Search PubMed⌕ Search

Biomedical subjects

W Vale

Publications and source records attributed to W Vale.

At least 109 records · Page 6Linked to original sources

Pituitary adenomas in mice transgenic for growth hormone-releasing hormone.

It has been shown that mice transgenic for human GH-releasing hormone (GRH) develop hyperplasia of pituitary somatotrophs, lactotrophs, and mammosomatotrophs, cells capable of producing both GH and PRL, by 8 months of age. We now report that GRH transgenic mice 10-24 months of age develop pituitary adenomas, which we characterized by histology, immunohistochemistry, in situ hybridization, and electron microscopy. Of 13 animals examined, all developed GH-immunoreactive neoplasms that had diffuse positivity for GH mRNA by in situ hybridization. Eleven also contained PRL immunoreactivity; in situ hybridization demonstrated focal PRL mRNA in 3 of 5 immunohistochemically positive tumors. Alpha-Subunit was positive by immunohistochemistry in 8 adenomas, and TSH beta was localized in tumor cells of 5 adenomas. The adenomas had variable ultrastructural appearances, ranging from cells that resembled somatotrophs or mammosomatotrophs to cells with features of the glycoprotein hormone cell line. These findings provide conclusive evidence that protracted GRH stimulation of secretory activity can result in proliferation, hyperplasia, and adenoma of adenohypophysial cells.

Adenoma↗

Gonadotropin-releasing hormone, inhibin, and activin in human placenta: evidence for a common cellular localization.

The human placenta produces several hypophysiotropic factors that participate in the control of local hormone secretion. In particular, previous reports showed that inhibin and activin modulate both GnRH release and hormonal effect in cultured human placental cells. The present study evaluated the possible correlations among the synthesis and cellular distribution of inhibin, activin, and GnRH in placental villi at term. mRNA coding for inhibin alpha- and beta A-subunits and GnRH were localized in human placenta at term by in situ hybridization using the corresponding cDNA probes. Autoradiograms revealed that some placental cells express inhibin alpha- and beta A-subunit and GnRH mRNAs. A common localization of the three hormonal mRNAs has been found in the inner part of the villi. Using affinity-purified polyclonal antisera, immunocytochemical studies confirmed that in placental villi at term, immunoreactive inhibin alpha- and beta A-subunits and GnRH had a distribution that was superimposable in several areas. Both the outer layer and the inner trophoblasts contained immunoreactive hormonal products. The present data show that some placental cells at term can produce and release inhibin, activin, and/or GnRH. This complement of hypophysiotropic factors may, thus, represent a local paracrine/autocrine control mechanism within the placenta.

Activins↗

Induction of azoospermia in normal men with combined Nal-Glu gonadotropin-releasing hormone antagonist and testosterone enanthate.

The effects of a combined GnRH antagonist and testosterone (T) replacement regimen on gonadotropins and spermatogenesis were examined to assess its potential as a male contraceptive regimen. The potent Nal-Glu GnRH antagonist ([Ac-D2-Nal1,D4-Cl-Phe2,D3-Pal3,Arg5, D4-p-methoxybenzoyl-2-amino butyric acid6,D-Ala10]GnRH) was administered daily (7.5 mg, sc) to eight normal men for 16 weeks. T enanthate was given im starting at week 2 and every 2 weeks thereafter through week 14 of the treatment phase. Serum LH, FSH, T, and estradiol concentrations were measured frequently during the 5-week control period, the 16-week treatment phase, and the 14-week recovery phase. Semen analyses were performed every week during the control phase and every 2 weeks during the treatment and recovery phases. Seven of eight subjects became azoospermic by 6-10 weeks of treatment; the eighth subject, who failed to achieve azoospermia, suppressed his sperm count to 7 million/mL by week 14 (from a mean baseline of 42 million/mL) before treatment was prematurely terminated because of localized swelling at each of his injection sites. Sperm counts returned to baseline 10-14 weeks after the end of Nal-Glu administration. Seven of the eight subjects showed suppression of LH to the limit of assay detection (less than 0.2 U/L), whereas the eighth subject showed incomplete suppression. Serum bioactive and immunoreactive LH concentrations showed concordant responses. Mean serum FSH concentrations were also markedly suppressed. Serum T and estradiol concentrations declined dramatically during the first 2 weeks of Nal-Glu GnRH treatment, but returned to the normal physiological range after T enanthate replacement was initiated. Libido and sexual potency were maintained. No systemic side-effects, other than erythema and induration at injection sites, were observed. These data demonstrate that combined GnRH antagonist plus T treatment can predictably and reversibly induce azoospermia in most men and has potential as a male contraceptive regimen.

