Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Transcortin”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 55 records · Page 3Linked to original sources

Reversible dissociation of cortisol-transcortin complex by sodium para-chloromercuribenzoate.

Mercurials are considered as sulphydryl group specific reagents and one of them, sodium para-chloromercuribenzoate (PCMB), is currently used for SH titration. It has been shown that cellular steroid receptors are reversibly inactivated by mercurials even when the binding site is occupied by the steroid (Coty, W.A. (1980) J. Biol. Chem. 255, 8035-8037). This is a striking difference with alkylating SH reagents such as iodoacetic acid or N-ethylmaleimide, since these reagents inactivate only steroid-free receptors. In order to explain this discrepancy, we tested, in the present study, the specificity of PCMB on a blood plasma steroid binding protein: human transcortin. This protein presents the advantage, over cellular receptors, of being well characterized and to be available in a pure state. The transcortin-cortisol complex was also reversibly inactivated by PCMB when the reaction was carried out at a high excess of reagent over protein; such conditions are those previously used with steroid receptors. The reversibility was obtained not only with a reducing agent (dithiothreitol) but also with EDTA, which suggests a poor stability of the protein mercurial bond and therefore a nonspecific action. The decrease of activity was the result of a loss of binding sites and Scatchard plot analysis did not reveal any detectable decrease of the affinity constant for cortisol. Transcortin possesses two SH groups per molecule, one of these being buried in native conformation. After blockage of the accessible SH group by aminoethylation, transcortin kept the same activity, but when this aminoethylated transcortin was incubated with PCMB a loss of activity was obtained, although the residual buried SH group was again titrable with Ellman's reagent. Therefore, we can conclude that the action of PCMB on proteins must be interpreted with precaution, since it can induce an inactivation that is SH-independent.

Chloromercuribenzoates↗

Transcortin does not restrict the transmembrane transfer of cortisol.

We have studied the specific binding of both free and transcortin-bound cortisol to the microvesicles derived from the brush border of the plasma membrane of human placental syncytiotrophoblast. Kinetics of the steroid binding to these microvesicles was found to be independent on cortisol being complexed with transcortin. Both cortisol and transcortin were accumulated in the inner space of the microvesicles. This suggests that transcortin-cortisol complex penetrates the plasma membrane and the transcortin-bound steroid can thus enter syncytiotrophoblast and exert its hormonal effects on this tissue.

Binding Sites↗

Ontogenetical variations of transcortin modulate glucocorticoid receptor function and corticotropic activity in the pituitary gland.

This study was aimed at investigating the influence of tissue and plasma transcortin on pituitary glucocorticoid receptor function and corticotropic activity during development. "In vivo" nuclear uptake of (3H)corticosterone was found to be increased in pituitary glands from newborn rats which, unlike that of adults, lack transcortin-like material. Immature glands incubated "in vitro" likewise showed enhanced nuclear accumulation of tracer; the magnitude of uptake being inversely related to both tissue and plasma contents of transcortin. Competition studies indicate that pituitary transcortin modulates interaction of corticosterone with receptor binding sites and, hence, may interfere with steroid translocation to the nucleus. Moreover, we found that steroid-induced inhibition of ACTH release was highest in those pituitaries which were deficient in transcortin-like molecules. We conclude that the binder plays a modulating role in pituitary glucocorticoid receptor function.

Adrenocorticotropic Hormone↗

Sex hormone binding globulin and transcortin in human and baboon males.

TeBG and transcortin were identified in serum from adult male baboons. TeBG values were higher than the TeBG concentration in adult men. The relative competitive abilities of three natural steroids, a synthetic androgen and two synthetic estrogens, for binding sites on TeBG occupied by radioactive DHT were compared. At a 10-fold molar excess, using both baboon and human TeBG, DHT and T were the most effective competitors; E2 was intermediate and DES a very poor one. Using gel filtration, the transcortin concentrations (mg/L) in two baboons were 16.8 and 27.4; the normal range for men is 23--45. The serum transcortin value of a third baboon, determined by equilibrium dialysis, was 0.41 micron/L (21.5 mg/L). Competition studies, using both techniques, showed that progesterone has a slightly higher affinity for baboon transcortin than cortisol and that a synthetic progestin does not bind to transcortin. Plasma binding capacity for synthetic steroids should be tested before they are used for studies on specific tissue receptors contaminated with serum.

