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Biomedical subjects

C Dieguez

Publications and source records attributed to C Dieguez.

At least 163 records · Page 9Linked to original sources

Evidence for a direct pituitary inhibition by free fatty acids of in vivo growth hormone responses to growth hormone-releasing hormone in the rat.

The aim of this study was to determinate whether elevations in circulating free fatty acids (FFA) inhibit in vivo growth hormone (GH) responses to GH-releasing hormone (GHRH) by increasing hypothalamic somatostatin release or by acting directly on the pituitary. Thus, we have studied the effect of an Intralipid-heparin infusion on in vivo GH responses to GHRH in normal rats, normal rats passively immunized with antisomatostatin antiserum, rats with medial hypothalamic ablation, and hypophysectomized rats bearing two hypophyses under the renal capsule. Administration of 1 ml of Intralipid (500 microliters at -30 min and 500 microliters at -25 min) plus heparin (50 IU at -15 min) induced a marked decrease in GH responses to both 1 and 5 micrograms/kg of GHRH (p less than 0.01 at 5, 10 and 15 min for GHRH alone vs. GHRH plus Intralipid). A similar degree of inhibition was obtained after the administration of antisomatostatin antiserum (750 microliters i.v. at -60 min) previous to a challenge with 5 micrograms/kg of GHRH plus 1 ml of Intralipid (p less than 0.05 at 5 and 15 min, and p less than 0.01 at 10 min for GHRH plus normal rabbit serum vs. GHRH plus Intralipid plus antisomatostatin antiserum). Furthermore, administration of 1 ml of Intralipid also markedly reduced GH responses to GHRH in rats with medial hypothalamic ablation (p less than 0.01 at 5, 10, 15 and 30 min for GHRH alone vs. GHRH plus Intralipid) as well as in hypophysectomized rats bearing two hypophyses under the renal capsule (p less than 0.01 at 5, 10 and 15 min for GHRH alone vs. GHRH plus Intralipid).(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Study of insulin-like growth factor I in human obesity.

In obesity there is a decrease in basal and stimulated GH secretion. IGF-I, which has negative feedback effects on GH secretion, could be the initial mediator of such alterations. We studied IGF-I levels in obese subjects and their relationship to the obesity level and GH secretion. We determined plasma IGF-I, basal and stimulated GH in 30 normal and 30 obese women and related these variables to obesity indices (body mass index, BMI, and % overweight). Baseline plasma GH values were 1.2 +/- 0.3 and 2.3 +/- 0.6 micrograms/l in obese subjects and controls, respectively (NS). Mean peak GH secretion after stimuli were 11.2 +/- 1.4 and 34.4 +/- 5.6 micrograms/l in obese subjects and controls, respectively (p less than 0.001). Plasma IGF-I were 1.0 +/- 0.1 U/ml and 0.7 +/- 0.1 U/l in obese subjects and controls, respectively (NS). There was a significant negative correlation between plasma IGF-I and age (r = -0.55, p less than 0.001) and a significant negative correlation between mean peak GH secretion and weight (r = -0.60, p less than 0.001), BMI (r = -0.64, p less than 0.001) and percentage of ideal body weight (r = -0.67, p less than 0.001). We did not find any correlation between IGF-I and indices of overweight. These data suggest that the reduced GH secretion found in obesity is not related to a negative feedback inhibition by elevated levels of IGF-I and that adiposity is not associated with a decline in IGF-I levels. We confirm the existence of a negative correlation between GH secretion and obesity indices.

Adolescent↗

A clinical update on hypothalamic-pituitary control.

There is at present an accumulation of data which indicate the importance of stimulatory and inhibitory growth factors in the paracrine, and perhaps autocrine, regulation of anterior pituitary cell growth and function. There may well be several more specific pituitary growth factors which will be identified in the near future. Preliminary data are also emerging concerning the pattern of oncogene expression in human pituitary tumours. It is now necessary to relate growth factor production, oncogene expression and hypothalamic regulation to specific anterior pituitary cell populations and human pituitary adenomas. In the midst of these studies it should not be forgotten that coordinated vascular and supporting tissue growth is also crucial to the normal development and maintenance of anterior pituitary structure and function.

