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Biomedical subjects

M O Thorner

Publications and source records attributed to M O Thorner.

At least 145 records · Page 8Linked to original sources

Cross-linking of a growth hormone releasing factor-binding protein in anterior pituitary cells.

Growth hormone-releasing factor (GRF) stimulates the release of growth hormone from the anterior pituitary and is related to the peptides of the glucagon/secretin family. Although the mechanism of action of this hormone has been studied in considerable detail, little is known concerning the GRF receptor itself. We have attempted to label the GRF receptor by chemically coupling the 125I-GRF analog [His1, Nle27]-hGRF(1-32)-NH2 (GRFa) (where Nle is norleucine) to plated rat anterior pituitary cells with the protein cross-linker disuccinimidyl suberate (DSS) (0.1 mM). Verification of biological activity of the 125I-GRFa was confirmed prior to the cross-linking experiments using the reverse hemolytic plaque assay. Whole cell extracts prepared from the cross-linked cells were subjected to sodium dodecyl sulfate-polyacrylamide gel electrophoresis followed by autoradiography of the dried gels. Four bands of 72, 50, 30, and 26 kDa were detected in autoradiograms from cells exposed to the labeled analog for 20 min (22 degrees C) followed by exposure to DSS for 2 min. The 72-kDa band was interpreted to be bovine serum albumin, which was used as a carrier in initial studies. The 50- and 30-kDa bands were very faint and probably represent nonspecific binding sites since they were unchanged in the presence of excess unlabeled GRFa. The 26-kDa band was diminished in a concentration-dependent manner by unlabeled rat GRF, GRFa, and to a lesser extent by vasoactive intestinal peptide (VIP). It is unlikely, however, that GRFa was acting at a VIP receptor since the labeled analog did not induce prolactin secretion (VIP is a prolactin secretagogue). GRFa also increased cellular cAMP to levels similar to GRF and greater than VIP. Autoradiographs from gels run under nonreducing conditions revealed the 26-kDa band as the major species, indicating that, if a polymeric form of this binding protein exists, it does not involve disulfide linkages. Thus, the best candidate for the putative GRF receptor is the 26-kDa band. We have further demonstrated that the higher concentrations of DSS used previously (5 mM) result in diffuse autoradiograms with multiple bands, suggesting that caution should be exercised when interpreting cross-linking data under these conditions.

Animals↗

Endocrine impact of pure estradiol replacement in postmenopausal women: alterations in anterior pituitary hormone release and circulating sex steroid hormone concentrations.

Thirteen healthy postmenopausal volunteers were studied under basal conditions and at intervals (days 1, 5, 10, and 30) after intravaginal placement of a polysiloxane ring impregnated with 400 mg of estradiol. Mean serum estradiol concentrations rose 26-fold with a twofold increase in serum estrone concentrations. Serum delta 4-androstenedione, dehydroepiandrosterone sulfate, and total testosterone did not change, but absolute and percent free testosterone concentrations declined significantly by day 5. Concurrently, serum concentrations of immunoactive follicle-stimulating hormone declined progressively, while serum luteinizing hormone and free alpha-subunit concentrations exhibited a biphasic pattern of suppression. Serum levels of prolactin increased monophasically and those of growth hormone, somatomedin C, and thyroid-stimulating hormone did not change.

Estradiol↗

The effect of intravenous, subcutaneous, and intranasal GH-RH analog, [Nle27]GHRH(1-29)-NH2, on growth hormone secretion in normal men: dose-response relationships.

