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Biomedical subjects

C Dieguez

Publications and source records attributed to C Dieguez.

At least 181 records · Page 10Linked to original sources

Depending on the time of administration, dexamethasone potentiates or blocks growth hormone-releasing hormone-induced growth hormone release in man.

In humans, corticoids suppress growth hormone (GH) secretion elicited by a variety of stimuli, while in vitro they potentiate GH release. To further study this problem, the effect of two doses of dexamethasone on GH secretion elicited by GH-releasing hormone (GHRH) in 6 normal volunteers was studied. Each subject underwent three tests, on 3 separate days with GHRH 1-29 (1 microgram/kg i.v. at 12.00 h). On the control day, only GHRH was given, on the second day dexamethasone 4 mg i.v. was administered at 09.00 h (3 h before GHRH) and on the third day dexamethasone 8 mg p.o. was given 12 h before GHRH (at 00.00 h). The GHRH-induced GH peak was 9.9 +/- 2.0 ng/ml, while 4 mg dexamethasone significantly (p less than 0.05) potentiated GH secretion elicited by GHRH (29.2 +/- 5.7 ng/ml). When dexamethasone 8 mg was given 12 h before, GHRH-induced GH secretion was completely blocked (3.0 +/- 1.1 ng/ml) (p less than 0.05). These results indicate that corticoids have two different actions: an acute potentiating activity on GHRH, and a delayed blocking action on GHRH-induced GH secretion.

Adult↗

Evidence that growth hormone depletion and uncoupling of the regulatory protein of adenylate cyclase (Ns) both contribute to the desensitization of growth hormone responses to growth hormone-releasing factor.

Recent data suggest that the response of GH to GH-releasing factor (GRF) is reduced following prior exposure to high concentrations of GRF. However, it is unknown whether this is due to alterations in GRF receptors, adenylate cyclase activity or the size of a GRF-releasable storage pool of GH. In order to clarify these questions we have compared the effects of pretreatment with GRF (10 nmol/l every 2 h for 12 h) with those of pretreatment with somatostatin (SRIF; 1 mumol/l), forskolin (10 mumol/l) and GRF plus SRIF (10 nmol/l and 1 mumol/l added together) on the subsequent responses of GH to GRF (1 pmol/l-10 nmol/l), cholera toxin (10 nmol/l), 3-isobutyl-l-methylxanthine (IBMX) (100 mumol/l) and forskolin (10 mumol/l). Experiments were performed on 4-day monolayer cultures of rat anterior pituitary cells. The cells were pretreated with test substances every 2 h for 12 h and incubated with GRF or forskolin for 3 h. Per cent maximal (Bmax) GH responses to GRF (10 nmol/l) were reduced after pretreatment with both GRF (control, 173% of basal; GRF, 25% of basal; P less than 0.001) and forskolin (98% of basal; P less than 0.001), but were increased after pretreatment with SRIF (246% of basal; P less than 0.02). However, GH responses after pretreatment with GRF plus SRIF were not significantly different from those of the control.(ABSTRACT TRUNCATED AT 250 WORDS)

1-Methyl-3-isobutylxanthine↗

The circadian rhythms of thyrotrophin and prolactin secretion.

As with other anterior pituitary hormones, the secretion of both thyrotrophin (TSH) and prolactin (PRL) displays a circadian variation with different patterns for each hormone. In recent years there has been a substantial increase in the understanding of the neuroregulation of TSH and PRL. However the primary events involved in the generation of their circadian rhythms remains unclear. Regulatory pathways comprise two major groups: central factors, where the control is exerted by the central nervous system via the hypothalamus and peripheral factors, which include all extra CNS mechanisms. The first group is represented mainly by neuropeptides and neurotransmitters controlling TSH and PRL release, whereas the second one comprises both physical phenomena such as variations in plasma volume or postural changes and hormonal influences arising from target glands such as the adrenal, the thyroid and the gonads.

Central Nervous System↗

Growth hormone and its modulation.

