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S S Simons

Publications and source records attributed to S S Simons.

At least 73 records · Page 4Linked to original sources

Inverse correlation between dexamethasone 21-mesylate agonist activity and sensitivity to dexamethasone for induction of tyrosine aminotransferase in rat hepatoma cells.

Previous results demonstrated that both the level of induction of the liver specific enzyme tyrosine aminotransferase (TAT) by the irreversible antiglucocorticoid dexamethasone 21-mesylate (Dex-Mes) and the concentration of the reversible glucocorticoid dexamethasone (Dex) required for 50% of maximal TAT induction (i.e. EC50) were different in HTC and Fu5-5 rat hepatoma culture cells. In the present study, a retrospective analysis of these two parameters over an 8 yr period indicates that the absolute values of both parameters varied within each cell line over time in a reversible manner. The variation of both parameters appears to be causally related since a linear, reciprocal relationship exists between the amount of Dex-Mes agonist activity and log10 (Dex EC50) in both cell lines (correlation coefficient is -0.896 for n = 46). This relationship was independent of changes in basal TAT level, culture medium, and serum lot. Results with cloned HTC cells indicate that these temporal variations are not due to fluctuations in the relative abundance of two cell populations displaying either high or low amounts of agonist activity with Dex-Mes. While these analyses relied on the detection of enzyme levels, the amount of TAT mRNA is shown to parallel the enzyme levels. Thus the variation in parameters of TAT induction by Dex and by Dex-Mes appears to be modulated at a pre-translational step. Such variations have not previously been observed for the control of specific gene transcripts by other steroid hormones and may be related to the known differences in agonist activity seen for most antisteroids in various systems.

Animals↗

Comparison of glucocorticoid receptors in two rat hepatoma cell lines with different sensitivities to glucocorticoids and antiglucocorticoids.

Two independently derived rat hepatoma cell lines, HTC and Fu5-5, differ in their sensitivities to both glucocorticoids and antiglucocorticoids, despite virtually identical number and affinity of glucocorticoid receptors. The present study further examined both receptors for differences that could account for the nonidentical responses of the two cell lines. HTC and Fu5-5 cell receptors that were covalently labeled with [3H] dexamethasone 21-mesylate ([3H]DM) had the same mol wt of about 97,000 on sodium dodecyl sulfate-polyacrylamide gel electrophoresis and the same isoelectric point of about 6.4 by nonequilibrium pH gradient electrophoresis. Limited proteolysis of receptor-[3H]DM complexes with three different proteases generated identical protease-specific digestion patterns regardless of the cellular origin of the receptors. Receptor-[3H]dexamethasone complexes prepared from either Fu5-5 or HTC cells bound calf thymus DNA with the same affinity in vitro. In intact cells, the intracellular distribution of receptor-dexamethasone or receptor-DM complexes at equilibrium was almost identical in the two cell lines. Thus, we detected no differences in the size, sequence, or net charge of Fu5-5 or HTC cell receptors; additionally, there were no significant differences in steroid uptake, receptor binding, or activation, translocation, and nuclear binding of receptor-steroid complexes. However, the DM labeling efficiency, calculated as the percentage of total receptors covalently labeled by DM, was higher in HTC cells (65.9 +/- 12.9%; n = 5) than in Fu5-5 cells (39.3 +/- 7.7%; n = 5). The labeling efficiency of DM correlated inversely with its ability to induce tyrosine aminotransferase activity, suggesting that DM forms noncovalent, as well as covalent, complexes in vivo which mediate the glucocorticoid and antiglucocorticoid activities of DM, respectively. Further research is required to identify the factor(s) that influences DM labeling efficiency, thereby affecting the amount of DM agonist activity and, possibly, the sensitivity of the cells to glucocorticoids.

Affinity Labels↗

Unlinked regulation of the sensitivity of primary glucocorticoid-inducible responses in mouse mammary tumor virus infected Fu5-5 rat hepatoma cells.