Adrenocorticotropic Hormone↗

Role of cholinergic muscarinic pathways on the free fatty acid inhibition of GH responses to GHRH in normal men.

In order to explore the mechanisms by which free fatty acids (FFA) inhibit GH secretion, we studied the effect of the acetylcholinesterase inhibitor pyridostigmine (120 mg p.o.) on the FFA blockade of GH responses to the administration of GHRH (100 micrograms i.v.) in seven normal subjects. GHRH-induced GH secretion was significantly reduced following elevation of circulating FFA levels by lipid-heparin infusion and significantly potentiated by previous pyridostigmine treatment. Peak GH levels following combined administration of pyridostigmine plus lipid-heparin plus GHRH were significantly higher (P less than 0.01) than after GHRH alone and significantly lower than after pyridostigmine plus GHRH (P less than 0.01). In conclusion, central cholinergic activation by pyridostigmine, with the presumed reduction in somatostatin discharge, reversed the blocking effect of FFA on GHRH-stimulated GH release. Conversely, FFA were able to reduce even a maximal GH stimulation by pyridostigmine plus GHRH.

Adult↗

Effect of enhancement of endogenous cholinergic tone with pyridostigmine on growth hormone (GH) responses to GH-releasing hormone in patients with Cushing's syndrome.

Growth hormone (GH) secretion in patients with Cushing's syndrome is diminished to all the stimuli tested so far but the precise mechanisms through which this occurs are unknown. In order to investigate whether increased somatostatinergic tone might be responsible for this alteration, we studied the effect of pyridostigmine (120 mg p.o. at -60 min), which activates cholinergic synapses and thus suppresses hypothalamic somatostatin release on GH responses to GHRH (100 micrograms, i.v. at 0 min), in six patients with Cushing's syndrome. We found that while pyridostigmine markedly potentiated GH responses to GHRH, in all the normal subjects tested (n = 12), neither GHRH alone nor GHRH plus pyridostigmine elicited any increase in GH secretion in any of the patients with Cushing's syndrome. This suggests that chronic glucocorticoid excess induces marked alterations in the hypothalamic control of GH secretion.

Adult↗

Effect of oral glucose on the late growth hormone rise and growth hormone responses to GHRH in normal subjects.

A late rise in serum GH occurs 3-5 h following oral glucose in man. In order to investigate the mechanisms through which this occurs we have studied the late GH rise after oral glucose during administration of a supramaximal dose of GHRH. In eight normal subjects, oral glucose (100 g) greatly enhanced the GH responses to a supramaximal dose of GHRH (50 micrograms bolus, followed immediately by 100 micrograms/h infusion for 3 h) given 3.5 h after the glucose. GH peak (mean +/- SEM) elicited by GHRH (bolus + infusion) rose from 55.2 +/- 20.4 to 133.4 +/- 29.6 mU/l (P less than 0.02) after glucose pretreatment. In conclusion, it is likely that the late rise in GH secretion induced by oral glucose occurs via a non-GHRH-dependent mechanism. These data are consistent with the hypothesis that the delayed GH response to glucose is a consequence of reduced release of somatostatin from the hypothalamus.

Administration, Oral↗

Dual and selective actions of glucocorticoids upon basal and stimulated growth hormone release in man.

