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Biomedical subjects

W Vale

Publications and source records attributed to W Vale.

At least 289 records · Page 16Linked to original sources

Evidence for a limited growth hormone (GH)-releasing hormone (GHRH)-releasable quantity of GH: effects of 6-hour infusions of GHRH on GH secretion in normal man.

Human GH-releasing hormone [hGHRH-40 (GHRH)] stimulates GH release in a dose-dependent fashion when administered as single iv bolus doses or as continuous 90-min infusions. However, there has been variability in the GH responses, and it appears that there are waxing and waning effects of GHRH. To address whether these are a result of the dose of GHRH, time, or intermittent changes in sensitivity of the somatotrophs, we administered 6-h infusions of vehicle and different doses of GHRH to six normal men. In addition, an iv bolus injection of GHRH was given after 5.5 h of infusion to evaluate residual GH secretory capacity. The subjects were given infusions of either vehicle or GHRH (1, 3.3, and 10 ng/kg X min), followed by an iv bolus injection of 3.3 micrograms/kg on four separate occasions. GHRH infusions stimulated GH secretion compared to basal secretion. The changes from basal GH secretion (mean +/- SEM) were 2.0 +/- 1.6, 4.6 +/- 1.5, 12.7 +/- 5.1, and 8.2 +/- 1.8 ng/ml X h during the vehicle and GHRH (1, 3.3, and 10 ng/kg X min) infusions, respectively. The changes from basal GH secretion for 2 h after the iv bolus dose (after 5.5 h of infusion) were 33.3 +/- 8.7, 22.4 +/- 3.8, 14.0 +/- 3.6, and 10.5 +/- 2.0 ng/ml X h on the vehicle and GHRH (1, 3.3, and 10 ng/kg X min) infusion days, respectively. The magnitude of the GH response was inversely related to the GHRH infusion dose. The total amount of GH released during the 7.5-h study periods was not different among the vehicle and 3 GHRH infusion days. Thus, it appears that a finite amount of GH is released by GHRH. There was variability in the degree of responsiveness to the continuous infusions of GHRH. Surges of GH release occurred during the GHRH infusions, which may be attributed to intermittent secretion of a GH inhibitor, such a somatostatin.

Adult↗

Immunohistological localization of growth hormone-releasing hormone in human tumors.

Two forms of GH-releasing factor (GHRH), which play a role in the regulation of GH secretion, have been isolated from pancreatic endocrine tumors in two patients with acromegaly. We examined formalin-fixed, paraffin-embedded human tissues from autopsies and surgical specimens for the presence of human pancreatic GHRH-40 using the avidin-biotin-peroxidase complex technique to assess the prevalence of tumors containing GHRH, to define their primary sites and cellular derivations, and to correlate clinical and pathological features. Immunopositivity was demonstrated in 4 of 24 pancreatic endocrine tumors, 1 of 5 bronchial and 2 of 15 gut carcinoids, 1 of 2 thymic carcinoids, 2 of 20 medullary carcinomas of the thyroid, 1 of 12 pheochromocytomas, and 5 of 20 small cell carcinomas of the lung. Of the GHRH-containing tumors, only 2 of the pancreatic endocrine tumors and the bronchial carcinoid were associated with acromegaly. No GHRH was found in 35 tumors derived from cells that are not known to produce peptide hormones. Immunoreactivity was not detected in the nontumorous tissues from which GHRH-containing tumors were derived. It can be concluded that GHRH may be found in a variety of tumors arising from and composed of peptide hormone-producing endocrine cells. The significance of immunoreactive GHRH detected in tumors unassociated with clinical evidence of acromegaly remains to be established.

Acromegaly↗

Treatment of true precocious puberty with a potent luteinizing hormone-releasing factor agonist: effect on growth, sexual maturation, pelvic sonography, and the hypothalamic-pituitary-gonadal axis.