The enzyme tyrosine aminotransferase (TAT) is induced by unusually low concentrations of glucocorticoids in Fu5-5 cells. We have isolated clones of Fu5-5 cells infected with mouse mammary tumor virus (MMTV) in order to simultaneously compare the glucocorticoid regulation of the host cell gene, TAT, with that of another primary inducible gene, MMTV. In the two clones that were examined in detail, MMTV RNA induction occurred at 4- to 11-fold higher concentrations of dexamethasone than those needed for induction of TAT mRNA. Furthermore, the amount of agonist activity displayed by the irreversible antiglucocorticoid dexamethasone 21-mesylate was greater for the induction of TAT mRNA than for MMTV RNA. These results extend our previous observations of unequal sensitivity of induction of TAT enzyme activity in two hepatoma cell lines and show that differential glucocorticoid regulation of gene induction within the same cell can occur at a pretranslational step. The present data also indicate that the unusual properties of TAT gene induction are not shared by all primary, glucocorticoid-inducible responses of the same cell and imply that additional factors mediating differential regulation of glucocorticoid-responsive genes are involved.

Animals↗

Selective covalent labeling of cysteines in bovine serum albumin and in hepatoma tissue culture cell glucocorticoid receptors by dexamethasone 21-mesylate.

The specificity of protein labeling by an affinity label of glucocorticoid receptors, dexamethasone 21-mesylate (Dex-Mes), was investigated using bovine serum albumin (BSA) as a model. During the early stages of [3H]Dex-Mes labeling at pH 8.8, approximately 90% of the covalent bond formation occurred at the one non-oxidized cysteine (Cys-34) of BSA. The nonspecific labeling was equally distributed over the rest of the BSA molecule. [3H]Dex-Mes labeling of Cys-34 was totally, and specifically inhibited by nearly stoichiometric amounts of the thiol-specific reagent methyl methanethiolsulfonate (MMTS). Thus both Dex-Mes and MMTS appear to react very selectively with thiols under our conditions. In reactions with hepatoma tissue culture (HTC) cell glucocorticoid receptors, MMTS was equally efficient in preventing [3H]dexamethasone binding to receptors and [3H]Dex-Mes labeling of the 98-kDa receptor protein. These results indicate that Dex-Mes labeling of the glucocorticoid receptor involves covalent reaction with at least one cysteine in the steroid binding site of the receptor. Small (approximately 1600-dalton) fragments of the [3H]Dex-Mes-labeled 98-kDa receptor were generated by limit proteolysis with trypsin, chymotrypsin, and Staphylococcus aureus V8 protease under denaturing conditions. Data from these fragments on 15% sodium dodecyl sulfate-polyacrylamide gels were consistent with all of the covalent [3H] Dex-Mes being located on one or a few cysteines in one approximately 15-residue stretch of the receptor. Further studies revealed no differences in the limit protease digestion patterns of activated and unactivated [3H]Dex-Mes-labeled receptors with trypsin, chymotrypsin, or V8 protease under denaturing conditions. These data suggest that activation does not cause any major covalent modifications of the amino acids immediately surrounding the affinity-labeled cysteine(s) of the steroid binding site.

Affinity Labels↗

Identification of cysteine 656 as the amino acid of hepatoma tissue culture cell glucocorticoid receptors that is covalently labeled by dexamethasone 21-mesylate.

Recent results using proteases suggest that dexamethasone 21-mesylate (Dex-Mes) labeling of the rat hepatoma tissue culture (HTC) cell glucocorticoid receptor occurs at one or a few closely grouped cysteine residues (Simons, S.S., Jr. (1987) J. Biol. Chem. 262, 9669-9675). In this study, a more direct approach was used both to establish that only one cysteine is labeled by [3H]Dex-Mes and to identify the amino acid sequence containing this labeled cysteine. Various analytical procedures did not provide the purification of the extremely hydrophobic Staphylococcus aureus V8 protease digestion fragment that is required for unique amino acid sequencing data. Therefore, Edman degradation was performed on the limit protease digest mixtures which appeared to contain only one 3H-labeled peptide. These degradation experiments revealed the number of amino acid residues between the NH2 terminus of each peptide and the [3H]Dex-Mes-labeled cysteine. A comparison of these amino acid spacings with the published amino acid sequence of the HTC cell glucocorticoid receptor (Miesfeld, R., Rusconi, S., Godowski, P. J., Maler, B. A., Okret, S., Wikstom, A-C., Gustafsson, J-A., and Yamamoto, K. R. (1986) Cell 46, 389-399) indicated that the one cysteine labeled by [3H]Dex-Mes is Cys-656. Further analysis of the receptor sequence for the presence of the observed grouping of proteolytic cleavage sites, but without any preconditions as to which amino acid was labeled, gave Asp-122 and Cys-656 as the only two possibilities. Potential labeling of Asp-122 could be eliminated on the basis of immunological and genetic evidence. We, therefore, conclude that the single Dex-Mes-labeled site of the HTC cell glucocorticoid receptor has been identified as Cys-656. Since several lines of evidence indicate that [3H]Dex-Mes labeling of the receptor occurs in the steroid binding site, Cys-656 is the first amino acid which can be directly associated with a particular property of the glucocorticoid receptor.