Adult↗

Pituitary response to growth hormone-releasing hormone in IDDM. Abnormal responses to insulin and hyperglycemia.

In poorly controlled insulin-dependent diabetes mellitus (IDDM), hyperglycemia fails to inhibit the pituitary response to growth hormone-releasing factor (GRF). To evaluate whether this derangement is reversed by a simultaneous elevation of circulating insulin, 0.3 micrograms/kg i.v. GRF 1-40 was administered to nine poorly controlled IDDM subjects (HbA1 greater than 11.1%) with and without concomitant infusion of insulin. In the absence of insulin, the poorly controlled IDDM subjects demonstrated a growth hormone response to GRF similar to that of nondiabetic subjects, despite marked hyperglycemia (approximately 16.8 mM). When insulin was infused into these same patients (insulin clamp) to produce combined hyperinsulinemia (528 +/- 90 pM) and hyperglycemia (16.5 +/- 1.98 mM), the GRF-induced growth hormone rise was markedly exaggerated (65 +/- 11 vs. 20 +/- 4 micrograms/L without insulin infusion, P less than 0.001). This enhancement of GRF-stimulated growth hormone release by insulin was strikingly attenuated (22 +/- 7 micrograms/L) in five well-controlled diabetic subjects studied under conditions of similar hyperinsulinemia (486 +/- 84 pM) and hyperglycemia (16.41 +/- 0.95 mM). In contrast, in nondiabetic subjects, acute hyperinsulinemia reduced the growth hormone response to GRF. We conclude that the failure of hyperglycemia to block the pituitary response to GRF in poorly controlled diabetes is not attributable to the lack of a coincident increase in circulating insulin. The paradoxical stimulatory effect of insulin on GRF-induced growth hormone release may contribute to the high spontaneous growth hormone levels characteristically seen in poorly controlled insulin-treated patients, and its attenuation after intensive insulin therapy may contribute to the reversal of growth hormone hypersecretion in well-controlled diabetic patients.

Adult↗

Distribution of corticotropin-releasing factor mRNA and immunoreactivity in the central auditory system of the rat.

Hybridization histochemical and immunohistochemical methods were used to characterize the distribution of corticotropin-releasing factor (CRF) messenger RNA (mRNA) and peptide, respectively, in the central auditory system of the rat. Cell bodies expressing CRF mRNA and/or immunoreactivity (IR) were detected at each level of the system, including sparse or equivocal localizations in the dorsal cochlear nucleus, the medial nucleus of the trapezoid body, and the lateral superior olive. More prominent groups of cells expressing CRF mRNA and CRF-IR were found in the nuclei of the lateral lemniscus, the shell of the inferior colliculus, the medial division of the medial geniculate body and in primary auditory cortices. The latter showed the greatest density of CRF-expressing interneurons, distributed primarily in layers II, III and V, of any neocortical area. Results obtained using the two staining methods were in good agreement, except in the cochlear and superior olivary nuclei, where cells displaying CRF-IR were apparent in far greater abundance than those expressing CRF mRNA. CRF-IR fibers and terminals were detected in regions generally consistent with the cellular localizations described above. These results provide evidence for a surprisingly widespread expression of CRF in the auditory system of the rat. This includes generally low levels of expression in components of the primary auditory path (cochlear nucleus, trapezoid body, superior olive, lemniscal nuclei). CRF appears to be more prominently expressed in so-called non-primary components of the auditory system, including aspects of the medial geniculate body that constitute an interface between the auditory system and stress-related limbic system circuitry.