We used the LHRH agonist D-Trp6-Pro6-N-ethylamide LHRH (LHRH-A) to treat 19 children (12 girls and 7 boys) with true precocious puberty. Fourteen patients had idiopathic true precocious puberty, 4 had a hamartoma of the tuber cinereum, and 1 had a hypothalamic astrocytoma. Basal gonadotropin secretion and responses to native LHRH decreased within 1 week of initiation LHRH-A therapy, and sex steroid secretion decreased within 2 weeks to or within the prepubertal range. Ultrasonographic evaluation of the uterus indicated a postmenarchal size and shape in all 11 girls studied before treatment, which reverted to prepubertal size and configuration in 5 girls during LHRH-A therapy. The enlarged ovaries decreased in size and the multiple ovarian follicular cysts regressed. Sexual characteristics ceased advancing or reverted toward the prepubertal state in all patients receiving therapy for 6-36 months. All 5 girls with menarche before therapy had no further menses. Three girls had hot flashes after LHRH-A-induced reduction of the plasma estradiol concentration. Height velocity, SDs above the mean height velocity for age, and SDs above the mean height for age decreased during LHRH-A therapy; the velocity of skeletal maturation decreased after 12 months of LHRH-A therapy and was sustained during continued therapy over 18-36 months. In 4 patients, a subnormal growth rate (less than 4.5 cm/yr) occurred during LHRH-A therapy. Six patients had cutaneous reactions of LHRH-A, but no demonstrable circulating antibodies to LHRH-A. In 2 patients in whom LHRH-A therapy was discontinued because of skin reactions, precocious sexual maturation resumed at the previous rate for the ensuing 6-12 months; subsequently, they were desensitized to LHRH-A, and during a second course of therapy, their secondary sexual development and sex steroid levels again quickly decreased. LHRH-A proved an effective and safe treatment for true precocious puberty in boys as well as girls with central precocious puberty whether of the idiopathic type or secondary to a hamartoma of the tuber cinereum or a hypothalamic neoplasm.

Age Determination by Skeleton↗

Effects of intravenous, subcutaneous, and intranasal administration of growth hormone (GH)-releasing hormone-40 on serum GH concentrations in normal men.

In addition to stimulating GH release in normal subjects, GH-releasing hormone-40 (GHRH-40) stimulates GH secretion in some adults and children with GH deficiency. Recognizing that GHRH-40 may have potential as a therapeutic agent for the treatment of GH deficiency, we examined the effects of iv, sc, and intranasal (in) GHRH-40 administration on GH secretion and measured the plasma levels of immunoreactive GHRH achieved after the administration of the peptide via these different routes. Normal men were given vehicle or GHRH-40 iv (0.003, 0.01, 0.03, and 0.1 micrograms/kg; n = 10), sc (1, 3.3, and 10 micrograms/kg; n = 8), or in (3, 10, 30, and 100 micrograms/kg; n = 5). No subject had any symptoms after administration of vehicle or GHRH-40. During the 2-h period after iv administration of GHRH-40, the maximal increment in serum GH levels above basal (nanograms per ml; mean +/- SD) after the 0.1 micrograms/kg dose was 15.5 +/- 10.4 compared to 2.4 +/- 4.1 after vehicle (P = 0.0017). During the 3-h period after sc administration, when compared to the maximal increment in serum GH above basal after vehicle alone (10.2 +/- 12.9), the maximal increments above basal in serum GH were increased after both the 3.3 micrograms/kg (26.2 +/- 23.1; P = 0.022) and 10 micrograms/kg (63.6 +/- 53.5; P = 0.0003) doses. During the 3-h period after in administration, when compared to the maximal increment in serum GH above basal after vehicle alone (2.8 +/- 6.4), the maximal increments above basal in GH were higher after both the 30 micrograms/kg (18.5 +/- 10.4; P = 0.0053) and 100 micrograms/kg (21.7 +/- 8.1; P = 0.0028) doses. In addition, significant dose-response relationships were documented between the maximal increments above basal in serum GH and GHRH-40 administered by all routes. The mean (+/- SEM) peak plasma level of IR-GHRH (nanograms per ml) achieved after administration of 10 micrograms/kg GHRH-40, iv, as reported previously (66.6 +/- 17.6), was approximately 60- and 500-fold higher than the mean levels in the current study after administration of the same dose sc (1.11 +/- 0.39) or in (0.14 +/- 0.02), respectively. In summary, although GHRH-40 stimulates GH release when administered iv, sc, or in, significantly higher doses were required using the sc and in routes to achieve responses comparable to those obtained with iv administration.