Affinity Labels↗

Differential sensitivity of HTC and Fu5-5 cells for induction of tyrosine aminotransferase by 3',5'-cyclic adenosine monophosphate.

The two independently derived hepatoma cell lines (HTC and Fu5-5) have previously been shown to display different sensitivities for the induction of tyrosine aminotransferase (TAT) enzyme activity and mRNA levels by glucocorticoids with the enzyme being half-maximally induced at approximately 7-fold higher concentrations of dexamethasone in HTC cells than in Fu5-5 cells. In the present study we investigated the induction of TAT activity by cAMP in order to see whether the difference is limited to the steroidal induction. Using the stable cAMP derivative (8-(4-chlorophenylthio)-cAMP) as an inducer, we found that a 6-fold higher cAMP concentration was needed in HTC cells to achieve the same extent of enzyme induction as in Fu5-5 cells. The induction of TAT enzyme activity could be accounted for by an increased amount of TAT mRNA. Further experiments involving sequential addition of both inducers in general showed a synergism of steroids and cAMP for TAT induction in HTC cells only at submaximal concentrations of steroid; in Fu5-5 cells, the occurrence of synergism depended on the order of addition of inducers. The maximal response in HTC cells was limited to the value that could be achieved by induction with steroid alone. In Fu5-5 cells, however, the steroid response could be augmented when cAMP was added to cells already maximally induced by steroid. This demonstrates that the effect of a combination of cAMP and steroids depends on their concentration, the sequence of their addition, and the rat hepatoma cell line used. Collectively the data suggest that a common pretranslational event determines the differential sensitivity of TAT induction by glucocorticoids and by cAMP in HTC and Fu5-5 cells. Furthermore a second, or possibly the same, common event also regulates the maximum level of TAT induction that is obtainable under most conditions with glucocorticoids and/or cAMP.

Animals↗

Mechanism of dexamethasone 21-mesylate antiglucocorticoid action: I. Receptor-antiglucocorticoid complexes do not competitively inhibit receptor-glucocorticoid complex activation of gene transcription in vivo.

The actions of dexamethasone 21-mesylate (DM) have been studied in two recently developed cultured murine cell lines containing approximately 200 copies of episomal minichromosome. This minichromosome contains the glucocorticoid regulatory element in the mouse mammary tumor virus long terminal repeat fused upstream of v-rasH sequences in a totally defined primary sequence environment. The levels of v-rasH mRNA were measured as an index of glucocorticoid regulated expression of this chimeric gene. In addition, expression of the endogenous single copy mouse metallothionein I (MT-I) gene was monitored simultaneously. DM was found to be an essentially pure antagonist of dexamethasone (dex)-stimulated expression of both the episomal chimeric gene and the endogenous MT-I gene. The covalent labeling efficiency by DM of glucocorticoid receptors in intact cells approached 100%, surpassing previously observed whole cell DM labeling efficiencies. These results strengthen the hypothesis that covalent complex formation is responsible for antiglucocorticoid action. The efficiency of whole cell nuclear binding of covalent receptor-DM complexes was found to be approximately 50% of that seen with receptor-dex complexes. Analyses of long terminal repeat initiated v-rasH mRNA and MT-I mRNA inductions by dex in cells previously exposed to a subsaturating concentration of DM indicated that receptor-DM complexes do not inhibit by a competitive mechanism the transcriptional activation of these glucocorticoid responsive genes by receptor-dex complexes. These results do not rule out the possibility, however, that covalent receptor-DM complexes may still bind to the biologically active nuclear sites. The implications of this result concerning the mechanism of DM irreversible antiglucocorticoid action are discussed.