A 29 amino acid analog of growth hormone releasing hormone (GH-RH)-40 was given intravenously, subcutaneously, and intranasally to normal men to determine its effectiveness in stimulating growth hormone (GH) release. The GH-RH analog, [Nle27]GH-RH(1-29)-NH2, is an amidated 29 amino acid peptide that has one amino acid substitution at position 27. This peptide stimulates GH secretion when given by the intravenous, subcutaneous, and intranasal routes without adverse effect. The degree of GH stimulation was variable among subjects and the greatest amount of stimulation occurred with the highest doses. GH stimulation occurred in a dose-responsive manner after all three routes of administration. A tenfold higher subcutaneous dose was required to stimulate a comparable amount of GH secretion as compared with intravenous administration, and a thirtyfold higher intranasal than intravenous dose was required to stimulate approximately one fifth the amount of GH release. For comparison, one dose of GH-RH-40, 1 microgram/kg, was administered intravenously. GH secretion after 1 microgram/kg GH-RH-40 and 1 microgram/kg Nle27 GH-RH was comparable between the two groups of subjects. Stimulation of GH secretion by Nle27 GH-RH occurred within 5 minutes of intravenous and within 10 minutes of subcutaneous and intranasal administration; peak GH levels were observed within 30 minutes. GH levels declined and returned to near baseline levels 2 hours after administration of the analog.(ABSTRACT TRUNCATED AT 250 WORDS)

Administration, Intranasal↗

Nocturnal pulsatile growth hormone releasing hormone treatment in growth hormone deficiency.

We have treated five GH-deficient prepubertal children (4 M, 1 F) with GH releasing hormone 1-40 (GHRH1-40) in two dosage regimens over 9 months. Profiles of serum GH concentrations were obtained over 24 hours before treatment and nocturnal profiles were obtained serially throughout the study. GHRH was administered subcutaneously at night for four pulses using 1 microgram/kg/pulse in the first 3 months and 2 micrograms/kg/pulse for a further 6 months. All subjects demonstrated pituitary responsiveness to i.v. GHRH before treatment and at 3 and 6 months. GH secretion was induced in a pulsatile fashion in response to subcutaneous GHRH in three children from the first night of treatment. A self priming effect to successive GHRH pulses was evident and the response augmented with time and with the higher dose regimen. The growth velocity of these three children increased from a mean of 3.7 cm/year (range 3.7-3.8) before treatment to 5.5 cm/year (range 4.1-7.2) over the first 3 months and to 7.2 cm/year (range 4.8-9.2) over the following 6 months. In one subject entrainment of GH secretion to GHRH did not occur until the higher dose regimen and this was associated with a modest increase in growth velocity. One subject did not respond to treatment. Pulsatile administration of GHRH1-40 is effective in inducing GH secretion and promoting growth acceleration in some children with idiopathic GH deficiency. The optimal dose and mode of administration of GHRH have yet to be established.

Child↗

Sex-related differences in GH secretion in rat using reverse hemolytic plaque assay.

It is not known whether enhanced growth hormone (GH)-releasing factor (GRF)-stimulated GH release observed in the male reflects differences in somatotrope numbers and/or secretory response to GRF. We addressed this question by using the hemolytic plaque assay which allows quantification of hormone secretion by single pituitary cells. Time-course studies and GRF-GH concentration-response relationships (0.01, 0.1, 1, 10, 100, 1,000 nM GRF) in age-matched male and diestrous day 2 female rats were compared by quantitating the percent of GH plaque-forming cells, and measuring the plaque areas. The male pituitary contained a greater percent (P less than 0.05) of somatotropes (% of plaque-forming cells 45 +/- 2 vs. 27 +/- 4% in the female; mean +/- SE). GRF induced a greater concentration-dependent increase in plaque areas in the male. Maximal responses were attained at 10 nM GRF in both sexes. However, mean maximal plaque area was significantly greater (P less than 0.001) and the EC50 was significantly lower (P less than 0.05) in the male (0.25 +/- 0.09 vs. 1.78 +/- 0.64 nM in the female). The data suggest that the greater percent of somatotropes in the male and greater secretory capacity and sensitivity to GRF may contribute to sex-related differences in GH secretion in the rat.

Animals↗

Prokaryotic adenylate cyclase toxin stimulates anterior pituitary cells in culture.