Animals↗

Inhibin subunits in human placenta: localization and messenger ribonucleic acid levels during pregnancy.

This study describes the difference in distribution and levels of inhibin alpha, beta A- and beta B-subunit messenger ribonucleic acids in human placenta during pregnancy. Northern blot analysis indicated that inhibin alpha messenger ribonucleic acid is present in placental extracts collected at the early stage of gestation. Hybridization to inhibin beta A messenger ribonucleic acid was detected in the first trimester but in much lower levels. However, the intensity of the hybridization signal for inhibin alpha- and beta A-subunit messenger ribonucleic acids was greater in extracts prepared from term placentas than in those from the first or second trimester of pregnancy. Low levels of inhibin beta B-subunit messenger ribonucleic acid were observed only in extracts prepared from term placenta. At both early stage and term gestation trophoblast cells showed a positive fluorescent signal with the inhibin alpha-, beta A- and beta B-subunit-specific antisera. However, whereas inhibin alpha-subunit was localized in the cytotrophoblast, inhibin beta B-subunit immunoreactivity was observed in the syncytial layer of the villi, and inhibin beta A-subunit was widely distributed. The different distribution of immunoreactive inhibin subunits was confirmed by in situ hybridization, showing the different localizations of the inhibin messenger ribonucleic acids. These results showed that (1) human placenta produces the inhibin alpha- and beta A-subunits as early as the first trimester of pregnancy, (2) messenger ribonucleic acid levels for each of the three inhibin subunits are highest at term, and (3) immunoreactive inhibin subunits are localized differently in placental villi.

Female↗

Novel gonadotropin-releasing hormone antagonists: peptides incorporating modified N omega-cyanoguanidino moieties.

In order to minimize the deleterious effects of histamine release resulting from the administration to rats and humans of some potent gonadotropin-releasing hormone (GnRH) antagonists, various arginine residues were replaced with the less basic N omega-cyano-N omega-alkyl- or -arylhomoarginine, -arginine, or -p-aminophenylalanine and N omega-triazolyllysine, -ornithine or -p-aminophenylalanine residues in active analogues. These novel analogues were synthesized on a solid-phase support via a two-step modification of the N omega-NH2 of lysine, ornithine, or p-aminophenylalanine residues in otherwise protected resin bound peptides. Most analogues were tested in the rat antiovulatory assay (AOA) and three in vitro assays; a pituitary cell culture assay, a binding assay to pituitary cell membranes, and a histamine release assay. Introduction of the cyanoguanidino and N omega-triazolyl moieties into GnRH analogues yielded several water-soluble antagonists which showed a desirable therapeutic ratio (low histamine release activity to high in vivo potency). Among them, "Azaline" (10, [Ac-DNal1,DCpa2,DPal3,Lys5(atz), DLys6(atz),ILys8,DAla10]GnRH), inhibited ovulation in the rat by 90% at 2 micrograms/rat with an ED50 in the in vitro histamine release assay comparable to that of GnRH itself.

Animals↗

Activin-A modulates gonadotropin-releasing hormone secretion from a gonadotropin-releasing hormone-secreting neuronal cell line.

The recent development of GnRH-secreting neuronal cell lines (GT1-1, GT1-3 and GT1-7 clones) has provided a model system for the study of the neural regulation of GnRH expression and secretion. We report here that activin-A stimulates GnRH secretion by GT1-7 cells in a dose-dependent manner, with an EC50 of approximately 2.5 ng/ml. The maximal response (50% stimulation) was achieved after 2 days of incubation with 20 ng/ml activin-A. Activin-A treatment increased total GnRH (secreted + cellular) in GT1-7 cells, possibly reflecting a stimulation of GnRH biosynthetic rates. The secretory effect of activin-A was also accompanied by a change in the cellular morphology to a more neuronal phenotype. The addition of TGF-beta (10 ng/ml), which is structurally related to activins, did not significantly increase secretion of GnRH by GT1-7 cells illustrating the specificity of the activin effect on this cell line. Although inhibin (20 ng/ml) alone did not directly affect the spontaneous secretion of GnRH, it was able to partially block the stimulatory effect of activin. The present study with the GT1-7 clonal cell line suggests that activin, and perhaps inhibin, might act at hypothalamic sites to regulate reproduction through the control of GnRH production and/or secretion.