Animals↗

Mechanism of dexamethasone 21-mesylate antiglucocorticoid action: II. Receptor-antiglucocorticoid complexes do not interact productively with mouse mammary tumor virus long terminal repeat chromatin.

We have studied the interaction of covalent dexamethasone 21-mesylate (DM) labeled, activated glucocorticoid receptor with mouse mammary tumor virus (MMTV) chromatin. Studies were performed on a murine cell line (904.13) which contains 200 copies per cell of a MMTV long terminal repeat (LTR) v-rasH casette mobilized on bovine papilloma virus based episomes. DM binds covalently to glucocorticoid receptors and displays almost full antagonist activity in this cell line. In situ transcription extension assays indicate that activated receptor-DM complex cannot stimulate LTR-initiated transcription. The receptor-DM complex also fails to induce DNase I hypersensitivity (HSR) and transcription factor loading at the MMTV promoter. Transcription activation, HSR formation, and factor binding induced with the agonist dexamethasone are blocked by covalent occupation of the receptor by DM. Although DM-activated receptor binds specifically to receptor sites on purified LTR DNA, the antagonist receptor complex does not interact productively with MMTV LTR chromatin in vivo.

Animals↗

Affinity-labeling steroids as biologically active probes of antiglucocorticoid hormone action.

The role of the glucocorticoid receptor in the expression of antiglucocorticoid action has been investigated with a chemically-reactive derivative of three glucocorticoid steroids with differing biological potencies, i.e. the C-21 mesylates of cortisol, dexamethasone and deacylcortivazol. Dexamethasone 21-mesylate (Dex-Mes) was the most useful derivative due to its favorable balance of high receptor affinity and predominantly irreversible antiglucocorticoid activity. A number of criteria have been used to conclude that [3H]Dex-Mes covalently labels glucocorticoid receptors in the steroid-binding cavity. The available data indicate that covalent Dex-Mes-labeled receptors (mol. wt approximately equal to 98,000) are responsible for the irreversible antiglucocorticoid activity while the partial agonist activity of Dex-Mes is due to non-covalent Dex-Mes-bound receptors. Further support for this hypothesis comes from the observations that deacylcortivazol 21-mesylate was a full glucocorticoid and did not affinity label receptors (and marginally labeled cytosol proteins) although it was capable of covalently-labeling bovine serum albumin. Several mechanisms for the expression of irreversible antiglucocorticoid activity by covalent Dex-Mes-labeled receptors were examined and can be eliminated. Covalent receptor-Dex-Mes complexes formed in whole HTC cells were found to have a decreased capacity for nuclear binding. This decreased nuclear-binding capacity could be responsible for the whole-cell irreversible antiglucocorticoid activity of Dex-Mes.

Affinity Labels↗

Antiglucocorticoid steroids have increased agonist activity in those hepatoma cell lines that are more sensitive to glucocorticoids.

FU5-5 rat hepatoma (Reuber H35) cells are hypersensitive in that the same percentages of full induction of tyrosine aminotransferase (TAT) occur at much lower concentrations of glucocorticoids than in the related HTC rat hepatoma (Morris) cells. Unexpectedly, these hypersensitive FU5-5 cells also exhibited more agonist activity with the affinity labeling antiglucocorticoids cortisol 21-mesylate and dexamethasone 21-mesylate than did HTC cells (Mercier et al., Endocrinology 112, 601-609 [1983]). In the present study, several other antiglucocorticoids (11-desoxycortisone, progesterone, dexamethasone oxetanone, and RU 486 in addition to dexamethasone 21-mesylate) and the antiandrogen cyproterone acetate were examined to see if chemically unreactive, reversible antisteroids also would exhibit an altered activity (i.e. increased agonist activity) in FU5-5 cells. Each antiglucocorticoid examined did display a 2-fold increased amount of agonist activity in FU5-5 cells, as compared to HTC cells; only RU 486 was predominantly an antagonist in FU5-5 cells but the potency of RU 486 was about 9-fold less than in HTC cells. Dexamethasone, and especially progesterone, was metabolized in FU5-5 and HTC cells. However, differential metabolism in FU5-5 vs HTC cells cannot account for the increased induction of TAT in FU5-5 cells since the amount of agonist activity seen for dexamethasone mesylate (or its metabolites) depended not on the cell type used but rather on the glucocorticoid inducible enzyme monitored, i.e. TAT or glutamine synthetase. The combined data suggest that the hypersensitivity of FU5-5 cells towards glucocorticoid induction of TAT may be linked with the ability of both reversible and irreversible antiglucocorticoids to display increased TAT agonist activity in FU5-5 cells. This behavior was somewhat steroid specific since the antiandrogen cyproterone acetate did not display increased TAT agonist activity in FU5-5 cells compared to HTC cells and was only 2-fold less effective as an antiglucocorticoid in FU5-5.