In humans, corticoids suppress growth and growth hormone (GH) secretion elicited by a variety of stimuli, while in the rat they potentiate both in vivo and in vitro GH release. To further study this problem, growth-hormone-releasing hormone (GHRH) tests were performed in 6 nonobese Cushing's syndrome patients and 6 controls. The normal GHRH-induced GH secretion was completely abolished in the Cushing's syndrome group. To study the action of shorter corticoid exposures, 34 volunteers were subjected to four tests each: placebo treatment (control); dexamethasone (Dex) administration 4 mg i.v., 3 h before; Dex 8 mg p.o., 12 h before, and Dex 22 mg p.o. over the 2 days before the pituitary challenge that was always administered at 0 min (12.00 h). In the first test (n = 9), GHRH (1 microgram/kg i.v.) induced a GH peak of 14.5 +/- 3.8 ng/ml (control) that was potentiated by Dex 4 mg i.v. administered 3 h before (26.4 +/- 6.8 ng/ml). On the contrary, longer Dex treatments suppress GHRH-induced GH values (6.0 +/- 1.1 ng/ml after Dex 8 mg and 1.8 +/- 0.3 ng/ml after Dex 22 mg). Clonidine administration 300 micrograms p.o. (n = 7) increased GH secretion with an area under the secretory curve (AUC) of 1,274 +/- 236 that was potentiated by Dex 4 mg i.v. given 3 h before clonidine (2,380 +/- 489) and reduced by Dex 8 mg, the reduction being significant only after 22 mg Dex (595 +/- 47).(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Estrogen-dependent effects of bombesin on in vivo growth hormone secretion in the rat.

Previous studies carried out in normal male or ovariectomized female rats have shown that bombesin plays an inhibitory role on growth hormone (GH) secretion. Since estrogens play an important role in the neuroregulation of GH secretion, we have studied the effects of bombesin on basal GH secretion and GH responses to GH-releasing hormone (GHRH) in untreated and estrogen-treated male rats (200 micrograms estradiol valerate s.c., 1 single dose 3 days before the experiment or every 3 days for 2 weeks). All the experiments were carried out in rats anesthetized with pentobarbital. GH responses to GHRH (1 microgram/kg) were inhibited by bombesin (100 micrograms/kg) in untreated rats, but were markedly increased in rats treated with estrogens either 3 days before or for the previous 2 weeks. Similarly, bombesin administration (25 or 100 micrograms/kg) in estrogen-treated rats induced a clear-cut, dose-related increase in basal GH levels. This stimulatory effect of bombesin was not affected by passive immunization with antisomatostatin antiserum (750 microliters i.v., 60 min before) and only partially blocked by anti-rGHRH antiserum (750 microliters i.v., 1 h before). In conclusion, our data show that bombesin exerts an inhibitory effect in normal male rats but a stimulatory one in estrogenized rats. This latter effect is independent of somatostatin and only partially blocked by anti-rGHRH serum.

Animals↗

Acute administration of corticoids: a new and peculiar stimulus of growth hormone secretion in man.

It is widely accepted that chronic administration of corticoids in man inhibits the GH response to all of the stimuli tested so far. To study the action of corticoids administered acutely, several dexamethasone challenge tests were performed, after which GH levels were measured for 7 h. In eight volunteers, administration of 4 mg dexamethasone (Dex), iv, induced a clear-cut GH release compared with saline administration. The secretion followed an unusual pattern; basal GH levels (1.5 +/- 0.1 micrograms/L) started rising 2 h after Dex injection, reaching a peak of 17.5 +/- 4.4 micrograms/L after 3 or 3.5 h. Peak levels were maintained until 5 h post-Dex and decreased thereafter. Similar data were obtained when Dex was administered to five volunteers at the dose of 8 mg, orally, with a 30-min delay of the GH peak (19.6 +/- 7.9 micrograms/L). To study whether there was a cholinergic input responsible for the Dex action, another group of eight volunteers underwent three Dex tests (4 mg, iv) on three occasions, followed 90 min later by the administration of placebo (control), atropine (0.5 mg, iv), or pyridostigmine (120 mg, orally). The Dex-induced GH peak (20.8 +/- 5.2 micrograms/L) was not significantly increased by pyridostigmine (cholinergic agonist) treatment (24.2 +/- 4.0 micrograms/L). The blockade of muscarinic receptors by atropine induced a delay in the Dex-induced secretory peak, which appeared at 5 h. However, the Dex-atropine GH peak (14.9 +/- 4.1 micrograms/L) was not different from the Dex-placebo one. In conclusion, Dex alone is able to induce a clear-cut GH secretion in man. The stimulus followed a peculiar time pattern, with peaks levels attained 3 h after either iv or oral administration.

Administration, Oral↗

Effect of enhancement of endogenous cholinergic tone with pyridostigmine on the dose-response relationships of growth hormone (GH)-releasing hormone-induced GH secretion in normal subjects.