Activins↗

Effect of recombinant inhibin on luteinizing hormone and follicle-stimulating hormone secretion in the rat.

We investigated the effect of the iv injection of recombinant human (rh) inhibin on FSH and LH secretion in the female rat under various experimental circumstances. Rh inhibin caused dose-related decreases in mean plasma FSH, but not LH, levels in ovariectomized female rats 14 days old and older. The duration of this inhibition was proportional to the dose of rh inhibin, but no consistent changes in FSH secretion were observed until 4 h after treatment. Maximum suppression of FSH release was observed at about 15 micrograms rh inhibin/kg BW and lasted 8-10 h. Measurement of the area under the curve from 4-12 h after injection of inhibin indicated a dose-related decrease in total FSH secreted. When blood samples were withdrawn every 10 min to evaluate pulsatile gonadotropin release, analysis of FSH pulse parameters indicated that rh inhibin (25 micrograms/kg) interfered with pulse frequency, amplitude, and peak levels in both intact and ovariectomized rats. In contrast, pulsatile LH secretion was not measurably altered. These results demonstrate that rh inhibin acts primarily at the level of the pituitary to inhibit all parameters of FSH secretion and suggest that this effect is at least not entirely mediated by changes in GnRH receptors.

Aging↗

Evidence for an autocrine role of activin B within rat anterior pituitary cultures.

Activins, dimers of inhibin beta subunits, are potent stimulators of FSH secretion in vivo and in vitro and of FSH beta mRNA expression in rat anterior pituitary cultures. In this study, we investigated the possibility that locally secreted activin B (beta B beta B) may function as an autocrine modulator of basal FSH secretion and expression based on the previous observation that beta B is expressed within gonadotropes. The incubation of cultured rat anterior pituitary cells with a m mouse monoclonal antibody specific for the activin B homodimer (MAb-activin B) significantly attenuated the basal secretion of FSH in a concentration- and time-dependent manner, without influencing LH secretion. Moreover, MAb-activin B selectively inhibited FSH beta mRNA accumulation without affecting either LH beta or alpha subunit mRNAs. The MAb-activin B completely blocked the stimulation of FSH secretion by exogenous activin B, but not by activin A, confirming its specificity. As previously shown, inhibin A and follistatin significantly suppressed basal FSH secretion in these cultures. This inhibitory effect, albeit of lower magnitude, was still evident even in the presence of the MAb-activin B which by itself suppressed basal FSH secretion. These data suggest that the secretion of activin B by the gonadotropes of the anterior pituitary may serve as an autocrine signal in the selective modulation of FSH expression and secretion. Furthermore, the inhibitory actions of inhibins and follistatins on gonadotropes may, in part, be explained by their ability to interfere with the actions of endogenous activin B.

Activins↗

An inhibitory effects of interleukin-1a on basal gonadotropin release in the ovariectomized rhesus monkey: reversal by a corticotropin-releasing factor antagonist.