Animals↗

Formation of a fluorescent glucocorticoid receptor-steroid complex in HTC cell cytosol.

An intensely fluorescent rhodamine derivative of dexamethasone (i.e. Dex-C2-Rho) was synthesized. Dex-C2-Rho possessed high affinity for HTC cell glucocorticoid receptors in cell-free systems. Whole cell activity and receptor affinity of Dex-C2-Rho were both much lower, apparently due to problems with cell permeability and/or metabolism. A specific, fluorescent receptor-steroid complex at concentrations as low as 1 X 10(-9) M could readily be observed with crude HTC cell receptors after removal of the free Dex-C2-Rho. This appears to be the first report of a fluorescent glucocorticoid receptor-steroid complex.

Animals↗

[3H]cortivazol: a unique high affinity ligand for the glucocorticoid receptor.

Cortivazol (CVZ) and deacylcortivazol (DAC) are pyrazolosteroids with potent glucocorticoid activity. In previous work we showed that DAC is 40-fold more potent than dexamethasone (DEX) in lysing leukemic lymphoblasts. To assess the interaction between these atypical steroids and the glucocorticoid receptor, we examined the binding of [3H]CVZ to cytosol from glucocorticoid-sensitive and -resistant variants of the human leukemic cell line CEM C7. In glucocorticoid-sensitive cells [3H]CVZ causes a 2-fold induction of glutamine synthetase and binds to a protein in the 4.6 S region of high salt sucrose gradients. On DEAE-cellulose chromatography, [3H]CVZ-receptor complexes show a shift from high (0.25 M KP) to low salt (0.09 M KP) eluting forms upon activation. CVZ competes for a 97,000-dalton protein labeled by [3H]dexamethasone mesylate. Scatchard analysis of the binding of [3H]CVZ in glucocorticoid-sensitive cells revealed a curvilinear plot which resolved into high (0.4 nM) and low (11 nM) affinity components. The receptor concentration of the low affinity site (0.30 pmol/mg protein) was approximately twice that of the high affinity site (0.14 pmol/mg protein). Dissociation experiments with dilution and/or excess unlabeled CVZ supported the presence of independent sites. In contrast, the binding of [3H]DEX to C7 cytosol revealed a single class of binding sites (Kd = 1.9 nM; receptor concentration, 0.46 pmol/mg protein). Examination of the binding of [3H]CVZ using 10(-5) M DEX as the competing ligand showed that DEX binds only to the low affinity site detected by [3H]CVZ. In cytosol from a glucocorticoid-resistant cell line with virtually no [3H]DEX binding, [3H]CVZ detected a single high affinity binding site that was similar in dissociation constant (0.8 nM) and receptor concentration (0.13 pmol/mg protein) to the high affinity site detected in the glucocorticoid-sensitive cell line C7.

Binding, Competitive↗

Comparison of DNA binding properties of activated, covalent and noncovalent glucocorticoid receptor-steroid complexes from HTC cells.