Animals↗

[Variety of transcortin in the blood of women during normal pregnancy].

A concentration of pregnancy-related transcortin variety was detected in the venous blood serum of women at varying time of normal pregnancy and after delivery as well as in umbilical and retroplacental blood serum using a radio-immunoassay. This transcortin variety was found in the blood at early stages of pregnancy (the end of the 1st-the start of the 2nd trimester). During pregnancy the content of this variety increased, mainly in the 2nd trimester. At the end of pregnancy transcortin variety concentration achieved values typical of retroplacental blood serum, corresponding to approximately 10% of total transcortin concentration. The absence of transcortin variety in the umbilical blood serum and a slight decrease in its level in the mother's blood by the 5th day after delivery can be suggestive of the fact that this protein is synthesized in the mother's body and does not penetrate the placental barrier.

Female↗

[Isolation and comparative characteristics of rat transcortin in normal conditions and during experimental circulatory insufficiency].

Corticosteroid binding protein, transcortin, was isolated using biospecific and hydroxyapatite chromatographic procedures. Mr-60,000 of transcortin was evaluated by means of electrophoresis; isoelectric points of the protein and of its complexes were detected. The association constants of transcortin with cortisol at 4 degrees constituted 2.8.10(8) M-1/mol of protein from intact animals containing one binding site and 9.8.10(8) M-1/mol of protein from impaired rates containing 0.39 binding site per a molecule. The maximal cortisol-binding activity of transcortin was shifted towards more alkaline pH value under the pathological conditions. Circular dichroism spectra of the transcortin-cortisol equimolar complexes were studied. The proteins studied were dissimilar in their main physicochemical properties and patterns of the steroid binding.

Animals↗

[Effect of glucocorticoids on the level of transcortin-like cytoplasmic receptors].

Experiments were conducted on intact, adrenalectomized and stress-subjected male Wistar rats; the level of transcortin-like cytosol receptors of the lungs heart, kidneys, and the liver was studied by means of 3H-corticosterone and solid-phase sorption. The level of transcortin-like receptors in the cytosol of various tissues in intact rats had the following declining sequence; the lungs, heart, kidneys, liver. In stress the level of transcortin-like receptors in the tissue cytosol displayed a sharp reducion, although the sequence characteristic of intact animals persisted. In adrenalectomized rats stress induced no significant fall in the content of transcortin-like receptors in the tissue cytosol, whereas intraperitoneal administration of cortisol to adrenalectomized rats decreased the level of these receptors. A hypothesis was put forward on the antistress action of transcortin-like cytoplasm receptors.

Animals↗

[Comparative study of human transcortin isolated from normal donor blood and retroplacental blood].

It was demonstrated that the physico-chemical properties of human transcortin, i.e., electrophoretic, hydrodynamic and immunochemical characteristics, amino acid composition, steroid binding parameters, do not depend on the source of the glycoprotein (male or female blood, retroplacental blood). Conversely, the retroplacental blood serum was shown to contain a transcortin form whose carbohydrate component is structurally different from that of the normal donor blood transcortin. It was found that this form interacts with the sites of specific binding of transcortin in liver cell plasma membranes in a weaker degree than the donor blood transcortin.

Amino Acids↗

Electron spin resonance study of human transcortin: Thiol groups and binding site topography.

A series of cortisol analogs bearing a nitroxide free radical on C-17 side chains with a variation of distance between the steroid D-ring and the spin label from 7.4 to 17.6 A has been synthesized. These analogs were found to retain a good affinity for the specific corticosteroid binding site of purified human transcortin. The spin-labeled cortisol analogs were used to probe the human transcortin binding site structure by electron spin resonance (ESR) spectroscopy. A total depth of approx. 25 A was estimated for the binding site crevice. Use of sulfhydryl reagents (N-ethylmaleimide, p-chloromercuribenzoate) showed that a maximum of two sulfhydryl groups were titratable after reduction and denaturation of the protein. One of these thiol groups appeared to be involved in the cortisol binding site and could not be detected in the presence of bound steroid. ESR study of its environment, using spin-labeled N-ethylmaleimide reagents of various side-chain lengths, led to the conclusion that this thiol was at a depth of approx. 15 A or more in the binding site cavity. The second sulfhydryl group may be present in an oxidized form in the purified native transcortin, since it became titratable only after reductive treatment of the protein. ESR study showed that this thiol may be located in a crevice at approx. 15 A from the protein surface. These findings are compatible with a structural organization of the transcortin cortisol binding site, taking into account tentative models previously proposed by others.