Bordetella pertussis synthesizes a variety of virulence factors including a calmodulin-dependent adenylate cyclase (AC) toxin. Treatment of anterior pituitary cells with this AC toxin resulted in an increase in cellular cAMP levels that was associated with accelerated exocytosis of growth hormone (GH), prolactin, adrenocorticotropic hormone (ACTH), and luteinizing hormone (LH). The kinetics of release of these hormones, however, were markedly different; GH and prolactin were rapidly released, while LH and ACTH secretion was more gradually elevated. Neither dopamine agonists nor somatostatin changed the ability of AC toxin to generate cAMP (up to 2 h). Low concentrations of AC toxin amplified the secretory response to hypophysiotrophic hormones. We conclude that bacterial AC toxin can rapidly elevate cAMP levels in anterior pituitary cells and that it is this response that explains the subsequent acceleration of hormone release.

Adenylate Cyclase Toxin↗

Clinical studies with GHRH in man.

GHRH was isolated from two GHRH-secreting pancreatic tumors which resulted in clinical acromegaly. Over 98% of acromegalic patients have a pituitary adenoma; however, acromegaly may occasionally result from ectopic or eutopic GHRH secretion. Administration of GHRH to normal adults stimulates growth hormone (GH) secretion; it may also stimulate GH release in some adults with GH deficiency in childhood and in a majority of GH-deficient children. Continuous infusion of GHRH to normal men stimulates GH secretion which augments naturally occurring GH pulses. GHRH is effective when administered subcutaneously and intranasally, but requires 30- and 300-fold higher doses, respectively. Intermittent subcutaneous GHRH therapy promotes acceleration of linear growth in GH-deficient children and appears promising as a treatment for these children.

Acromegaly↗

Pituitary self-priming actions of gonadotropin-releasing hormone. Kinetics of estradiol's potentiating effects on gonadotropin-releasing hormone-facilitated luteinizing hormone and follicle-stimulating hormone release in healthy postmenopausal women.

We examined the kinetically distinct characteristics of estradiol's effects upon pituitary luteinizing hormone (LH) and follicle-stimulating hormone (FSH) release in response to pulses of exogenous gonadotropin-releasing hormone (GnRH) in healthy postmenopausal individuals. The putative self-priming actions of GnRH on LH and FSH release were tested by intravenous injections of equal paired doses of GnRH (10 micrograms) before and after 1, 5, 10, and 30 d of pure estradiol-17 beta delivery via an intravaginal silastic ring. Self-priming actions of GnRH, as defined by heightened gonadotropin release in response to the second pulse of GnRH compared with the first, were completely absent in the hypoestrogenemic state. However, estradiol administration unmasked GnRH self-priming in a time-dependent fashion, with maximal expression after 5 and 10 d of steroid replacement, followed by attenuation by 30 d. Since estradiol's modulation of GnRH action was expressed differentially on LH and FSH release, we suggest that such facilitation of GnRH-stimulated pituitary LH and FSH release may provide an additional mechanism for dissociated secretion of gonadotropic hormones in health or disease.

Drug Interactions↗

Sex differences in beta-adrenergic stimulation of growth hormone secretion in vitro.

In previous in vitro studies we have shown that the amounts of GH released by pituitary cells in response to human GH-releasing factor -40 (hGRF-40) are significantly related to the sex and gonadal hormone environment of the donor animals. The present studies were designed to determine whether the beta-adrenergic stimulation of GH release is sex related and to compare the response to that observed after hGRF-40. Dispersed pituitary cells from male or female rats were exposed to sequential pulses of isoproterenol (ISO) and epinephrine (EPI), followed by a single pulse of 10 nM hGRF-40. In a second series of experiments, the cells were exposed to sequential pulses of norepinephrine (NE), followed by a single pulse of 10 nM hGRF-40. ISO and EPI stimulated GH secretion at concentrations as low as 10(-8) M, but NE required a concentration of 10(-6) M to cause significant GH release. GH release after ISO, EPI, and NE was concentration dependent, and the order of potency was ISO greater than EPI greater than NE. The amounts of GH secreted by pituitary cells from male rats were significantly greater than those from female rats, and the magnitude of the difference was directly comparable to that observed in response to hGRF-40. These results confirm the beta-adrenergic stimulation of GH release, and the order of potency is consistent with mediation by a beta 2-adrenergic receptor. The significantly greater capacity for pituitary cells from male rats to secrete GH supports the possibility that individual somatotropes in the pituitaries of male rats might have a greater responsiveness and/or sensitivity to beta-adrenergic and hGRF-40 stimulation.