Several differences in the interaction with DNA of noncovalent vs. covalent glucocorticoid receptor-steroid complexes are described. HTC cell glucocorticoid receptors were incubated under cell-free conditions with the potent reversible glucocorticoid dexamethasone and with the irreversible antiglucocorticoid dexamethasone 21-mesylate to yield noncovalent and covalent complexes, respectively. Using DNA immobilized on cellulose, we found that the noncovalent dexamethasone complexes were activated (by dilution in pH 8.8 buffer at 0 degree C) to a DNA binding species 2-fold faster than were covalent dexamethasone 21-mesylate labeled complexes. The affinity of activated, noncovalent dexamethasone complexes for DNA in an equilibrium binding assay was 2-fold higher than that of the activated, covalent dexamethasone 21-mesylate complexes. This conclusion was supported by the observations in a DNA-cellulose pellet assay that covalent receptor-steroid complex binding to DNA was disrupted by lower NaCl concentrations than was noncovalent complex binding. The same studies of DNA binding at various NaCl concentrations failed to provide evidence that glucocorticoid receptor-steroid complex binding to DNA is a multistep process. These quantitative distinctions in the DNA binding properties of covalent and noncovalent receptor-steroid complexes represent the first physicochemical differences between the complexes of antiglucocorticoid and glucocorticoid steroids and may partially account for their divergent biological properties.

Animals↗

Covalent and noncovalent receptor-glucocorticoid complexes preferentially bind to the same regions of the long terminal repeat of murine mammary tumor virus proviral DNA.

Dexamethasone 21-mesylate, an irreversible antiglucocorticoid in HTC cells, forms a covalent receptor-steroid complex which can be activated in cell-free systems. The molecular basis of its antiglucocorticoid activity is unknown; it might result from altered DNA sequence preferences and/or affinities of the covalent receptor-steroid complex. To test this hypothesis, the affinities of both covalent receptor-antagonist and noncovalent receptor-agonist complexes for defined DNA sequences were measured in a DNA binding competition assay. This assay requires neither purified complexes nor large quantities of DNA, yet it provides quantitative comparisons of the affinities of different double-stranded DNAs for binding receptor-steroid complexes. In this assay, activated covalent receptor-dexamethasone 21-mesylate complexes in crude cytosol bound to calf thymus DNA and cloned subregions of the long terminal repeat (LTR) of murine mammary tumor virus (MMTV) proviral DNA with approximately the same relative affinities as did noncovalent receptor-dexamethasone complexes. Both types of complex exhibited similar orders of preferential binding to DNA sequences. LTR subregions, as well as the entire LTR, were 2-20 times more potent competitors than calf thymus DNA. Cloned sequences from the 3' terminus of the LTR were more effective competitors than either the entire LTR or comparably sized DNAs from the 5' terminus. The DNA sequences with the greatest affinities for both covalent and noncovalent complexes are located within the region of -221 to -67. These studies support the theory that recognition by regulatory elements of specific DNA sequences upstream of responsive genes is an integral step of hormone action.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Limited proteolysis of covalently labeled glucocorticoid receptors as a probe of receptor structure.

[3H]Dexamethasone 21-mesylate affinity-labeled glucocorticoid receptors were subjected to controlled proteolysis by trypsin, chymotrypsin, and Staphylococcus aureus V8 protease and then analyzed on denaturing constant percentage or gradient polyacrylamide gels. The molecular weights (Mr congruent to 98 000) and cleavage patterns for rat liver and HTC cell receptors indicated extensive homology between the glucocorticoid receptors from normal rat liver and a transformed rat liver cell line. The major DNA-binding species generated by chymotrypsin treatment was found to be a 42K fragment that was accompanied by several unresolved, slightly lower molecular weight fragments. The meroreceptors obtained after trypsinization were comprised of two species of Mr 30 000 and 28 000. Each of the three proteases, despite their differing specificities, generated fragments with molecular weights close to 42 500, 30 500, and 27 000. Nevertheless, each of the three proteases gave rise to a distinctive "ladder" of labeled fragments. No differences could be detected in the digestion patterns of unactivated and activated HTC cell complexes for all three proteases. Also, native and denatured receptor-steroid complexes yielded surprisingly similar digestion patterns with each enzyme. Digestion of denatured complexes readily generated large amounts of a fragment of Mr congruent to 15 000 that was much smaller than the protease-resistant meroreceptors formed from native complexes. The presence of these approximately 15K fragments suggested that the [3H]dexamethasone 21-mesylate labeling of the steroid-binding cavity is restricted to a relatively small segment of the receptor.

Animals↗

Glucocorticoid versus antiglucocorticoid activity: can a single functional group modification of glucocorticoid steroids always convey antiglucocorticoid activity?