Interleukin-1 (IL-1), an important component of the immune system, has recently been shown to influence the release of several hormones in the rodent. In this paper, the effectiveness of IL-1a in modulating basal gonadotropin secretion as well as cortisol release in the primate has been investigated. Eight adult ovariectomized rhesus monkeys were given a 30-min intracerebroventricular infusion of physiological saline (n = 5), various doses of IL-1a (17 micrograms n = 5; 8.5 micrograms; n = 3; 4.2 micrograms n = 5; and 2.1 micrograms n = 4) or IL-1a plus a CRF antagonist (n = 5). LH and FSH concentrations were measured at 15-min intervals during the 3-h preinfusion baseline control and the 5-h postinfusion period, while cortisol concentrations were determined at 45-min intervals. While LH concentrations remained unchanged in the monkeys receiving saline only, they decreased significantly after the 30-min IL-1a infusion. By hour 5 after IL-1a administration, mean (+/- SE) hourly areas under the LH curves (expressed as a percentage of preinfusion baseline) were 27.7% +/- 7.3 (17 micrograms IL-1a), 31.9% +/- 8.4 (8.5 micrograms), 33.3% +/- 5.5 (4.2 micrograms), and 39% +/- 4.0 (2.1 micrograms) (P less than 0.05 vs. morning control). FSH concentrations were also significantly decreased after IL-1a, 17 micrograms: by hour 5, they were 67.4% +/- 5.0 of baseline control. While cortisol concentrations decreased thoughout the experiment in the animals receiving saline, they increased with all IL-1a doses: overall mean (+/- SE) postinfusion concentrations were 21.8 +/- 1.1 (saline), 49.5 +/- 2.2 (IL-1a, 17 micrograms), 35.1 +/- 1.9 (8.5 micrograms), 45.7 +/- 1.5 (4.2 micrograms), and 39.5 +/- 1.5 (2.1 micrograms) micrograms/dl (P less than 0.05 IL-1a vs. saline). Concomitant infusion of the CRF antagonist, [D-Phe12, NLE 21,38caMe LEU37] CRF (12-41), (120-360 micrograms), prevented the IL-1a induced LH inhibition. By hour 5, areas under LH curves were 33.5% +/- 1.7 for IL-1a alone and 99.2% +/- 4.2 (NS vs. saline) for IL-1a + CRF antagonist. The CRF antagonist also blocked the ability of IL-1a to increase cortisol secretion: mean cortisol concentrations were 28.6 +/- 1.4 micrograms/dl (NS vs. saline). The results clearly indicate that the cytokine IL-1a inhibits pulsatile LH and FSH secretion in the ovariectomized rhesus monkey and demonstrate that this inhibition is causally related to the activation of CRF by this cytokine.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Effect of recombinant inhibin on gonadotropin secretion during proestrus and estrus in the rat.

This work investigated the ability of recombinant human (rh) inhibin A or the GnRH antagonist [Ac-D2Nal1, delta Cpa2, delta 3Pal3, Arg5 delta 5-(p-methoxyphenyl)5-oxo-2-aminopentanoic acid6, delta Ala10]GnRH to alter plasma immunoreactive LH and FSH levels in cycling female rats. In a first series of experiments, rh inhibin A (25 micrograms/kg) was injected iv between 0800 and 0830 h, or at 0800 and 1200 h, on proestrus, and plasma hormone levels were measured from 1200-1900 h. Both regimens of administration significantly (P less than or equal to 0.01) lowered mean plasma FSH levels but did not mask the primary FSH surge. This treatment also lowered the overall amount of LH released, although the difference between control and inhibin-treated rats only reached statistical significance (P less than or equal to 0.05) after two injections of the protein. Measurement of the number of tubal ova shed on the next estrus showed no difference between rats injected with the vehicle or inhibin at 0830 h. Finally, it was shown that administration of the GnRH antagonist (100 micrograms/kg) at 1200 h interfered with the primary surges of both LH and FSH. In a second series of experiments, rh inhibin A (25 micrograms/kg) was injected once at 2000 h on proestrus. In these animals, inhibin significantly (P less than or equal to 0.01) decreased mean plasma FSH levels between 2000 h on proestrus and 0500 h on estrus and totally suppressed the secondary FSH surge. LH secretion remained low in control animals, and no measurable changes were observed after inhibin treatment. Flushing of the ova 5 days later (i.e. during estrus of the subsequent cycle) showed no difference between control and inhibin-treated rats. Injection of the GnRH antagonist (100 micrograms/kg) at 2000 h on proestrus decreased the total amount of FSH secreted during late proestrus and early estrus. However, FSH secretion showed an increase at between 0100 and 0400 h of estrus despite blockade of GnRH receptors. These results indicate that administration of rh inhibin A interferes with both the primary and secondary FSH surges. In contrast to its inability to alter LH release by ovariectomized rats, inhibin also blunted LH secretion during the afternoon of proestrus. Whether these results represent differential effects of inhibin on LH secreted by intact and gonadectomized animals, or whether the documented changes in pituitary responsiveness to GnRH during proestrus are accompanied by an increased sensitivity to inhibin, needs further investigation.