Adrenergic beta-Agonists↗

Alpha and luteinizing hormone beta subunit messenger ribonucleic acids during the rat estrous cycle.

Alpha and LH beta subunit mRNAs were measured in pituitaries of 4-day cycling rats during the estrous cycle. A two-fold increase in alpha mRNA occurred between 0800-2000 h on diestrus, but alpha mRNA concentrations were stable during other days of the cycle. LH beta mRNA concentrations were low during estrus and metestrus (11-16 pg cDNA bound/100 micrograms pituitary DNA), but were elevated (27-30 pg) between 0800-2000 h on diestrus. A second increase in LH beta mRNA was observed on the afternoon of proestrus, prior to the onset of the LH surge with maximum values (45 pg) coincident with peak LH secretion. LH beta mRNA concentrations declined rapidly and had fallen to basal values by midnight on proestrus. These data show that alpha and LH beta mRNAs change in a similar manner during metestrus, diestrus and estrus, suggesting coordinate regulation of alpha and LH beta gene expression at these times. During the LH surge, however, LH beta mRNA alone is increased, suggesting that the LH beta gene can be differentially expressed at times when maximum LH secretion is occurring.

Animals↗

Dual effects of growth hormone (GH)-releasing hormone infusion in normal men: somatotroph desensitization and increase in releasable GH.

Continuous infusion of human GH-releasing hormone (GHRH) stimulates GH secretion in normal subjects, but a single supramaximal iv dose of GHRH thereafter elicits a diminished serum GH response compared to that after a saline infusion; the response to the single dose challenge is inversely related to the dose of GHRH previously infused. To determine if this attenuated GH response is a result of depletion of available GH or desensitization of the somatotroph, a 6-h infusion of saline or GHRH (10 ng/kg . min) was administered to 10 normal men, and an iv bolus dose of either GHRH (3.3 micrograms/kg) or regular insulin (0.15 U/kg) was given after 5.5 h of infusion. On both days of GHRH infusion, there was significant stimulation of GH secretion compared to that after saline infusion. The GH response to the supramaximal dose of GHRH was greater after saline infusion than after GHRH infusion, and the GH response to insulin-induced hypoglycemia was significantly greater after GHRH infusion compared with the responses on the other 3 study days. The greatest GH secretion occurred during GHRH infusion followed by insulin administration; therefore, pituitary reserve was not decreased by prior exposure to GHRH. These studies suggest that somatotrophs become partially refractory to GHRH stimulation over time, but remain responsive to an alternate stimulus of GH secretion. We suggest that the hypoglycemia-induced GH response occurs via a reduction in hypothalamic somatostatin secretion, and the attenuated GH response to the supramaximal GHRH dose after GHRH infusion probably represents either partial desensitization or down-regulation of the GHRH receptor.

Adult↗

Growth hormone (GH) response to GH-releasing hormone in children with subnormal integrated concentrations of GH.

