PubMed Health⌕ Search

Biomedical subjects

J E Zielinski

Publications and source records attributed to J E Zielinski.

11 recordsLinked to original sources

The biosynthesis of D-ring fatty acid esters of estriol.

Biological esterification with fatty acids is a feature that is now known to be common to most steroids. The esterification of estradiol in the D-ring at the 17 beta-hydroxyl leads to a family of extremely active estrogens. Similarly, esterification of the weaker estrogen, estriol (E3), has an even greater impact on its hormonal potency. We have recently shown that synthetic long chain esters of E3 at either 16 alpha- or 17 beta- are highly potent estrogens. The estrogenic activity of the synthetic E3 esters led us to determine whether E3 is biologically esterified, and if so, to characterize the resulting esters. Incubation of E3 with rat lung, a tissue which is highly active in esterifying estradiol, produces a nonpolar metabolite which upon saponification is converted back into E3. There was no evidence for the formation of a diester. Purification by high performance liquid chromatography separates the non-polar metabolite into two peaks, one the C-16 alpha- (approximately 60%) and the other the C-17 beta-ester (approximately 40%). The two fractions were further purified and characterized; each is a mixture of fatty acid esters of E3. The composition of the C-16 alpha- and the C-17 beta-fatty acid esters of E3 is identical. The predominant fatty acids are arachidonate, 34%, palmitate, 26%, followed by oleate 14%, linoleate 13%, stearate 8%, and palmitoleate 5%. The similarity of the esters at C-16 and C-17 may indicate that the fatty acid precursor for the acyltransferase is the same for both hydroxyl groups. It may also suggest that the same enzyme esterifies both positions in the D-ring. Since synthetic estriol fatty acid esters are extremely potent and long-lived estrogens, the enzymatic esterification of estriol produces powerful estrogens with considerable physiological potential.

Animals↗

Steroidal fatty acid esters.

Several years ago we discovered an unexpected family of steroidal metabolites, steroidal fatty acid esters. We found that fatty acid esters of 5-ene-3 beta-hydroxysteroids, pregnenolone and dehydroisoandrosterone are present in the adrenal. Subsequently, others have shown the existence of these non-polar 5-ene-3 beta-hydroxysteroidal esters in blood, brain and ovaries. Currently, almost every family of steroid hormone is known to occur in esterified form. We have studied the esters of the estrogens and glucocorticoids in some detail, and have found that these two steroidal families are esterified by separate enzymes. In a biosynthetic experiment performed simultaneously with estradiol and corticosterone, we established that the fatty acid composition of the steroidal esters is quite different. The corticoid is composed predominantly of one fatty acid, oleate, while the estradiol esters are extremely heterogeneous. Our studies have demonstrated that the estrogens are extremely long-lived hormones, that they are protected by the fatty acid from metabolism. They are extremely potent estrogens, with prolonged activity. Esterification appears to be the only form of metabolism that does not deactivate the biological effects of estradiol. We have demonstrated the biosynthesis of fatty acid esters of estriol, monoesters at both C-16 alpha and C-17 beta. They too are very potent estrogens. These fatty acid esters of the estrogens are the endogenous analogs of estrogen esters, like benzoate, cypionate, etc., which have been used for decades, pharmacologically because of their prolonged therapeutic potency. We have found that the estradiol esters are located predominantly in hydrophobic tissues, such as fat. Sequestered in these tissues, they are an obvious reservoir of estrogenic reserve, requiring only an esterase for activation. To the contrary the biological activity of the fatty acid esters of the glucocorticoid, corticosterone, is not different from that of its free parent steroid. We have shown that the rapid kinetics of its induction of gluconeogenic responses is caused by its labile C-21 ester which is rapidly hydrolyzed by esterase enzymes. While it appears that the physiological role of the estrogen esters may be related to their long-lived hormonal activity, the role of the other families of steroidal esters is not yet apparent. They, and perhaps the estrogen esters as well, must serve other purposes. Indeed they may serve important biological functions beyond those which we ordinarily associate with steroid hormones.