Binding Sites↗

[Determination of serum transcortin levels by electroimmunodiffusion (author's transl)].

The isolation of transcortin in a pure form made possible the preparation of a monospecific anti-human transcortin rabbit serum. Serum transcortin levels were measured by electroimmunodiffusion. Experimental results expressed as errors by the calculating of interserial reproducibility were 4.74 per 100. The mean value was significantly different for men (36 subjects: 39.7 +/- 3.6 mg/l) from women (36 subjects: 42.1 +/- 3.9 mg/l). The transcortin determination was performed in pregnancy serum and in serum of women during oestroprogestative treatment. Some studies were performed in pathological cases (hyper- and hyperthyroidism, hyper- and hypocorticism, Kahler disease, ascitic cirrhosis).

Adrenal Insufficiency↗

Determination of transcortin in serum by polyethylenglycol enhanced immunonephelometry. A comparison with equilibrium dialysis and radioimmunoassay.

A method for immunonepholometric determination of transcortin has been developed. It is based upon a polyethylenglycol (PEG) enhanced immunonephelometric response using a commercial transcortin antiserum in the assay. It was found that pretreatment of the serum samples with 10% (w/v) PEG 6000 was a necessity in order to obtain satisfactory low blank values. The immunonephelometric assay showed a good correlation with transcortin concentrations as calculated from cortisol binding experiments (r = 0.9501, n = 26). The intraassay coefficient of variation for a standard serum was found to be 3.2% (n = 50) and for a pregnancy serum pool 2.6% (n = 50). The interassay coefficient of variation in ten consecutive analyses of thirteen samples was found to be 7.4%. The sensitivity allows detection of transcortin in 5 microliters of serum. The average concentration in male serum was 35 mg/l (n = 55), in female serum 36 mg/l (n = 55) and in serum from third trimester pregnant women 81 mg/l (n = 30) which agrees with the results in previously published reports.

Dialysis↗

Physico-chemical properties and evidence for electrophoretic variants of rat transcortin.

Isolation of rat plasma transcortin was carried out by affinity chromatography, as previously described for human. The protein was shown to be pure by PAGE and one single N-terminal amino acid was identified (Ser), which suggested that the protein molecule has a single polypeptide chain. This assumption is supported by SDS-PAGE. The amino acid composition was reported and compared with the one of human transcortin. The purified protein always migrated in PAGE (with or without SDS) as a double band; the faster component being more intense than the slower one. Whether transcortin was free or bound to corticosterone, the same aspect was observed. Molecular weight of these two variants were determined by SDS-PAGE as 65,900 and 75,800. Polymers only appeared after irreversible denaturation of the protein, as previously described for human transcortin. Various other physical parameters were determined: a sedimentation coefficient of 3.71 S +/- 0.18 was calculated by ultracentrifugation in sucrose gradient, association constants at 4 degrees C for corticosterone and cortisol (2.7 X 10(9) M-1 and 4.2 X 10(8) M-1, respectively).

Amino Acids↗

Purification and characterization of human transcortin.

Human transcortin was purified to apparent homogeneity from plasma by a two-step procedure involving affinity and hydroxyapatite chromatography. The affinity gel incorporated denatured bovine serum albumin as the spacer and cortisol hemisuccinate as the ligand. Although isolated transcortin showed a propensity for spontaneous polymerization according to a geometric progression (1, 3, 9) only one band was observed on sodium dodecyl sulphate/polyacrylamide-gel electrophoresis. Cortisol-binding activity of the isolated protein gave an apparent association constant of 2.5 X 10(8) M-1 at 4 degree C in equilibrium dialysis. Isoelectric focusing of purified native transcortin showed six discrete bands, five between pH 3.75 and 4.15 and another, possibly desialylated, at pH 6.15. Desialylated transcortin also gave six bands on isoelectric focusing, with pI values ranging from 4.90 to 6.30.