Single functional group modifications of glucocorticoid steroids have been performed in an effort to obtain antiglucocorticoids with high affinity and specificity for glucocorticoid receptors. This approach tests the hypothesis that the structural determinants of biological activity and receptor binding are independent so that modification of more potent glucocorticoids could yield more potent antiglucocorticoids . In this study, a new functional group capable of conferring antiglucocorticoid activity has been identified, i.e. the spiro C-17 oxetan -3'-one group. Using three glucocorticoids of greatly different potency ( deacylcortivazol greater than dexamethasone greater than cortisol), we examined the effects of incorporation of the oxetanone group and the previously described, alkylating C-21 mesylate group on steroid affinity for receptors and biological activity. In both series of modified steroids, the receptor affinity of the derivatives paralleled that of the parent steroids. The biological activities of the dexamethasone and cortisol derivatives were predominantly or totally antagonistic, while both deacylcortivazol derivatives were full agonists. We conclude that antiglucocorticoid activity can arise from the incorporation of a single functional group into glucocorticoid steroid structures, but that the expression of agonist vs. antagonist activity is determined by a balance of structural group determinants which are not restricted to a common region of the steroid. Within a given class of derivatives, receptor affinity correlated with the amount of agonist activity. The structure-activity relationships for dexamethasone oxetanone and deacylcortivazol mesylate were studied in detail. Dexamethasone oxetanone is a potent antiglucocorticoid in HTC cells. [3H]Dexamethasone oxetanone binds to cell-free glucocorticoid receptors with a Kd of 3.2 X 10(-8) M. No specific antiglucocorticoid binder was detected. Direct binding experiments with [3H]dexamethasone oxetanone as well as indirect studies of the kinetics of cell-free competition of [3H]dexamethasone binding demonstrated that dexamethasone oxetanone binds to receptors faster (by about a factor of 2) and dissociates from receptors much faster than does dexamethasone. Deacylcortivazol mesylate was a more potent agonist and binder to receptors than dexamethasone, but displayed no irreversible interactions with HTC cell receptors under those conditions that afforded a covalent receptor-steroid complex with the closely related dexamethasone mesylate.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Identification of human leukemic glucocorticoid receptors using affinity labeling and anti-human glucocorticoid receptor antibodies.

Antisera raised against human lymphoid glucocorticoid receptors were used in combination with the glucocorticoid receptor affinity label [3H]dexamethasone 21-mesylate [( 3H]DM) to identify the glucocorticoid receptors of the human B-lymphoblastoid cell line IM-9 and the human T-cell leukemic cell line CEM-C7. Antisera were obtained following immunization of New Zealand White rabbits with [3H]triamcinolone acetonide [( 3H]TA)-glucocorticoid receptor complexes partially purified by two-stage DNA-cellulose chromatography. The presence of anti-human glucocorticoid receptor antibodies was verified by: (a) adsorption of [3H]TA-receptor-antibody complexes to Protein A; (b) a shift to higher apparent molecular weight in the elution position from Sephacryl S300 of [3H]TA-receptor complexes incubated with immune serum; and (c) the ability of immune serum to displace [3H]TA-receptor complexes on sucrose gradients. These antibodies also recognized rat liver and murine S49 cell glucocorticoid receptors. Sodium dodecyl sulfate-polyacrylamide gel electrophoresis of [3H]DM-labeled IM-9 cytosol identified a major competable band with a molecular weight of approximately 90,000, three minor competable components with molecular weights of approximately 78,000, approximately 51,000, and approximately 38,500, and at least 21 other noncompetable components. Following immunoprecipitation of [3H]DM-labeled cytosol with immune serum, only the Mr 90,000 and 78,000 components were seen. Sodium dodecyl sulfate-polyacrylamide gel electrophoresis of [3H]DM-labeled CEM-C7 cytosol revealed a larger number of [3H]DM-labeled components. However, after immunoprecipitation of [3H]DM-labeled CEM-C7 cytosol, a predominant competable component with a molecular weight of 90,000 was easily identified. This component was markedly diminished when cytosols from the glucocorticoid receptor-deficient cell line ICR-27 were used. Thus, the combination of affinity labeling and anti-human glucocorticoid receptor antibodies is capable of providing direct physical identification of human lymphoid glucocorticoid receptors.

Affinity Labels↗