Adrenal Glands↗

Estrogenic action of estriol fatty acid esters.

Recent studies suggest that, estriol, like estradiol, is biosynthetically esterified with fatty acids. We have synthesized the stearate estriol, at C-16 alpha, C-17 beta and the diester, C-16 alpha,17 beta and tested these D-ring esters for their estrogenic action both in vivo and in vitro, comparing them to estradiol, estriol and estradiol-17-stearate. None of the estriol esters bind to the estrogen receptor. They are only weakly estrogenic in a microtiter plate estrogen bioassay: stimulation of alkaline phosphatase in the Ishikawa endometrial cells. However, both estriol monoesters are extremely potent estrogens when injected subcutaneously (in aqueous alcohol) into ovariectomized mice. Compared to the free steroids, they produced a dramatically increased uterine weight with a greatly prolonged duration of stimulation. The 16 alpha,17 beta-diester also induced a protracted uterotrophic response, but the stimulation of uterine weight was comparatively low. Since the esters of estradiol and estriol do not bind to the estrogen receptor, their estrogenic signal must be generated through the action of esterase enzymes. These naturally occurring esters have the potential of being extremely useful pharmacological agents for long-lived estrogenic stimulation.

Alkaline Phosphatase↗

Developmental changes in estrogen receptors in mouse cerebral cortex between birth and postweaning: studied by autoradiography with 11 beta-methoxy-16 alpha-[125I]iodoestradiol.

The presence of estrogen receptor cells in postnatal cerebral cortex and their topographical and numerical changes between birth and postweaning were examined. On postnatal days 0, 2, 8, 12, 18, and 25, six mice (three males and three females) were injected sc with 0.25 microgram/100 g BW 11 beta-methoxy-16 alpha-[125I]iodoestradiol [( 125I]MIE2). Two additional males on postnatal day 2 were each sc injected with 250 micrograms/100 g BW 17 beta-estradiol 1 h before radiolabeled ligand to establish the specificity of nuclear label. Two hours after the injection of [125I]MIE2 brains were frozen, and 4-microns sections were thaw-mounted and processed for autoradiography. Autoradiograms were exposed for 1-45 days, and cortical cells with nuclear uptake and retention of [125I]MIE2 were evaluated at the levels of the frontal pole, preoptic area, and central and posterior hypothalamus. At birth, cells with nuclear label were found predominantly in deep cortical layers. Between birth and postnatal day 2, the number of labeled cells increased in deep and intermediate laminae and first appeared in certain superficial regions. By day 8, labeled cells were concentrated in laminae II-VI of the cingulate/paracingulate and suprarhinal cortex. On day 12, labeling in laminae V and VI declined to a few cells, while a concentration of labeled cells remained in laminae II and III of the cingulate/paracingulate and suprarhinal regions. With subsequent development, an attenuation in labeling at all cortical levels was observed. By day 25, a small cluster of labeled cells remained in lamina II and III of the anterior cingulate, paracingulate, and suprarhinal regions, with additional labeled cells scattered throughout the remaining cortex. Competition with unlabeled 17 beta-estradiol reduced nuclear concentration of ligand in all cortical layers and demonstrated the specificity of [125I]MIE2 for the estrogen receptor. These results show the extensive presence of estrogen target cells in the early postnatal cortex and a profound change in topography and number of target cells during the postnatal period. These findings further suggest an important role for estrogen in the development of certain cortical neurons, possibly involving neuronal differentiation, cell positioning, and connectivity.

Animals↗

Characterization of 11 beta-methoxy-16 alpha-[125I]iodoestradiol binding: neuronal localization of estrogen-binding sites in the developing rat brain.