It is well known that GH responses to GH-releasing hormone (GHRH) show marked interindividual variations in normal subjects, which have been attributed to a variable somatostatinergic tone. Recently, it has been shown that enhancement of cholinergic tone with the acetylcholinesterase inhibitor pyridostigmine (PD), which presumably acts by inhibiting somatostatin release, stimulates basal GH secretion and GH responses to a maximal dose of GHRH. In this study we have investigated the effects of PD on the dose-response relationships of GHRH-induced GH secretion in normal subjects. Our data showed that PD (120 mg, orally, at-60 min) induced a clear-cut increase in basal GH levels, significantly different from that after saline treatment, at 15, 30, 45, 60, 90, and 120 min. Moreover, PD administration markedly potentiated GH responses to GHRH at doses of 500, 100, 25, 10, and 3 micrograms/subject, as assessed by either area under the curve or maximal peak GH levels. In fact, GH responses to pyridostigmine plus 3 micrograms GHRH were similar to those to the administration of 500 and 100 micrograms GHRH alone. Our findings of marked increases in GH response to GHRH after pyridostigmine administration show that with enhancement of cholinergic tone, the dose of GHRH needed to induce a similar increase in GH is reduced 30 times.

Adult↗

Effect of central cholinergic neurotransmission enhancement by pyridostigmine on the growth hormone secretion elicited by clonidine, arginine, or hypoglycemia in normal and obese subjects.

Obesity is associated with an impairment of the GH secretion elicited by all stimuli known to date, but the basic mechanism of this alteration is unknown. To determine whether obesity is associated with a chronic state of tonic somatostatin secretion, several tests with GH stimuli with or without pyridostigmine were undertaken in both obese subjects and matched controls. Pyridostigmine reduces somatostatin release from the hypothalamus by increasing central cholinergic neurotransmission. The administration of clonidine (300 micrograms, orally) to obese subjects did not modify basal GH values (1.9 +/- 0.7 micrograms/L at 90 min), while in control subjects the clonidine-induced GH peak was 13.1 +/- 1.6 micrograms/L. Pretreatment with pyridostigmine (120 mg, orally) notably increased clonidine-stimulated GH secretion in both the obese (6.9 +/- 1.8 micrograms/L) and control (17.6 +/- 2.7 micrograms/L) subjects. Since clonidine acts by releasing endogenous GHRH, similar studies were undertaken employing arginine, which presumably enhances GH release by reducing somatostatin discharge. Arginine administration in obese subjects induced an increase in GH levels of 5 +/- 2.3 micrograms/L, which was significantly smaller than that in the matched control subjects (13.3 +/- 2.4 micrograms/L). Pretreatment with pyridostigmine increased the arginine action toward a GH peak of 12.2 +/- 2.2 micrograms/L in the obese and 21.6 +/- 2.5 micrograms/L in control subjects. As a third hypothalamic stimulus of GH secretion, trials of insulin-induced hypoglycemia were carried out. Hypoglycemia induced an increase in GH levels in obese subjects of 12.2 +/- 1.8 micrograms/L, which was higher than that produced by any other stimulus, but lower than that in control subjects (28.4 +/- 5.5 micrograms/L). In contrast with the previous two GH stimuli, pretreatment with pyridostigmine did not modify the hypoglycemia-induced GH release in either obese or normal subjects. Our results lend support to the view that clonidine acts through GH-releasing hormone release and arginine by reducing somatostatin discharge from the hypothalamus. In addition, they seem to indicate that hypoglycemia acts by a combination of both mechanisms, mainly through a reduction in somatostatin release. These findings support the idea that obesity is associated with a state of chronic somatostatin hypersecretion as the basis for the derangements in GH secretion.

Adolescent↗

Cholinergic blockade with pirenzepine improves carbohydrate tolerance and abolishes the GH response to meals in normal subjects.

