a variety of stress conditions in eukaryotic cells. These present studies implicate a new role for this 90-kDa protein in the action of steroid hormones.

Animals↗

Immunological evidence that the nonhormone binding component of avian steroid receptors exists in a wide range of tissues and species.

A monoclonal antibody to a fungal protein has been used to demonstrate the presence of the nonhormone binding component of molybdate-stabilized steroid receptors in a variety of vertebrate tissues. We recently identified a steroid receptor in the aquatic fungus Achlya ambisexualis where sexual morphogenesis of the male is directed by the steroid antheridiol. This receptor resembles receptors of higher organisms in exhibiting an 8S, molybdate-stabilized form. In the chick oviduct, a 90 000 molecular weight protein has previously been shown to be associated with the molybdate-stabilized complex of the progesterone receptor. We have isolated a similar protein of molecular weight about 88 000 from A. ambisexualis and have obtained a hybridomal-derived monoclonal antibody directed against it. This mouse anti-Achlya immunoglobulin G1 (IgG1) cross-reacts with the 90 000 molecular weight protein in chick oviduct cytosol and was used to detect analogous 90 000 molecular weight proteins in mammalian tissues. Tissue cytosols were incubated with antibody, and the complexes were isolated onto protein A-Sepharose. The resin-bound proteins were then analyzed by gel electrophoresis. This procedure revealed the presence of 90 000 molecular weight proteins in several mammalian tissues including rat liver, mouse liver and uterus, pig ovarian granulosa cells, human endometrium, and HeLa cells. These results demonstrate that the 90 000 molecular weight protein is not peculiar to the chick oviduct but is present in several different tissues from a variety of animals. This antibody should be a useful probe for further studies on the biological role of these proteins.

Animals↗

Evidence that the 90-kDa phosphoprotein associated with the untransformed L-cell glucocorticoid receptor is a murine heat shock protein.

Two phosphoproteins are adsorbed to protein-A-Sepharose when cytosol from 32P-labeled L-cells is incubated with a monoclonal antibody against the glucocorticoid receptor: one is a 98-100-kDa phosphoprotein that contains the steroid-binding site and the other is a 90-kDa nonsteroid-binding phosphoprotein that is associated with the untransformed, molybdate-stabilized receptor (Housley, P. R., Sanchez, E. R., Westphal, H.M., Beato, M., and Pratt, W.B. (1985) J. Biol. Chem. 260, in press). In this paper we show that the 90-kDa receptor-associated phosphoprotein is an abundant cytosolic protein that reacts with a monoclonal antibody that recognizes the 90-kDa phosphoprotein that binds steroid receptors in the chicken oviduct. The 90-kDa protein immunoadsorbed from L-cell cytosol with this antibody reacts on Western blots with rabbit antiserum prepared against the 89-kDa chicken heat shock protein. Immunoadsorption of molybdate-stabilized cytosol by antibodies against the glucocorticoid receptor results in the presence of a 90-kDa protein that interacts on Western blots with the antiserum against the chicken heat shock protein. The association between the 90-kDa protein and the receptor is only seen by this technique when molybdate is present to stabilize the complex; and when steroid-bound receptors are incubated at 25 degrees C to transform them to the DNA-binding state, the 90-kDa protein dissociates. These observations are consistent with the proposal that the untransformed glucocorticoid receptor in L-cells exists in a complex with the murine 90-kDa heat shock protein.

Animals↗

Isolation of steroid receptor binding protein from chicken oviduct and production of monoclonal antibodies.

Previous studies have shown that the molybdate-stabilized progesterone receptor from the chick oviduct contains a nonhormone binding component with a molecular weight of 90 000. This protein has also been shown to be associated with some other molybdate-stabilized steroid receptors of the oviduct. In order to access this larger pool of the receptor binding protein, we have developed an isolation procedure based on the observation that the protein is selectively shed from proteins adsorbed to heparin-agarose when molybdate is removed. The protein obtained by this procedure is shown to be the same as that isolated from affinity-purified progesterone receptor as compared by protease digestion and one-dimensional peptide mapping. Four immunoglobulin G secreting hybridoma cell lines were generated against the 90 000-dalton antigen. All of the antibodies recognize the 90 000-dalton protein obtained by electrophoretic transfer from sodium dodecyl sulfate-polyacrylamide gels. In addition, two of the antibodies complex the molybdate-stabilized progesterone receptor as demonstrated by sedimentation analysis on sucrose gradients. One of these antibodies was used to show the presence of the 90 000-dalton component in molybdate-stabilized glucocorticoid and androgen receptors and also to show its presence in brain, liver, and skeletal muscle, but not in serum.

Animals↗

Effect of culture medium composition on pheromone receptor levels in Achlya ambisexualis.