Our knowledge of the mechanisms involved in the regulation of somatotroph cell growth is scanty and much work is still needed to elucidate the role of different growth factors and the mechanisms involved in oncogene activation in both normal and tumour cell growth. However, there are several recent, important clinical ramifications from our improved understanding of GH neuroregulation. The use of long-acting SS analogues is valuable in the treatment of acromegaly, probably in acute variceal haemorrhage and it also produces symptomatic improvement in patients with vipomas and glucagonomas. GHRH may be of value in the treatment of short stature due to hypothalamic GHRH deficiency but further definitive studies are now required to provide convincing evidence that this line of treatment is of greater benefit than the use of synthetic recombinant human GH. Inhibition of GH release may be of value in prevention of both acute and chronic complications of insulin-dependent diabetes mellitus. The use of cholinergic muscarinic receptor blockade in this context may be particularly useful because of a probably sparing of the counter-regulatory GH response to hypoglycaemia. In view of the relative ease with which nocturnal GH secretion can be abolished, we think it reasonable to consider the possible existence of a permissive or mediating role of GH in other disease states, either directly or by maintaining production of either local tissue or circulating growth factors or both.

Acromegaly↗

A rare cause of acromegaly: ectopic production of growth hormone-releasing factor by a bronchial carcinoid tumor.

Ectopic production of growth hormone-releasing factor (GRF) is a rare cause of acromegaly. In addition to its production by gangliocytomas, both hypothalamic and intrasellar, in rare cases various neuroendocrine neoplasms produce the substance, with resultant growth hormone cell hyperplasia of the pituitary and acromegaly. We report an endocrinologically well-documented case of a GRF-producing bronchial carcinoid tumor in which the associated acromegaly was cured by lobectomy.

Acromegaly↗

The effects of neonatal hypothyroidism on brain catecholamine turnover in adult rats: assessment by a steady-state method.

The effects of hypothyroidism in utero, and continuing into postnatal life, on the central turnover of catecholamines, noradrenaline and dopamine were studied in rats. Rats were rendered hypothyroid in utero by treating pregnant females with methimazole in the drinking water. In two groups goitrogen treatment continued for 3 or 10 weeks postnatally. Methimazole treatment in utero did not produce significant changes in noradrenaline, dopamine or tyrosine content in either the hypothalamus or striatum. Three weeks' postnatal treatment reduced tyrosine specific radioactivity in the anterior hypothalamus and dopamine specific radioactivity in the striatum. Ten weeks' treatment increased dopamine content and reduced noradrenaline synthesis in the mediobasal hypothalamus and a reduction in tyrosine content in the anterior hypothalamus. These data suggest that hypothyroidism restricted to intrauterine life does not produce permanent changes in adult catecholamine neuronal function. Long term hypothyroidism produced localized changes, suggesting a specific rather than general effect.

Animals↗

Cholinergic muscarinic receptor blockade with pirenzepine abolishes slow wave sleep-related growth hormone release in young patients with insulin-dependent diabetes mellitus.

Cholinergic receptor blockade has been shown to abolish GH secretion in a variety of physiological and pharmacological situations in normal subjects. We have investigated the effect of pirenzepine on nocturnal GH secretion in young adult patients with Type I insulin-dependent diabetes mellitus. Five patients (three male, two female; aged 20-27 years) were studied in a randomized order on two days separated by at least 1 week. All patients showed episodes of slow wave sleep on each occasion and this was followed by peaks of GH release when placebo alone was administered (range of GH peaks 6-115 mU/l). In contrast, cholinergic muscarinic receptor blockade with pirenzepine (100 mg orally at 2200 and 2400 h) completely abolished nocturnal GH release in each individual without altering the occurrence of slow wave sleep itself. Mean plasma glucose levels at each sampling time between each study did not differ significantly. The ability to abolish nocturnal GH secretion may be important in the field of diabetes, since excess GH secretion is implicated in several acute metabolic and chronic microvascular complications of the disease.

Adult↗

Effect of oral administration of melatonin on GH responses to GRF 1-44 in normal subjects.

In order to investigate the role of melatonin on the neuroregulation of GH secretion, eight healthy male volunteers each underwent four separate tests in random order separated by at least 1 week. Following oral administration of melatonin (500 mg at -60 min and at -30 min) plasma GH levels were higher than after placebo at 45 min (mean +/- SEM 2.9 +/- 0.8 vs 0.9 +/- 0.4 ng/ml, P less than 0.01) and 60 min (mean +/- SEM 2.9 +/- 0.4 vs 0.8 +/- 0.1 ng/ml, P less than 0.05). Likewise, after prior administration of melatonin, GH responses to GRF 1-44 (1 micrograms/kg i.v. at 0 min) were greater than placebo plus GRF at 15 min (mean +/- SEM 22.4 +/- 6.1 ng/ml vs 11.3 +/- 2.3 ng/ml, P less than 0.05), 45 min (mean +/- SEM 26.2 +/- 5.3 ng/ml vs 13.3 +/- 2.5 ng/ml, P less than 0.01) and 60 min (mean +/- SEM, 24.7 +/- 7.4 ng/ml vs 11.1 +/- 2.5 ng/ml, P less than 0.05). In contrast we did not observe any effect of either 10(-9)M, 10(-7)M melatonin on in-vitro basal GH release and GH responses to 10(-8)M GRF by rat anterior pituitary cells in monolayer culture. These data suggest that melatonin plays a facilitatory role in the neuroregulation of GH secretion, probably by acting at the hypothalamic level.