Administration, Intranasal↗

Neurobiological actions of cysteamine.

Somatostatin (SS)-related peptides act within discrete brain regions to inhibit adrenal epinephrine (E) secretion, to prevent hypothermia, and to produce hyperthermia. Depletion of brain concentrations of these SS-related peptides using cysteamine (CSH) or central administration of an SS receptor antagonist increases adrenal E secretion and impairs thermoregulation. These actions of CSH and the SS receptor antagonist are reversed by administration of SS into the central nervous system. These results support the hypothesis that endogenous brain SS-related peptides are involved in the regulation of adrenal E secretion and thermoregulation.

Adrenal Cortex↗

Effects of corticotropin-releasing factor, neurohypophyseal peptides, and catecholamines on pituitary function.

In freely moving rats, ovine corticotropin-releasing factor (CRF) and rat CRF, which are equipotent in stimulating adrenocorticotropin (ACTH) release, can exert this effect after either i.v. or intracerebroventricular (i.c.v.) administration. Oxytocin and epinephrine also elevate plasma ACTH levels, an effect that is abolished by immunoneutralization of endogenous CRF. Inasmuch as oxytocin and epinephrine show additivity with CRF, these results suggest that these two secretagogues stimulate ACTH secretion in vivo by interacting with endogenous CRF. Apart from its effect on ACTH release, CRF injected i.c.v. markedly inhibits luteinizing hormone (LH), but not follicle-stimulating hormone, secretion in rats in the absence of circulating levels of steroids. A similar effect is observed after i.c.v. administration of sauvagine, a peptide analogous to CRF, whereas arginine vasopressin exhibits lower potency and shorter duration of action than CRF. Because these peptides do not modify LH release by cultured pituitary cells, they probably lower plasma LH levels through centrally mediated mechanisms. These results indicate that CRF can exert a broad spectrum of action to regulate pituitary function directly or indirectly.

Adrenocorticotropic Hormone↗

Distribution of corticotropin-releasing factor in rat brain.

Corticotropin-releasing factor (CRF) has been measured in 70 brain nuclei and in the posterior pituitary of the rat by radioimmunoassay (RIA) developed against synthetic rat CRF. CRF-like immunoreactivity was detected in 32 brain areas in concentrations higher than 0.3 ng/mg protein. Most of the CRF in the brain was in the hypothalamus, where the highest level was found in the median eminence. Several limbic nuclei, such as the lateral septal nucleus, central amygdaloid nucleus, periventricular thalamic nuclei, and bed nucleus of the stria terminalis, contained CRF in moderate to low concentrations. CRF was detected in a number of lower brain-stem nuclei, including the ventral tegmental area, central gray matter, dorsal raphe, parabrachial nuclei, and locus ceruleus. Surprisingly, the highest extrahypothalamic CRF level was found in the inferior olive. Our RIA data are, in general, fairly consistent with immunohistochemical findings.

Animals↗

Effect of a luteinizing hormone releasing hormone agonist given during combination chemotherapy on posttherapy fertility in male patients with lymphoma: preliminary observations.