Biopolymers↗

Concentration of transcortin in the pregnant rat and its foetuses.

The concentration of transcortin in serum from foetal, neonatal, pregnant and lactating rats was measured by a single radial immunodiffusion method. A decrease in transcortin concentration in sera from foetuses and pregnant rats occurred starting on days 19 and 20 of pregnancy respectively. A more pronounced fall in transcortin concentration in foetal and maternal serum was observed after treating pregnant rats with dexamethasone. These results suggest that corticosterone may be responsible for the observed changes in transcortin concentration.

Age Factors↗

Relationship between weaning and secretion of luteinizing hormone, cortisol and transcortin in beef cows.

The effects of suckling on secretion of luteinizing hormone, cortisol and transcortin were investigated in anovulatory postpartum cows. On d 35 postpartum, calves were separated from 12 cows to prevent suckling and eight calves continued to suckle their dams ad libitum. Between 35 and 41 d postpartum, samples of jugular blood were collected every 15 min for two periods of 6 h/d. In non-suckled cows, frequency of pulses and basal luteinizing hormone increased but amplitude of pulses did not change. Concentrations of total cortisol in serum of cows were not altered during 3 d after weaning calves and did not differ among intervals before, during and after a suckling event. Affinity of transcortin for cortisol was not affected by postpartum interval or treatment. Capacity of transcortin to bind cortisol tended to increase after weaning. We found no evidence to support the hypothesis that suckling reduces binding capacity of transcortin or increases unbound cortisol. Differences in preovulatory secretion of luteinizing hormone between suckled and non-suckled cows could not be accounted for by differences in secretion of cortisol. In beef cows that are fed to satisfy requirements for energy and have average body condition, we conclude that negative modulation of luteinizing hormone by suckling is not mediated by cortisol.

Animals↗

[Pregnancy-associated variant of transcortin in humans].

Properties of the human transcortin variety related to pregnancy were studied. The transcortin variety has been found in retroplacental blood serum and differed from the glycoprotein of healthy donors by the structure of carbohydrate moiety. Physico-chemical and immunochemical properties of the transcortin variety studied, specific mainly to its polypeptide component, were similar to the properties of transcortin from blood of healthy donors.

Adult↗

[Interaction of transcortin and type III glucocorticoid receptors with type II glucocorticoid receptors in stress].

Amount of corticosterone-binding sites in transcortin from blood plasma of intact rats constituted 2960 fmole/mg of protein, in the animals with stress reaction caused by immobilization within 24 hrs--1630 fmole/mg. Dissociation constants of the complex corticosterone-transcortin were 4.6 nM and 9.3 nM, respectively. In liver cytosol of intact animals content of glucocorticoid receptors of the III type was 240 fmole/mg, in the animals with stress reaction--66 fmole/mg; dissociation constants of the complex corticosterone-glucocorticoid receptors of the III type were 6.1 nM and 6.3 nM, respectively. Amount of glucocorticoid receptors of the II type was 310 fmole/mg in liver cytosole of intact rats and in the animals with stress--250 fmole/mg; dissociation constants of the complex transcortin-glucocorticoid receptors of the II were 10.6 nM and 20.8 nM, respectively. A decrease in transcortin content led to an increase in the level of free glucocorticoids in blood with simultaneous elevation in the positive gradient of free glucocorticoid concentration and in the rate of steroid diffusion in to cells. At the same time, after a decrease in the tyre III glucocorticoid receptors the formation of complexes of glucocorticoid receptors of the II type-steroids was accelerated and translocation of the complex into cell nuclei was stimulated. Proteolytic enzymes appear to be responsible for transformation of glucocorticoid receptors of the III tyre into the receptors of the II type.

Animals↗

Cortisol resistant RPMI-1788 lymphocytes become sensitive to cortisol subsequent to a 24-h incubation period in medium containing purified human transcortin.

RPMI-1788 lymphocytes (a human cell line) are resistant to cortisol in vitro. Prior incubation for a minimum of 24 h in a medium which contains purified human transcortin at a concentration of 50 micrograms/ml renders these cells sensitive to the inhibitory action of cortisol as regards the synthesis of DNA. Only the transcortin-exposed cells contain a cortisol binding species whose sedimentation behavior in a sucrose gradient is identical to that of transcortin.

Cells, Cultured↗