Administration, Oral↗

Additive effects of growth hormone releasing factor and insulin hypoglycaemia on growth hormone release in man.

We have measured GH and PRL changes following separate and combined administration of insulin and GH releasing factor (GRF) in six normal males. Peak GH responses to separate administration of insulin and GRF were comparable (71.4 +/- 10.2 vs 70.1 +/- 27.7 mU/l; mean +/- SEM). However, the peak GH response following combined administration was significantly higher (120.8 +/- 29.7, P less than 0.05) as was the total GH released as calculated by measuring the area under the curve (P less than 0.05). In contrast the PRL response to hypoglycaemia was not altered by the combined administration of insulin and GRF. This effect was not due to any direct action of hypoglycaemia or insulin at pituitary level since basal and 10(-8) M GRF stimulated GH release from rat anterior pituitary cells in vitro was not influenced by varying glucose and insulin levels. Our findings support the hypothesis that GRF and insulin-induced hypoglycaemia release GH via different pathways which are, at least in part, additive.

Adult↗

Effect of thyroxine replacement therapy on plasma insulin-like growth factor 1 levels and growth hormone responses to growth hormone releasing factor in hypothyroid patients.

The aim of this study was to evaluate the effect of T4 replacement therapy on plasma insulin-like growth factor 1 (IGF-1) levels in patients with primary hypothyroidism to see whether recovery of pituitary GH responsiveness to GRF was associated with increased plasma IGF-1 levels. IGF-1 levels and GH responses to GRF (1 microgram/kg) were measured in 21 patients with primary hypothyroidism before and after T4 replacement therapy. T4 increased plasma IGF-1 levels (57.2 +/- 4.4 vs 75.9 +/- 8.8 ng/ml, mean +/- SEM, P less than 0.05) and GH responses to GRF as assessed both by peak GH levels (9 +/- 1.5 ng/ml before treatment vs 16.7 +/- 3 ng/ml after treatment, mean +/- SEM, P less than 0.05) and area under curve (496 +/- 92 before treatment vs 896 +/- 161 after treatment, mean- +/- SEM, P less than 0.05). Linear regression analysis showed a positive correlation between free T3 and IGF-1 levels after treatment (r = 0.37, P less than 0.05) and a negative relationship between plasma IGF-1 levels before treatment and delta IGF following T4 replacement therapy (r = 0.45, P less than 0.025). However, no correlation was found between plasma IGF-1 levels and GH responses to GRF, suggesting that GH responses to GRF are of no predictive value in relation to the recovery of plasma IGF-1 levels following T4 replacement therapy in hypothyroid patients.

Adult↗

Free fatty acids block growth hormone (GH) releasing hormone-stimulated GH secretion in man directly at the pituitary.

Increases in plasma FFA levels inhibit GH responses to a variety of pharmacological and physiological stimuli. To gain further insight into the mechanism by which FFA exert their effect, we studied the plasma GH responses to GHRH-(1-44) (1 microgram/kg, iv) in normal subjects in whom plasma FFA levels were raised by a lipid-heparin infusion (250 mL 10% Intralipid plus 2500 U heparin). Paired tests were performed in 10 normal subjects, with and without lipid-heparin pretreatment. Lipid-heparin infusion from -30 to 120 min increased mean FFA levels from 0.41 +/- 0.03 (+/- SEM) to 3.12 +/- 0.40 mmol/L at 120 min. The mean plasma GH levels after GHRH administration were lower at all times; however, the values were significantly different (P less than 0.05) only at the later times (45, 60, and 90 min). When considered individually, an all or none pattern was observed; 5 subjects had no plasma GH response to GHRH, and 5 had no reduction. To investigate the time relationships between the FFA peak and subsequent GH blockade, a different protocol of paired tests was performed with GHRH with or without a different lipid-heparin infusion protocol. Lipid-heparin was infused from -90 to 0 min, with an additional heparin pulse at -15 min, to obtain a higher and earlier (0 min) FFA increase. FFA increased from 1.06 +/- 0.19 to 11.61 +/- 0.83 mmol/L at zero time. The GHRH-induced GH secretory peak (15.8 +/- 3.5 ng/ml) at 15 min was completely blocked (0.9 +/- 0.2 ng/ml), and the mean plasma GH levels were also lower at 30, 45, and 60 min. To determine whether the FFA-induced blockade of GH secretion was exerted in the pituitary, a series of in vitro studies was conducted using monolayer cultures of rat anterior pituitary glands, with GHRH concentrations of both 10(-10) and 10(-8) M and 10(-5) M forskolin to stimulate GH release. Both caprylic and oleic acid inhibited basal GH release and GHRH- or forskolin-induced GH release. PRL release was not altered, nor were toxic actions noted on the cells. In conclusion, FFA are able to block GH secretion directly at the pituitary level.