Sexual reproduction in the eukaryotic fungi Achlya is controlled by two steroid pheromones. Antheridiol is the steroid released by female cells that induces male sexual differentiation. The antheridiol-induced response of male cells has been shown to be influenced by the composition of the culture medium. The present study was designed to determine if the composition of the culture media might also affect the levels of antheridiol binding protein in the cytosol of male cells. The mycelial content of cytosolic steroid pheromone binding sites in Achlya ambisexualis E87 males was measured at daily intervals during 6 days of suspension culture in media containing different nitrogen sources. Levels of binding sits increased during the first 2 days in culture to a plateau that was maintained for the next 2-3 days. During the first 3 days in culture, levels were much lower in mycelia cultured in an enriched medium containing lactalbumin hydrolysate compared to mycelia cultured in defined media containing glutamic acid as the nitrogen source. The level of binding sites increased rapidly when mycelia were transferred from an enriched medium to a nutrient-free salt solution and decreased when mycelia were transferred from a defined to an enriched medium. The relative differences in cytosolic binding measured by in vitro radioligand saturation analysis were confirmed by in vivo uptake studies. It is concluded that the mycelial content of antheridiol binding sites can be experimentally manipulated by variations in the composition of the culture medium and/or the time period of incubation in the medium.

Binding Sites↗

Analysis of the steroid receptor of Achlya ambisexualis.

We have previously reported the discovery of a specific high-affinity binding protein for the fungal sex steroid pheromone antheridiol in the cytosol of Achlya ambisexualis male cells. In this report, we describe the fractionation of the binding protein from the cytosol by ammonium sulfate precipitation, the optimization of in vitro conditions for radioligand binding assays, and some of the biochemical properties of the binding protein. In the presence of sodium molybdate, the macromolecule has a sedimentation coefficient of 8.3 S in sucrose gradients of low ionic strength, a Stokes radius of 56.6 A (Sephacryl S-300 columns), a molecular weight of approximately 192,000, a frictional ratio of 1.5, and an axial ratio of 8.9. The binding protein can be eluted with 0.24 M KCl as a single peak from DEAE-Sephadex A-25 columns. These results indicate that this steroid-binding protein from a primitive eukaryotic microbe has in vitro biochemical properties that are similar to those of other known steroid receptors in higher organisms.

Cytosol↗

Polypeptide components of two 8 S forms of chicken oviduct progesterone receptor.

Two 8 S forms of progesterone receptor from the chicken oviduct were purified to near homogeneity and analyzed for peptide composition by gel electrophoresis. Form I contains two major peptides with molecular weights of 90,000 and 75,000. Form II also contains two major peptides with molecular weights of 90,000 and 110,000. In glycerol gradients containing molybdate, the 90,000, 110,000, and 75,000 molecular weight peptides co-sediment with the [3H]progesterone peak at 8 S. In high salt gradients lacking molybdate, the [3H]progesterone peak co-sediments with the 110,000 and 75,000 molecular weight peptides at 4 S, while the 90,000 molecular weight peptide sediments at 6-7 S. On photoactivation, the synthetic progestin R5020 binds covalently to the 110,000 and 75,000 molecular weight peptides. Thus, both 8 S forms of progesterone receptor contain 90,000 molecular weight peptides which do not bind progesterone, and each 8 S form contains a separate form of progesterone-binding peptide. When receptor is purified from oviduct minces incubated with [32P]orthophosphate, autoradiography indicates the presence of 32P in the 90,000 and 110,000 molecular weight peptides and in a peptide which appears to be slightly larger than 75,000 and may be a more highly phosphorylated fraction of the 75,000 molecular weight peptide. Thus, three separate peptides have been identified as components of the 8 S form of progesterone receptor, and all three appear to exist as phosphoproteins.

Animals↗

Detection of a pheromone-binding protein in the aquatic fungus Achlya ambisexualis.

Sexual reproduction among the eukaryotic fungi of the genus, Achlya, is controlled by two steroid pheromones. Antheridiol is the pheromone constitutively produced by female cells that induces male sexual differentiation and development. A biologically active tritium-labeled derivative of antheridiol, [1,2-3H]7-deoxy-7-dihydro-antheridiol ( [3H]7dA), has been synthesized. Radioligand-binding studies have revealed the presence of a specific binding protein in the cytosol of male cells that may represent the endogenous receptor for antheridiol. Binding to this macromolecule was characterized by an apparent equilibrium dissociation constant and maximum binding capacity of approx. 7 X 10(-10) M and 1 100-2 000 fmoles/mg protein, respectively. Sedimentation analysis in sucrose gradients revealed that the binding protein distributes in the 8S region under low ionic strength and sodium molybdate-stabilized conditions. Under conditions of high ionic strength, in the presence or absence of 10 mM sodium molybdate, the binding site distributes in the 3.6S region of the gradient. Analysis of radioligand binding in the presence of other steroids and steroid hormones revealed that the binding is specific for antheridiol and its analog.

Centrifugation, Density Gradient↗