Pretreatment of normal male volunteers with the cholinergic muscarinic receptor-blocking drug pirenzepine (200 mg p.o.) abolishes the delayed GH response to a meal stimulus. In addition, the glycaemic and insulin responses to meals are significantly reduced following this dose of pirenzepine. The data suggest that the effect of pirenzepine on the glucose response to meals is at least partly independent of the inhibition of GH release. Our findings are of relevance to the further investigation of cholinergic muscarinic antagonist in diabetes mellitus.

Adult↗

Activation of cholinergic neurotransmission by pyridostigmine reverses the inhibitory effect of hyperglycemia on growth hormone (GH) releasing hormone-induced GH secretion in man: does acute hyperglycemia act through hypothalamic release of somatostatin?

Acute hyperglycemia blocks growth hormone (GH) secretion in response to provocative stimuli including growth hormone releasing hormone (GHRH) administration. However, the precise mechanism of glucose action is unknown. To determine if enhanced somatostatinergic stimulation accounts for the decreased GH secretion, we studied the effect of enhanced cholinergic tone by pyridostigmine on the hyperglycemia blockade of GH release in 7 normal subjects. Pyridostigmine, an acetylcholinesterase inhibitor, has been postulated as an inhibitor of somatostatin release. Each subject underwent 4 tests with GHRH injection (100 micrograms i.v. at 0 min). In the first (control) test, placebo was administered before GHRH. In the second test, 100 g of glucose was administered p.o. 45 min before GHRH. In the third test, pyridostigmine, 120 mg p.o., was administered 60 min before GHRH, and in the fourth test, pyridostigmine, glucose and GHRH were administered at -60, -45 and 0 min, respectively. GHRH-induced GH secretion of 25.8 +/- 4.5 ng/ml was significantly reduced by previous glucose administration (12.1 +/- 4.5 ng/ml) and significantly potentiated by previous pyridostigmine pretreatment (56.5 +/- 16.8 ng/ml). In the fourth test (pyridostigmine plus glucose plus GHRH) the GH peak of 42.4 +/- 9.2 ng/ml was significantly higher than after GHRH alone and not different to the pyridostigmine-GHRH test. In conclusion, central cholinergic activation by pyridostigmine reversed the hyperglycemic blockade of GHRH-induced GH secretion. In addition, hyperglycemia was unable to reduce the potentiating effect of pyridostigmine on GH secretion elicited by GHRH. Based on the reported actions of pyridostigmine, acute hyperglycemia might act over GH release by inducing hypothalamic somatostatin release.

Acute Disease↗

Cholinergic receptor activation by pyridostigmine restores growth hormone (GH) responsiveness to GH-releasing hormone administration in obese subjects: evidence for hypothalamic somatostatinergic participation in the blunted GH release of obesity.

GH secretion in response to provocative stimuli is decreased in obese individuals. However, the precise mechanism causing this decrease is unknown. In an attempt to determine if reduced cholinergic stimulation accounts for the decreased GH secretion, we studied the effect of enhanced cholinergic tone induced by pyridostigmine on GHRH-stimulated GH secretion in a group of seven obese and seven normal subjects. When GHRH (100 micrograms, iv) was administered after placebo in the obese group, mean plasma GH rose from 0.5 +/- (0.1 (+/- SE) to 3.6 +/- 1.5 micrograms/L at 30 min. When the same obese subjects were given GHRH 60 min after pyridostigmine administration (120 mg, orally), the mean plasma GH level rose from 1.8 +/- 0.6 to 21.0 +/- 7.5 micrograms/L at 30 min. The responses to placebo and pyridostigmine were significantly different at 15, 30, 45, 60, and 90 min. In the normal subjects, a similar dose of GHRH induced a GH peak of 24.3 +/- 7.1 micrograms/L, and the GHRH-stimulated peak was significantly higher (56.2 +/- 16.8 micrograms/L) after pyridostigmine administration. To study the effect of pyridostigmine alone six other obese and six other normal subjects were tested with pyridostigmine or placebo on different days. In the normal subjects the mean peak plasma GH level after pyridostigmine was 12.5 +/- 3.1 micrograms/L, and in the obese subjects it was 4.6 +/- 1.3 micrograms/L. Thus, pyridostigmine potentiated the action of GHRH, rather than merely being additive. We conclude that pyridostigmine stimulates GH secretion in obese as well as normal subjects, although the response was less in the former group. Pyridostigmine potentiates the response to GHRH in both groups, but again, the response was less in the obese subjects. These results suggest that the impaired somatotroph responsiveness in obese subjects may be due to chronically decreased hypothalamic cholinergic tone, resulting in enhanced somatostatinergic tone.