We determined the GH responses to human GH-releasing hormone-40 (GHRH) in poorly growing children who had either normal or deficient GH secretion, as measured by pharmacological stimulation and integrated concentration of GH (IC-GH). Ten patients had both normal pharmacologically stimulated GH and IC-GH (GH-normal), 15 patients had normal pharmacologically stimulated GH but deficient IC-GH [GH neurosecretory dysfunction (GHND)], and the remaining 7 patients had both subnormal stimulated GH and IC-GH [GH deficiency (GHD)]. The mean peak plasma GH response to GHRH was 11.7 +/- 8.5 (+/- SD) ng/ml in GHD patients, significantly lower than the responses of both the GHND (49.2 +/- 39.2 ng/ml; P less than 0.0001) and GH-normal (51.8 +/- 44 ng/ml; P less than 0.0001) groups. The range of peak GH responses to GHRH in GHD patients overlapped the lower end of the range of responses in the GHND and GH-normal patients. Three GH-normal and eight GHND patients had greatly enhanced GH responses to GHRH (greater than 50 ng/ml); no GHD patients had a response over 24.2 ng/ml. There was no difference between the GH responses of male and female patients within groups to GHRH. There was a significant correlation between the log of the peak GH response to GHRH and the log of the maximal GH response to standard pharmacological stimuli (r = 0.51; P less than 0.005). Because of the variability of GH responses to GHRH encountered among the patients, the response to GHRH cannot be used as a test for identifying patients with inadequate spontaneous GH secretion. The IC-GH is the only method that can identify children with GHND.

Adolescent↗

Growth hormone releasing factor and somatomedin C production: extrahypothalamic localization and possible functional significance.

Growth hormone-releasing factor (GRF) is found in the highest concentration (albeit lower compared to other hypothalamic regulatory hormones) in the hypothalamus. There is mounting evidence that GRF-like immunoreactivity is found in other sites in the CNS and in the periphery. The role of GRF, other than to stimulate growth hormone secretion by the somatotroph, is unknown. In addition generation of IGF-1 in response to GRF appears to be dependent on an intact pituitary.

Animals↗

Cushing's syndrome from the therapeutic use of intramuscular dexamethasone acetate.

We present, to our knowledge, the first case of Cushing's syndrome due to large doses of intramuscular dexamethasone acetate. Dexamethasone levels after intramuscular dexamethasone administration were measured in two patients. Serial determination of the dexamethasone levels demonstrated prolonged serum half-lives of seven and 33 days in the two patients, respectively. Furthermore, pharmacologic levels of dexamethasone were present as long as seven months after the initial injections. The present recommendation for the use of intramuscular dexamethasone acetate is as frequent as every one to three weeks. However, our patients demonstrate that supraphysiologic levels of dexamethasone may still be present well beyond the three-week period.

Addison Disease↗

Morphologic effects of bromocriptine on spontaneously occurring pituitary prolactin-cell hyperplasia in old Long-Evans rats.

The effect of bromocriptine (BEC), a dopaminergic agonist, on nontumorous pituitary prolactin (PRL) cells of aging female Long-Evans rats, was studied histologically, immunocytologically, electron-microscopically, and morphometrically. Rats were arbitrarily divided into two control groups, one with normal (less than 20 ng/ml) and one with elevated serum PRL concentrations, and into four BEC-treated groups, all of which had increased serum PRL levels prior to commencement of BEC administration. In hyperprolactinemic control rats, compared with normoprolactinemic control rats, pituitary weight and percentage of pituitary PRL cells were increased. The morphologic features of PRL cells in these two groups did not differ markedly, which suggested that hyperprolactinemia was due to increased PRL-cell number and not increased PRL-cell function. Compared with age-matched hyperprolactinemic control rats, hyperprolactinemic rats treated with BEC showed a reversible decrease in serum PRL levels, pituitary weight as well as percentage of pituitary PRL cells, and by ultrastructural morphometry an increase in the volume density of lysosomes. BEC caused no striking changes in nuclear and cytoplasmic areas, volume densities of RER, Golgi regions, mitochondria, lipid droplets, and size and volume densities of forming and storage granules. Since spontaneously hyperplastic PRL cells show less conspicuous morphologic changes following BEC treatment than PRL cells rendered hyperplastic by estrogen administration or pituitary transplantation, it is suggested that PRL cells with no increased endocrine function respond less markedly to dopaminergic suppression than endocrinologically hyperactive PRL cells. It can be concluded that BEC suppresses spontaneous proliferation of PRL cells which occurs with aging.

Aging↗