Six men undergoing potentially curative chemotherapy for advanced lymphomas received daily injections (50 micrograms) of an analogue of luteinizing hormone releasing hormone (LH-RHa) in an attempt to protect posttreatment gonadal function. The median duration of combined LH-RHa-chemotherapy administration was 25 weeks (range, 14 to 31 weeks). During the simultaneous administration of LH-RHa and chemotherapy, plasma testosterone levels decreased to subnormal levels, while both follicle-stimulating hormone (FSH) and luteinizing hormone levels declined to the lower limit of normal. All subjects became oligospermic or azoospermic within eight weeks of starting treatment. Following discontinuation of chemotherapy and LH-RHa, both plasma testosterone and LH promptly increased and stabilized within the normal range. FSH progressively increased to a level well above the normal range. Only one patient has recovered evidence of active spermatogenesis at 84 weeks postcessation of chemotherapy. No untoward side effects due to LH-RHa were experienced. Although LH-RHa can be administered safely during combination chemotherapy, no improvement in posttreatment fertility has yet been demonstrated.

Adolescent↗

Elevated concentrations of CSF corticotropin-releasing factor-like immunoreactivity in depressed patients.

The possibility that hypersecretion of corticotropin-releasing factor (CRF) contributes to the hyperactivity of the hypothalamo-pituitary-adrenal axis observed in patients with major depression was investigated by measuring the concentration of this peptide in cerebrospinal fluid of normal healthy volunteers and in drug-free patients with DSM-III diagnoses of major depression, schizophrenia, or dementia. When compared to the controls and the other diagnostic groups, the patients with major depression showed significantly increased cerebrospinal fluid concentrations of CRF-like immunoreactivity; in 11 of the 23 depressed patients this immunoreactivity was greater than the highest value in the normal controls. These findings are concordant with the hypothesis that CRF hypersecretion is, at least in part, responsible for the hyperactivity of the hypothalamo-pituitary-adrenal axis characteristic of major depression.

Adult↗

Impaired growth hormone responses to growth hormone-releasing factor in obesity. A pituitary defect reversed with weight reduction.

To investigate whether the impaired growth hormone secretion associated with obesity is a result of a hypothalamic or a pituitary disorder and whether it is a cause or a consequence of obesity, we studied plasma growth hormone responses to growth hormone-releasing factor in morbidly obese patients before gastrointestinal surgical therapy, in formerly obese subjects who had lost considerable weight postoperatively, and in non-obese controls. Growth hormone secretion was also assessed in response to insulin-induced hypoglycemia (in seven patients preoperatively and four postoperatively). In patients studied preoperatively, growth hormone responses to growth hormone-releasing factor were markedly impaired (P less than 0.001 as compared with controls), whereas in patients studied postoperatively they were partially restored to normal (P less than 0.05 as compared with those studied preoperatively). Growth hormone responses to insulin-induced hypoglycemia were similarly diminished in obese patients studied before operation (P less than 0.02). The growth hormone response to growth hormone-releasing factor was inversely correlated with the percentage of ideal body weight (P less than 0.01) and directly correlated with the growth hormone response to insulin (P less than 0.01). The impaired responsiveness to growth hormone-releasing factor suggests that the diminished response to insulin hypoglycemia is mediated by an impaired pituitary response to endogenous growth hormone-releasing factor. The reversibility of the defect after weight reduction suggests that it is a consequence rather than a cause of obesity.

Adolescent↗

Effect of a potent gonadotropin releasing hormone antagonist on pulsatile testosterone and gonadotropin secretion in the male nonhuman primate.

A potent gonadotropin releasing hormone (GnRH) antagonist [Ac-delta 3Pro1, pFDPhe2, DTrp3,6]-GnRH was given to adult male monkeys to determine the acute effect on pulsatile testosterone and gonadotropin secretion. Blood was drawn at 30 min intervals over 54 h without anesthesia using a mobile vest and tether assembly to support an indwelling catheter. After a 6 h control period, 0.1, 1.0, 2.0, 4.0 mg GnRH antagonist/kg bw in 1 ml corn oil sc, was given to intact adult male monkeys. The highest dose of GnRH antagonist decreased circulating testosterone within 6 h and for approximately 24-36 h duration. These data demonstrate that this GnRH antagonist can reduce serum testosterone both acutely and for intervals greater than 24 h and that the effective dose in intact animals is several-fold (up to 20 times) greater than in castrate animals.