Adolescent↗

Effects of hypothyroidism, tri-iodothyronine and glucocorticoids on growth hormone responses to growth hormone-releasing hormone and His-D-Trp-Ala-Trp-D-Phe-Lys-NH2.

The aim of this study was to investigate the role of thyroid hormones and glucocorticoids on GH secretion. Secretion of GH in response to GH-releasing hormone (GHRH) (5 micrograms/kg) was markedly (P less than 0.001) decreased in hypothyroid rats in vivo (peak GH responses to GHRH, 635 +/- 88 micrograms/l in euthyroid rats vs 46 +/- 15 micrograms/l in hypothyroid rats). Following treatment with tri-iodothyronine (T3; 20 micrograms/day s.c. daily for 2 weeks) or cortisol (100 micrograms/day s.c. for 2 weeks) or T3 plus cortisol, a marked (P less than 0.01) increase in GH responses to GHRH was observed in hypothyroid rats (peak GH responses, 326 +/- 29 micrograms/l after T3 vs 133 +/- 19 micrograms/l after cortisol vs 283 +/- 35 micrograms/l after cortisol plus T3). In contrast, none of these treatments modified GH responses to GHRH in euthyroid animals. Hypothyroidism was also associated with impaired GH responses to the GH secretagogue, His-D-Trp-Ala-Trp-D-Phe-Lys-NH2 (GHRP-6). Secretion of GH in response to GHRP-6 in vivo was reduced (P less than 0.01) in hypothyroid rats (peak GH responses, 508 +/- 177 micrograms/l in euthyroid rats vs 203 +/- 15 micrograms/l in hypothyroid rats). In-vitro studies carried out using monolayer cultures of rat anterior pituitary cells derived from euthyroid and hypothyroid rats showed a marked impairment of somatotroph responsiveness to both GHRP-6 and somatostatin in cultures derived from hypothyroid rats. In summary, our data suggest that thyroid hormones and glucocorticoids influence GH secretion by modulating somatotroph responsiveness to different GH secretagogues.

Animals↗

Alpha-2-adrenergic pathways release growth hormone via a non-GRF-dependent mechanism in normal human subjects.

Administration of a supramaximal dose of GRF 1-44 (200 micrograms, i.v.) to normal human volunteers increased GH levels while a further bolus of GRF (200 micrograms i.v.) given 2 hours later failed to increase plasma GH levels. In contrast, alpha-adrenergic receptor agonism with either propranolol-adrenaline infusion or clonidine increased plasma GH levels at a time when GH responses to this supramaximal dose of GRF were absent. This indicates that alpha-adrenergic pathways stimulate GH secretion through a non-GRF-dependent mechanism in normal human subjects.

Adult↗

Growth hormone (GH) responses to arginine and L-dopa alone and after GHRH pretreatment.

In order to investigate the mechanisms by which arginine and L-dopa cause GH release in humans we measured the GH response to GHRH 1-44 (200 micrograms i.v.), arginine (30 g i.v. over 30 min) and L-dopa (500 mg orally) administered alone and 120 minutes following pretreatment with GHRH 1-44 (200 micrograms i.v.) in normal male subjects. Prior GHRH administration abolished the GH response to subsequent GHRH. Arginine infusion induced a rise in GH levels maximal at 45 min. Following GHRH pretreatment the GH response to arginine was enhanced, with peak values of 19.3 +/- 6.4 vs 53.3 +/- 16.5 mU/l (mean +/- SEM) respectively (P less than 0.02). L-dopa alone induced a rise in GH levels maximal at 90 min (17.6 +/- 7.4 mU/l, mean +/- SEM) but this rise was abolished by pretreatment with GHRH.

Adult↗