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D O Toft

Publications and source records attributed to D O Toft.

108 records · Page 6Linked to original sources

Progesterone-binding components of chick oviduct. VIII. Receptor activation and hormone-dependent binding to purified nuclei.

A cell-free system prepared from the estrogen-primed chick oviduct was developed and used to study the uptake of cytoplasmic progesterone-receptor complex by isolated nuclei. The receptor and purified nuclei were shown to be stable at 25 degrees, but not at 37 degrees. Thus, nuclear incubations were routinely performed at 25 degrees. Such incubations revealed greater nuclear uptake of the cytoplasmic hormone-receptor complex as compared to control incubations performed at 0 degrees. The uptake process showed a quantitative preference for oviduct nuclei. No net uptake occurred during 0 degrees incubations when the nuclei were preincubated in the absence of cytoplasmic components at 25 degrees. In contrast, the temperature requirement was partially removed by preincubation of the hormone-receptor complex at 25 degrees prior to incubation with nuclei at 0 degrees. Nuclear uptake was not accompanied by measurable alterations in the sedimentation properties of the progesterone receptor. The activation and nuclear uptake of receptor was clearly dependent upon prior binding of steroid hormone to the receptor indicating that the active nuclear form of the receptor could not be generated in the absence of the hormone. Receptor precipitation with ammonium sulfate also partially removed the temperature requirement for nuclear binding. In contrast to temperature activation, ammonium sulfate precipitation activated the receptor in the absence of hormone. It thus seemed likely that temperature and salt activation of receptor occurred via different mechanisms. Although we were able to destroy up to 60% of the nuclear DNA content by treatment with DNase prior to nuclear incubation, some 80 to 85% of the receptor-binding capacity was still present in the treated nuclei. Thus, chick progesterone receptors apparently bind to a relatively DNase-resistant portion of the oviduct genome. The properties of this system indicate its value for further investigation into the initial events of progesterone action in the chick oviduct.

Ammonium Sulfate↗

Binding of ATP to the progesterone receptor.

The possible interaction of progesterone--receptor complexes with nucleotides was tested by affinity chromatography. The cytosol progesterone receptor from hen oviduct was partially purified by ammonium sulfate precipitation before use. When progesterone was bound to the receptor, the resulting complex could be selectively adsorbed onto columns of ATP-Sepharose. This interaction was reversible and of an ionic nature since it could be disrupted by high-salt conditions. A competitive binding assay was used to test the specificity of receptor binding to several other nucleotides, including ADP, AMP, and cAMP. A clear specificity for binding ATP was evident from these studies. When ATP was added to receptor preparations, the nucleotide did not affect the sedimentation properties or hormone binding characteristics of the receptor. Although the function of ATP remains unknown, these studies indicate a role of this nucleotide in some aspect of hormone receptor activity.

Adenosine Triphosphate↗

Estrogen receptors in the chick oviduct.

An estradiol binding component has been identified in the cytoplasmic fraction of the immature chick oviduct. The method used to resolve this receptor differed from the standard sucrose gradient centrifugation approach in that tritiated hormone was present throughout the sucrose gradient. This modification was necessary to preserve the hormone complex during centrifugation. Under these conditions, an similar to 8 S binding component was demonstrated which underwent dissociation to a similar to 5 S component in high ionic strength medium. Binding specificity determinations revealed that this receptor preferentially bound estrogens. Quantitative binding analysis showed that a limited class of binding sites was present with a dissociation constant (K-d) for estradiol of similar to 8.6 times 10-10M. These properties indicate that this binding component may function as a biologic receptor for estrogens in the oviduct.

Animals↗

In vitro binding of retinol to rat-tissue components.

The high-speed supernatant fraction of rat liver, lung, kidney, testis, and intestinal mucosa contains a component capable of binding [(3)H]retinol in vitro when binding is analyzed by sucrose density gradient centrifugation or gel filtration. This binding component can be distinguished from one identified in rat serum. Whereas the tissue component sediments in the 2S region of sucrose gradients, the serum component sediments in the 4.6S region. Molecular weight estimations by gel filtration indicate molecular weights of 16,000 and 67,000 for the tissue and serum binding components, respectively. Unlabeled retinol, but not retinoic acid, competes for the binding of [(3)H]retinol in tissue cytosols. Competition for the binding of [(3)H]retinol by unlabeled retinal has also been observed in tissue cytosols, but may result from the in vitro reduction of retinal to retinol. Unlabeled retinol, retinal, and retinoic acid fail to compete for the binding of [(3)H]retinol in serum under the conditions used. The tissue binding component (testis) is sensitive to digestion with Pronase, but not with RNase or DNase, indicating a protein nature for this component.

Aldehydes↗

Progesterone "receptors" in the cytoplasm and nucleus of chick oviduct target tissue.

This report demonstrates that the chick oviduct, a specific target organ for progesterone, contains both cytoplasmic and nuclear macromolecules which bind progestins. These binding molecules can be clearly distinguished from transcortin by centrifugation through sucrose gradients of low ionic strength and by agarose gel filtration. The cytoplasmic progesterone-binding molecules also bind 5-alpha-pregnane-3,20-dione, but have significantly lower affinity for cortisol, estrone, or aldosterone. They are absent from blood and nontarget organs such as lung and spleen. The tissue-specific binding components appear to be heat-labile proteins with an average dissociation constant for progesterone of about 8 x 10(-10) M at 2 degrees C. These results are consistent with the identification of the progesterone-binding molecules as the functional hormone receptors. In further support of this concept is the finding that treatment of the chicks with estrogen coordinately induces a 20-fold increase in the number of progesterone-binding molecules and enhances the capacity of progesterone to induce avidin synthesis.A progesterone-"receptor" complex can be detected in both the cytoplasm and nuclei of oviduct tissue after an injection of [(3)H]progesterone to estrogen-treated chicks. By contrast, incubation of oviduct tissue with [(3)H]progesterone in vitro at 2 degrees C for 5 min leads to labeling of the cytoplasmic "receptor" only. Transfer of the "receptor"-steroid complex into the nucleus then appears to occur upon subsequent incubation in vitro at 37 degrees C. This observation suggests that the transfer of bound progesterone across the nuclear membrane may be an energy-requiring enzymatic process.

Aldosterone↗