Animals↗

Growth hormone-releasing factor stimulates pancreatic enzyme secretion.

Growth hormone-releasing factors (GRF's) from two human pancreatic tumors (hpGRF's) that caused acromegaly and from the rat hypothalamus ( rhGRF ) were recently isolated and characterized. Although these peptides are potent growth hormone secretagogues, they have not until now been described to have actions outside the pituitary. These GRF's were shown to stimulate digestive enzyme secretion from an exocrine pancreatic preparation in vitro, rhGRF being more than 100 times as potent as hpGRF. Adenosine 3',5'-monophosphate mediates this action of the GRF's.

Amylases↗

Ectopic secretion of corticotropin-releasing factor as a cause of Cushing's syndrome. A clinical, morphologic, and biochemical study.

Corticotropin-releasing factor, a hypophyseo-tropic hormone that stimulates adrenocorticotropic hormone (ACTH) secretion, has recently been isolated, characterized, and synthesized in the sheep and rat. We report on a patient with metastatic carcinoma of the prostate presenting with anterior and posterior pituitary hormone deficiency together with ACTH-dependent Cushing's syndrome. At postmortem examination, large areas of the median eminence and pituitary stalk were replaced by tumor, but the corticotrophs were markedly hyperplastic. Immunostaining of tumor cells was positive for corticotropin-releasing factor and was negative for ACTH and a wide range of other hormones. Radioimmunoassay and bioassays showed that tumor extracts and further purified fractions were active in corticotropin-releasing factor, and the tumor material coeluted with corticotropin-releasing factor on high-pressure liquid chromatography. These studies demonstrate that ectopic secretion of corticotropin-releasing factor is a cause of Cushing's syndrome in human beings. The features of this syndrome include hypercortisolism, pituitary corticotroph hyperplasia, elevation of circulating ACTH levels, and failure to suppress the pituitary-adrenal axis with exogenous glucocorticoids.

ACTH Syndrome, Ectopic↗

Oxytocin potentiates the ACTH-releasing activity of CRF(41) but not vasopressin.

The effects of CRF(41), oxytocin (OT), and arginine vasopressin (AVP) on ACTH secretion were studied alone and in combination in an in vitro system of superfused rat hemipituitaries. CRF(41) (10(-9)M) and AVP (10(-8)M) alone produced a significant increase in ACTH secretion while OT (10(-8)M) alone had no effect. However the same concentration of OT markedly potentiated the ACTH response to CRF(41) while having no effect on the ACTH response to AVP. The data support a physiologic role for OT in the regulation of ACTH secretion.

Adrenocorticotropic Hormone↗

Synthetic competitive antagonists of corticotropin-releasing factor: effect on ACTH secretion in the rat.

Polypeptide analogs of the known members of the corticotropin-releasing factor (CRF) family were synthesized and tested in vitro and in vivo for enhanced potency or competitive antagonism. Predictive methods and physicochemical measurements had suggested an internal secondary alpha-helical conformation spanning about 25 residues for at least three members of the CRF family. Maximization of alpha-helix-forming potential by amino acid substitutions from the native known sequences (rat/human and ovine CRF, sauvagine, and carp and sucker urotensin 1) led to the synthesis of an analog that was found to be more than twice as potent as either of the parent peptides in vitro. In contrast, certain amino-terminally shortened fragments, such as alpha-helical CRF or ovine CRF residues 8 to 41, 9 to 41, and 10 to 41, were found to be competitive inhibitors in vitro. Selected antagonists were examined and also found to be active in vivo.

Adrenocorticotropic Hormone↗

Synthetic human pancreatic growth hormone releasing factor (GRF) stimulates growth hormone secretion in the domestic fowl (Gallus domesticus).