Animals↗

Central activin administration modulates corticotropin-releasing hormone and adrenocorticotropin secretion.

A broad and diffuse neuronal network conveys information reflecting the state of the internal and external environment to the neurosecretory hypothalamus. Recently, we identified an inhibin-beta A- (I beta A) immunoreactive terminal field within the CRF-rich portion of the dorsomedial paraventricular nucleus which originates from a cell group in the commissural portion of the nucleus of the solitary tract (NTS). The NTS receives baroreceptor input, somatosensory input via the spinosolitary tract, and sensory information from the oral, thoracic, and abdominal cavities and, thus, is positioned to serve as a primary relay for visceral sensory inputs to neurons critical to the function of the hypothalamic-pituitary-adrenal (HPA) axis. Although these NTS cells contain multiple putative transmitters, we present evidence that activin, an inhibin-beta A dimer, plays a modulatory role in HPA axis function via facilitation of CRF release. First, intraventricular injection of activin-A (0-3 nmol), but not the related inhibin heterodimer, evoked dose-related 1.7- to 2.8-fold elevations of circulating ACTH levels in male rats. Second, analysis of hypophysial-portal plasma after bilateral paraventricular nucleus microinfusion of activin-A revealed a dose-related facilitation of CRF secretion up to 4-fold above preinjection levels which was unaccompanied by changes in arginine vasopressin levels. Finally, activin-A also enhanced CRF secretion from neonatal hypothalamic cells in primary culture with an EC50 dose of approximately 0.25 nM. Overall, these observations provide evidence of both an anatomical and a pharmacological substrate for activin-mediated central modulation of HPA axis function.

Activins↗

Expression of inhibin/activin subunit messenger ribonucleic acids during rat embryogenesis.

Inhibin (alpha/beta) and activin (beta/beta) were first recognized as gonadal hormones that regulate the production and release of FSH from the anterior pituitary gland. Studies now show that these proteins, which are members of the transforming growth factor-beta (TGF beta) superfamily, and their corresponding messenger RNAs have a broad anatomical distribution and may regulate the growth and differentiation of a variety of cell types. To determine whether inhibin and activin may also play a role in embryonic development, in situ hybridization techniques were utilized to examine the localization of the mRNAs encoding the inhibin/activin subunits (alpha, beta A, beta B) in rat embryos from 12 days post coitum (p.c.) until birth. The beta A-subunit message was localized in the heart at 12 days p.c. and in the dermal layer of the skin starting at 13 days p.c. At 14 days p.c. this mRNA was first observed in the whisker follicles, in the developing skeleton of the snout, limbs, and in the intervertebral disks. At 16 days p.c. the beta A-message was found in the striatum of the brain, and at 18 days p.c. it was also detected in the cerebral cortex. The beta A-mRNA signal appeared in hair bulbs at 17 days p.c., in teeth at 18 days p.c., and in tendons and gonads just before birth. Expression of beta A-mRNA was no longer detected in the skin or intervertebral disks after 17 days p.c. The beta B-subunit message was found in the area of rapidly dividing cells surrounding the forebrain ventricle, starting at 14 days p.c., in the gonads from the time of gonadal sexual differentiation, at 14 days p.c., and in the salivary gland as early as 17 days p.c. The beta B-message continued to be expressed in these areas throughout embryogenesis. The inhibin-alpha subunit message was also detectable in the gonads from 14 days p.c. until birth. These data suggest that 1) inhibin and activin may be produced in the gonads and possibly play a hormonal role in the embryonic rat during the last trimester of pregnancy, and 2) activin may regulate aspects of the embryonic development of the heart, skin, hair and whiskers, cartilage, bone, tendons, teeth, salivary gland, brain, and gonads, possibly in coordination with other members of the TGF beta superfamily whose mRNAs are expressed in some of these same tissues during development.