Adult↗

Alpha-adrenoreceptor blockade with thymoxamine reduces basal thyrotrophin levels but does not influence circadian thyrotrophin changes in man.

We have tested the hypothesis that alpha-adrenergic drive is involved in the nocturnal increase in TSH in man. Seven mildly hypothyroid women (basal TSH levels 5.0-11.0 mU/l), aged 38-60 years, and nine euthyroid women, aged 27-60 years, were studied. Subjects underwent alpha-adrenergic blockade by infusion of thymoxamine (210 micrograms/min from 19.00 to 24.00 h); the same women were used as controls, with saline infused on different nights. Subjects were not allowed to sleep during the study period. A clear evening rise in basal TSH levels was apparent in both normal subjects and patients. Although overall secretion of TSH was slightly decreased in normal subjects (mean +/- S.E.M. area under the curve, 29.93 +/- 0.96 vs 30.71 +/- 0.80 mU/l per h; P less than 0.05), thymoxamine infusion did not produce any major alteration in the gradual rise in TSH levels during the evening (incremental change above baseline +0.96 +/- 0.21 during control infusion and +0.97 +/- 0.27 mU/l during thymoxamine infusion). In mildly hypothyroid patients the TSH changes were exaggerated and alpha-adrenergic blockade caused a reduction in basal TSH levels and a delayed rise in TSH (incremental change above baseline +2.93 +/- 1.42 during control infusion and +2.26 +/- 0.73 mU/l during thymoxamine infusion; P less than 0.02). Overall TSH secretion was significantly decreased by thymoxamine (mean +/- S.E.M. area 106 +/- 2.45 mU/l per h vs 123.32 +/- 3.68 in the control study; P less than 0.0001).(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Dopamine stimulates release of thyrotrophin-releasing hormone from perfused intact rat hypothalamus via hypothalamic D2-receptors.

We have studied the effect of dopamine together with agonist and antagonist drugs of different specificities on the release of TRH from the perfused, intact hypothalamus of the adult rat in vitro. Dopamine produced a dose-related stimulatory effect on TRH release with maximal effect being achieved at 1 mumol/l (increase over basal, 118 +/- 16.5 (S.E.M.) fmol TRH; P less than 0.001 vs basal). This effect was mimicked by the specific D2-agonist drugs bromocriptine (0.1 mumol/l) and LY 171555 (0.1 mumol/l) (increase over basal values, 137.5 +/- 13.75 fmol and 158.6 +/- 10.7 fmol respectively; P less than 0.001 vs basal), but not by the D1-agonist SKF 38393A. The stimulatory effect of dopamine (1 mumol/l) was blocked in a stereospecific manner by the active (D) but not by the inactive (L) isomers of the dopamine antagonist butaclamol. Similar blockade was achieved with the specific D2-antagonist domperidone (0.01 mumol/l) whereas the D1-antagonist SCH 23390 was only effective when used at a concentration 100 times greater. Lower concentrations (0.01 mumol/l) of this D1-antagonist did not block the stimulatory effect of dopamine. High-performance liquid chromatography characterization of the material secreted within the hypothalamus showed one single peak of immunoreactive material which coeluted with synthetic TRH. These data suggest that dopamine exerts a stimulatory role in the control of hypothalamic TRH release by acting at specific D2-receptors.

Animals↗

Lack of effect of muscarinic cholinergic blockade on the GH responses to GRF 1-29 and TRH in acromegalic subjects.