The binding properties of the gamma-emitting 125I-labeled 11 beta-methoxy analog of 16 alpha-iodoestradiol, 11 beta-methoxy-16 alpha-iodoestradiol (MIE2), were characterized for its use in vivo as a ligand for the measurement and localization of estrogen-binding sites. In binding displacement studies, MIE2 bound to rat, rabbit, and human estrogen receptors with high affinity. Association of MIE2 with uterine cytosol estrogen receptors reached maximum values within 30 min at 25 C. At 0-4 C, association was much slower, with maximum binding values not achieved until 16-24 h after the start of the incubation. Once formed, the MIE2-estrogen receptor complex was quite stable at 0-4 C (t1/2 much greater than 24 h). At 25 C, dissociation of MIE2-estrogen receptor complexes occurred nearly 3 times more slowly than that of E2-estrogen receptor complexes (t1/2, 3.3 vs. 1.2 h). The iodinated estrogen was highly specific for the estrogen receptor and did not bind appreciably to androgen, progestin, or glucocorticoid receptors or to either human sex hormone-binding globulin or rat alpha-fetoprotein. MIE2 is also not a ligand for human sex hormone-binding globulin. Dose-dependent uptake of [125I]MIE2 into pituitary and brain cell nuclei was observed after its in vivo administration to 25-day-old female rats. In 10-micron brain sections from immature female rats treated with [125I]MIE2 (7.5 microCi/g BW), regional localization of estrogen-sensitive brain areas could be obtained by autoradiography using LKB Ultrofilm with an exposure time of only 16 h. In comparison, after an identical dose of 16 alpha-[125I]iodoestradiol, an exposure time of 72 h was required to achieve an image of similar density. Combined autoradiographic and immunocytochemical studies in 5- to 11-day-old female rats demonstrated nuclear binding of [125I]MIE2 in cells immunoreactive for neurofilament protein but not glial fibrillary acidic protein, indicating that estrogen receptors in the developing postnatal brain are restricted to neurons and are not present in astroglial cells. The biological characteristics of [125I]MIE2 combined with its high specific activity make it an estrogenic probe with a wide range of possible uses for the study of estrogen action in the developing brain as well as other estrogen target tissues.

Animals↗

The synthesis of 11 beta-methoxy-[16 alpha-123I] iodoestradiol and its interaction with the estrogen receptor in vivo and in vitro.

In order to produce an estrogen receptor mediated imaging agent, we have synthesized 11 beta-methoxy-16 alpha-iodoestradiol labeled with 123I, and have studied its interaction with the estrogen receptor and its distribution in rats and rabbits. This 123I-labeled steroid, 11 beta-methoxy-16 alpha-[123I]iodoestradiol, binds with high affinity, Ka = 6 x 10(9) M-1, and specificity to the estrogen receptor in uterine cytosol. When tested in vivo, this radiolabeled steroid concentrates by a receptor mediated mechanism, in the estrogen target tissue, the uterus, producing very high target to nontarget tissue ratios. The results of these experiments indicate that 11 beta-methoxy-16 alpha-[123I]iodoestradiol may be a useful imaging agent for clinically monitoring and detecting estrogen receptor containing tumors.

Animals↗

Regional sex differences in cell nuclear estrogen-binding capacity in the rat hypothalamus and preoptic area.