Activins↗

Stimulatory effect of interleukin-1 on adrenocorticotropin secretion in the rat: is it modulated by prostaglandins?

The in vivo release of ACTH by interleukin-1 alpha (II-1 alpha) is reportedly blocked by acute treatment with indomethacin (indo), suggesting an involvement of endogenous prostaglandins in the effect of cytokines on the hypothalamic-pituitary-adrenal axis. However, indo also increases plasma corticosterone levels, raising the possibility that inhibition of ACTH release is due to suppressive effects of hypercorticolemia rather than to blockade of the stimulatory effects of II-1 alpha. We observed that the iv administration of indo (10 mg/kg) 15 min before II-1 alpha completely abolished the rise in plasma ACTH levels caused by the peripheral injection of this lymphokine to intact rats. At the time of II-1 alpha injection, plasma corticosterone levels were 39 +/- 12 ng/ml in controls and 121 +/- 22 ng/ml in indo-treated animals (P less than or equal to 0.01). In contrast, implantation of intact rats with indo pellets (which delivered 30 micrograms drug/h) 28 h before II-1 only partially interfered with II-1-induced ACTH secretion. In these rats plasma corticosterone levels before II-1 alpha injection were 29 +/- 14 ng/ml in controls and 66 +/- 18 ng/ml in rats implanted with indo pellets (P less than or equal to 0.05). To determine whether the effect of indo was due to corticosteroid feedback or represented a modulating action of prostaglandins themselves, a similar series of experiments was carried out in adrenalectomized rats. In the absence of corticoid replacement therapy, acute treatment with indo did not measurably interfere with the stimulatory effect of II-1 alpha. In contrast, indo blunted, but did not abolish, the effect of II-1a in ADX rats pretreated with corticosterone or dexamethasone to normalize basal ACTH levels. We conclude that the acute ability of indomethacin to totally block II-1-induced ACTH secretion by intact rats appears to be primarily mediated through corticosteroid feedback. However, results obtained when a similar experiment was carried out in adrenalectomized/corticosteroid-treated rats suggest, although they do not prove, that the ability of II-1 alpha to activate the hypothalamic-pituitary-adrenal axis may be partially dependent on the release of prostaglandins.

Adrenalectomy↗

Activin stabilizes follicle-stimulating hormone-beta messenger ribonucleic acid levels.

Activin, a gonadal peptide, stimulates FSH secretion in association with an increase in FSH beta messenger RNA (mRNA) levels at the level of the anterior pituitary gland. The goal of these studies was to determine whether the effects of recombinant human activin A (rhActivin A) are exerted at the post-transcriptional level by affecting the stability of FSH beta mRNA. We determined the apparent half-life of FSH beta mRNA in the presence and absence of rhActivin A using actinomycin D. The anterior pituitary glands from adult male rats were isolated and dispersed enzymatically. Cells were preincubated in the presence of rhActivin A for 24 h to increase FSH beta mRNA levels. Actinomycin D was then added and the cells were incubated for a subsequent 4, 6, 8, 12, and 24 h in the presence or absence of rhActivin A. As reported earlier, the addition of rhActivin A caused parallel increases in FSH secretion and FSH beta mRNA levels, while having no effect on alpha or LH beta mRNA levels. Actinomycin D treatment decreased FSH beta mRNA to 49, 39, and 16% of control levels at the 4, 6, and 8 h time points, respectively. In contrast, when actinomycin D was added in the presence of rhActivin A FSH beta mRNA was reduced to 80, 58, and 42% of control levels at the 4, 6, and 8 h time points, respectively. Using the least squares method of analysis, the apparent half-lives of FSH beta mRNA under these two conditions were calculated. In the presence of actinomycin D, the half-life of FSH beta mRNA was 3.1 h. The addition of activin significantly increased the half-life to 6.5 h. These results suggest that activin A stimulates FSH beta mRNA levels, at least in part, at the posttranscriptional level by increasing the stability of FSH beta mRNA.

Activins↗