It is well known that muscarinic cholinergic blockade either reduces or abolishes stimulated GH release in normal subjects. In this study we have investigated whether cholinergic muscarinic blockade could reduce the GH responses to GRF 1-29 and TRH in acromegalic subjects. Eight acromegalic subjects underwent two GRF tests (GRF 1-29, 1 microgram/kg i.v.) with and without pirenzepine (0.6 mg/kg, i.v.). A further four of these patients received TRH (200 micrograms/kg, i.v.) on separate occasions with and without pirenzepine (0.6 mg/kg, i.v.). Cholinergic muscarinic blockade did not alter the GH responses to GRF and TRH in patients with acromegaly. These findings are in contrast with previous data reported on the effects of cholinergic blockade on stimulated GH levels in normal subjects and in patients with type I diabetes mellitus and are compatible with the view that somatotroph adenomas are functionally disconnected from hypothalamic control mechanisms.

Acromegaly↗

The effect of cholinergic blockade on the ACTH, beta-endorphin and cortisol responses to insulin-induced hypoglycaemia.

To assess the effect of cholinergic blockade on the ACTH, beta-endorphin and cortisol responses to insulin-induced hypoglycaemia, six healthy male volunteers each underwent two insulin tolerance tests in random order, separated by at least 1 week with and without atropine. ACTH levels were significantly greater at +45 min (mean +/- SEM, 223 +/- 21 pg/ml vs 148 +/- 15 pg/ml, P less than 0.01) and at +120 min (54 +/- 11 pg/ml vs 29 +/- 10 pg/ml, P less than 0.05). beta-endorphin levels were significantly greater at +30 min (170 +/- 45 pg/ml vs 96 +/- 32 pg/ml, P less than 0.05) and at +105 min (81 +/- 14 pg/ml vs 54 +/- 7 pg/ml, P less than 0.01). Cholinergic blockade had no effect on plasma glucose or cortisol concentrations. This study demonstrates that cholinergic blockade with atropine facilitates the ACTH and beta-endorphin responses to insulin-induced hypoglycaemia without altering the cortisol responses.

Adrenocorticotropic Hormone↗

Growth hormone responses to GRF 1-29 in patients with primary hypothyroidism before and during replacement therapy with thyroxine.

It is well known that hypothyroidism is frequently associated with impaired GH responses to different stimuli. In the present study we have evaluated GH responses to GH-releasing factor (GRF) in patients with primary hypothyroidism before and during T4 replacement therapy. Fourteen patients (age range 26-60 years) underwent two GRF tests (1 microgram/kg) before and during replacement therapy (150 micrograms/d). Administration of T4 increased peak GH responses to GRF in 9 patients and in the group as a whole (mean +/- SEM, 17.0 +/- 2.8 vs 32.6 +/- 5.7 mU/l, P less than 0.02). When the data are analysed by means of area under the curve (AUC), the GH response to GRF was increased by T4 in 10 patients and in the group as a whole (mean +/- SEM, 51.7 +/- 14.3 vs 101.5 +/- 28.1, P less than 0.02). These data indicate that thyroid hormone replacement therapy enhances the responsiveness of the somatotroph to GRF 1-29 in patients with primary hypothyroidism.

Adult↗

Cholinergic muscarinic receptor blockade with pirenzepine abolishes slow wave sleep-related growth hormone release in normal adult males.

Cholinergic pathways play an important role in the regulation of GH secretion from the anterior pituitary gland, and in this study we have investigated whether cholinergic muscarinic receptor blockade with pirenzepine displayed any inhibitory action on slow wave sleep-related GH release in normal subjects. Six adult males (ages 24-37 years) were studied in a randomized order and fasted from 1800 h on each study day. All subjects showed episodes of slow wave sleep on each occasion and this was followed by peaks of GH release when placebo alone was administered (range of GH peaks 4-50 mU/l). In contrast, pirenzepine treatment (100 mg p.o. at 2200 and 2400 h) completely abolished nocturnal GH release in each individual without altering the occurrence of slow wave sleep itself. These data demonstrate clearly that cholinergic muscarinic receptor blockade completely abolishes slow wave sleep-related GH release in normal adult subjects. Because of the striking effects it is reasonable to conclude that acetylcholine plays an important stimulatory role in mediating slow wave sleep-related GH release. This finding may have investigational and therapeutic applications in young patients with Type 1 diabetes mellitus since GH is implicated in some acute metabolic and chronic microvascular complications of this disease.

Adult↗