Estrogen binding was compared in cell nuclear KCl extracts from microdissected brain regions of gonadectomized-adrenalectomized male and female rats treated with a near-saturating dose of 17 beta-estradiol. Injection of 3.6 or 36.0 micrograms 17 beta-estradiol/kg BW, iv, 1 h before death resulted in a higher level of estrogen binding in the periventricular preoptic area (PVPOA), medial preoptic area, and ventromedial nucleus of the hypothalamus (VMN) of the female than in comparable tissue samples from the male. No significant sex differences in nuclear estrogen binding were observed in the arcuate-median eminence region, bed nucleus of the stria terminalis, or corticomedial amygdala. Scatchard analysis of saturation binding data revealed that the sex differences in cell nuclear estrogen binding in the PVPOA, medial preoptic area, and VMN reflect a difference in binding capacity rather than binding affinity. These in vitro biochemical findings were confirmed by autoradiographic studies. Gonadectomized-adrenalectomized animals were injected with 125I-labeled 11 beta-methoxy-16 alpha-iodoestradiol (2.0 micrograms/kg BW). Thin frozen sections (10 microns) through the preoptic area and hypothalamus were thaw-mounted onto microscope slides, then exposed against LKB Ultrofilm for 21 days. The autoradiographic images exhibited similar silver distributions and densities in males and females in the arcuate-median eminence region bed nucleus of the stria terminalis, and amygdala. However, 11 beta-[125I]methoxy-16 alpha-iodoestradiol uptake was lower in males than in females in the PVPOA and VMN. These results suggest that sex differences in responsiveness to estrogen stimulation in the rat may be due in part to sex differences in estrogen-binding capacity in specific regions of the hypothalamus that play important roles in the control of pituitary function and reproductive behaviors.

Adrenalectomy↗

Utility of [16 alpha-125I] iodoestradiol for autoradiography for the study of cellular and regional distribution of receptors.

We demonstrate the utility of [16 alpha-125I]iodoestradiol for thaw-mount autoradiography with 2 micron and 4 micron thick sections of rat and mouse uterus, pituitary, and brain after in vivo administration. Under the conditions of the experiments, short-term autoradiography with exposure times between 3 and 14 days provides optimal cellular resolution, whereas long-term autoradiography with 1-2 months of exposure may be used to obtain topographic-regional surveys of distribution.

Animals↗

The molecular structure of 16 alpha-iodo-17 beta-estradiol, a high affinity ligand for the estrogen receptor.

16 alpha-Iodoestradiol is an estrogenic steroid with high affinity for the estrogen receptor. When labelled with a gamma emitting isotope, such as 125I, the resulting radioactive steroid is an excellent ligand for the sensitive analysis of the estrogen receptor. The X-ray study of the crystal structure of 16 alpha-iodoestradiol reveals that the bond distances and angles of the iodinated estrogen are similar to those of estradiol and estriol. The substitution of iodine for the 16 alpha-hydroxyl group has little effect on geometric and electronic properties of the molecule and does not interfere with the hydrogen bonding ability of the 17 beta-hydroxyl group. The difference in receptor binding affinity between 16 alpha-estradiol and estriol may be due to competition for intermolecular hydrogen bond formation between the hydroxyls at C(16) and C(17) on estriol. X-Ray data indicate that the 16-hydroxyl can form significantly shorter and presumably stronger hydrogen bonds.

Chemical Phenomena↗

16 Alpha-[125I]iodo-11 beta-methoxy-17 beta-estradiol: a radiochemical probe for estrogen-sensitive tissues.

We have synthesized an analog of 16 alpha-iodoestradiol, 11 beta-methoxy-16 alpha-iodo-estra-1,3,5-(10)triene-3,17 beta-diol (16 alpha-iodo-11 beta-methoxyestradiol), as a potential radiopharmaceutical for the in vivo imaging of estrogen-sensitive tissues. This steroid was synthesized labeled with 125I by halogen exchange of the stable intermediate 11 beta-methoxy-16 beta-bromo-17 beta-estradiol with Na125I. The halogen exchange reaction produces the radioiodinated steroid with a 65-80% yield in 3 h. This rapid synthesis and purification of the 125I-labeled estrogen permits a similar synthesis with 123I, a radioisotope with excellent properties for imaging. The 11-methoxy analog is a highly potent estrogen that binds to the estrogen receptor with an affinity equal to that of estradiol. In vivo, 11 beta-methoxy-16 alpha-[125I]iodoestradiol concentrates in an estrogen receptor-dependent manner in the uterus, producing remarkably sustained and much higher uterus to blood ratios than 16 alpha-[125I]iodoestradiol. Thus, this radiosteroid shows great promise, both as a research probe of the estrogen receptor and as a clinical tool for the imaging of estrogen-responsive tumors.

Animals↗