Synthetic human pancreatic Growth Hormone-Releasing Factor (hpGRF) elevated the plasma concentration of growth hormone (GH) in young and adult domestic fowl. This in vivo effect of hpGRF appeared to be largely similar for both the 32 amino-acid (hpGRF 1-32) or 40 amino-acid (hpGRF 1-40) polypeptide, although the effect of hpGRF 1-32 was more prolonged than that of hpGRF 1-40 in adult domestic fowl. The increase in plasma GH concentrations following hpGRF administration (10 micrograms/kg) was somewhat greater in young than adult chickens (the increase in plasma concentration of GH being 230 ng/ml at 1 week old, 282 ng/ml at 6 week old, 241 ng/ml at 10 weeks and 150 ng/ml in adults). In the adult domestic fowl hpGRF stimulated a greater increase in the plasma concentration of GH than did thyrotropin-releasing hormone (TRH). However in the young chicks TRH was more active. The in vitro release of GH from dispersed chicken pituitary cells was elevated by hpGRF (1-32) and hpGRF (1-40).

Animals↗

Species differences in the sensitivity to the antitesticular effects of [Ac-D-NAL(2)1, 4FD-Phe2, D-Trp3,D-Arg6]-LHRH, a potent LHRH antagonist.

The antigonadal effects of [Ac-D-NAL(2)1, 4FD-Phe2, D-TRP3, D-Arg6]-LHRH (LHRH-A), a potent antagonist of LHRH, were investigated in rats and rabbits. Rats and rabbits were given LHRH-A (1250 micrograms/kg) daily for 15 days. Some animals were killed on day 16 (24 h after the last treatment) while others were mated. In the male rats serum LH and testosterone levels as well as the weights of sexual organs were significantly reduced. Mating behavior and fertility that were suppressed by the end of treatment returned to normal by 7 weeks after last treatment. In contrast to rats, the testicular function and fertility of rabbits appeared unaffected by LHRH-A treatment. The difference in the response between rats and rabbits led us to compare the response of rats and mice. Male rats and mice were given LHRH-A (1450 micrograms/kg) daily for 5 days and killed on day 6. In rats LHRH-A caused a 93% decrease in serum T and 88% decrease in in vitro testicular T production. In mice, however, the Leydig cell function remained unaffected when examined 24 h after the last dose of LHRH-A. To explain the differences between the effects of LHRH-A on rats, rabbits and mice, the acute effect of this peptide on serum T levels was investigated in these species. Administration of a single dose of LHRH-A (1250 micrograms/kg) led to a rapid decrease in serum T that was sustained for 24 h in rats. In rabbits and mice, however, the same dose of LHRH-A caused only a transient decrease in serum T. Male rhesus monkeys treated with LHRH-A (1000 micrograms/kg) also showed a transient decrease in serum T concentrations. It is concluded that there are considerable species differences in the sensitivity to the antigonadal effects of LHRH-A.

Animals↗

Effects of alpha-flupenthixol and naloxone on CRF-induced locomotor activation.

Corticotropin-releasing factor injected intracerebroventricularly in a dose of 1 microgram produced a prolonged locomotor activation (3 h) in rats previously habituated to the test cage environment. This activation was reversed by alpha-flupenthixol (intraperitoneally), a dopamine receptor antagonist, only at cataleptic doses and not at all by naloxone (subcutaneously) in doses of 0.02-5.0 mg/kg. The effective dose 50% (ED50) for the alpha-flupenthixol reversal of locomotor activity induced by corticotropin-releasing factor was 0.13 mg/kg; similar to the 0.14 mg/kg ED50 needed to reverse the locomotor activation produced by caffeine (10 mg/kg s.c.). The ED50 necessary to reverse amphetamine (0.75 mg/kg s.c.) locomotion with this drug was 0.07 mg/kg. The results suggest that the corticotropin-releasing factor acts independently of direct activation of the dopamine or opioid peptide systems.

Animals↗