[Neuroendocrine changes in adrenoleukodystrophy (ALD). Their relationship with new therapeutic strategies].
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Biomedical subjects
Publications and source records attributed to M Cappa.
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Glucocorticoids inhibit the growth hormone (GH) response to a variety of stimuli, including GH-releasing hormone (GHRH) in vivo, but they increase GHRH-stimulated GH secretion when added, in vitro, to animal and human pituitary cells. This discrepancy has led to the hypothesis that glucocorticoids act in vivo by increasing somatostatin secretion from the hypothalamus. To examine this hypothesis, we used a cholinergic drug, pyridostigmine (PD), which reduces hypothalamic somatostatin secretion. Eight normal volunteers were studied. They underwent four tests: (1) GHRH test; (2) Dex + GHRH (GHRH test after treatment the night before, with dexamethasone (Dex)); (3) PD + GHRH; (4) Dex + PD + GHRH. Dex significantly inhibited the GH response to GHRH expressed as area under the GH/time curve (AUC, microgram/1/min) (mean +/- SEM = 895.2 +/- 196.6 vs 1970.9 +/- 600.1, P less than 0.05). PD significantly increased the AUC of GH secretion in PD + GHRH compared with GHRH alone (3541.2 +/- 571.3 vs 1970.9 +/- 600.1, P less than 0.01) but by no means restored completely the normal GH response to GHRH, when given to Dex-pretreated subjects. Furthermore, the mean AUC of Dex + PD + GHRH was significantly lower than that of PD + GHRH (1621.7 +/- 500.6 vs 3541.2 +/- 571.3, P less than 0.01), demonstrating that Dex continues to exert its inhibitory effect on GH secretion in the presence of PD. These results suggest that glucocorticoid-induced GH inhibition does not act solely through an increase in hypothalamic somatostatin secretion.
The coadministration of growth hormone (GH) secretagogues can provide insight into the neuroregulation of GH secretion. The GH response to L-dopa (125, 250 and 500 mg orally for body weights less than 15 kg, between 15 and 30 kg and greater than 30 kg, respectively), arginine (Arg; 0.5 g/kg infused intravenously over 30 min) and galanin (GAL; 15 micrograms/kg infused intravenously over 60 min) when administered alone or combined with pyridostigmine (PD; 60 mg orally), a cholinergic agonist that likely acts via inhibition of endogenous somatostatin secretion, was studied in children with familial short stature. The GH-releasing effect of PD was also evaluated. In 8 children, PD and L-dopa when administered alone induced an equivalent GH rise (area under the response curve, mean +/- SEM: 241.4 +/- 31.1 vs. 202.9 +/- 38.6 micrograms/l/h) while their coadministration had an additive effect (435.4 +/- 41.4 micrograms/l/h; p less than 0.02 vs. PD and L-dopa alone). On the contrary, in other 8 children, PD and Arg induced similar GH increases either when administered alone (394.2 +/- 68.5 vs. 405.8 +/- 103.9 micrograms/l/h) or in combination (535.8 +/- 97.3 micrograms/l/h). GH increases almost superimposable were also observed when PD and GAL were administered alone (405.2 +/- 72.3 vs. 412.6 +/- 94.1 micrograms/l/h) or in combination (537.9 +/- 139.0 micrograms/l/h) in other 7 children. These data show that the enhancement of the cholinergic activity by PD increases the L-dopa-induced GH release but fails to modify both Arg- and GAL-induced GH release in short children.(ABSTRACT TRUNCATED AT 250 WORDS)
The aim of this study was to verify that the stimulatory effect of cholinergic agonists on both basal and stimulated GH release observed in the morning persists in the night. The effects of pyridostigmine (120 mg orally), a cholinesterase inhibitor, on both basal and GHRH (1 micrograms/kg iv)-induced GH secretion were studied in 8 healthy volunteers, aged 22-30 years. In the morning, administration of pyridostigmine induced a significant increase in basal GH levels compared with saline (area under the response curve, mean +/- SEM: 277.0 +/- 54.0 vs 49.7 +/- 8.2 micrograms.l-1.h-1, p less than 0.02) as well as a strong potentiation of the GHRH-induced GH release (2117.6 +/- 353.0 vs 427.9 +/- 87.0 micrograms.l-h-1, p less than 0.02). In the night, GH secretion after pyridostigmine did not differ from saline (194.5 +/- 21.9 vs 89.4 +/- 28.7 micrograms.l-1.h-1). Moreover pyridostigmine failed to potentiate the GHRH-induced GH increase (1071.9 +/- 170.4 vs 740.2 +/- 150.9 micrograms.l-1.h-1). The pyridostigmine + GHRH-induced GH rise during the night was lower (p less than 0.05) than in the morning. All together, these data seem to indicate that cholinergic neurons controlling GH secretion are already maximally stimulated at night. As cholinergic activity negatively modulates SRIH secretion, our findings suggest that a reduced somatostatinergic tone in the hypothalamus is present during the night.
We have evaluated the effect of acute administration of pyridostigmine bromide, a cholinesterase inhibitor, on the GHRH-induced GH rise in 11 obese children and in 8 age-matched controls. The GH response to GHRH (hpGRF 1-40, 1 microgram/kg iv), evaluated both as maximum GH peak and as integrated area under the curve, was significantly lower in the obese children than in the controls. Pretreatment with pyridostigmine bromide (60 mg orally 60 min before the GHRH injection) significantly increased both baseline GH levels and the GH response to GHRH in all the obese subjects, so that their mean baseline GH, peak GH levels and integrated area under the curve after pyridostigmine bromide plus GHRH were similar to those of the control children after GHRH. Also in control children pyridostigmine bromide increased (though not significantly) baseline GH levels. and caused a significant augmentation of the GH response to GHRH. Mean peak GH levels and mean integrated area under the curve after pyridostigmine bromide plus GHRH were significantly higher in the controls than in the obese children given the same treatment. Mean baseline Sm-C levels were significantly higher in the obese than in control children. These data show that enhancement of cholinergic neurotransmission, likely in the hypothalamus, counteracts the blunted GH response to GHRH present in the obese children, and that in simple obesity the potential of the pituitary to make a secretory response to a direct GH secretagogue is preserved.
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The effect of flutamide on basal and ACTH-stimulated plasma levels of adrenal androgens was investigated in 6 patients with untreated advanced prostate cancer, aged 52-75 yr. Flutamide was administered (250 mg three times daily) for 10 days; before and after treatment, a synthetic ACTH1-24 stimulation test (250 micrograms im, with blood sampling immediately before and 60 min after the stimulus) was performed. Basal plasma 17OH-pregnenolone (delta 5-17OHP), 170H-progesterone (delta 4-17OHP), androstenedione (A), dehydroepiandrosterone (DHEA) and its sulphate (DHEAS) were unchanged by flutamide treatment. In contrast, basal plasma testosterone (T) concentrations significantly increased (p less than 0.05). The response of cortisol delta 4-17OHP, delta 5-17OHP, A and DHEA to ACTH, as well as the ACTH-stimulated delta 5-17OHP/delta 4-17OHP, delta 5-17OHP/DHEA, delta 4-17OHP/A and DHEA/A ratios, were unchanged by flutamide treatment. These findings indicate that: a) Short-term flutamide administration enhances testicular steroidogenesis, via augmented LH pulse frequency; b) Adrenal steroidogenesis seems to be not affected by the drug, since ACTH-stimulated plasma levels of adrenal androgens and precursors/products ratios were unchanged.
A 16-year-old female patient with recurrent Cushing's disease (CD) underwent successful treatment with pituitary irradiation. Within one year after radiotherapy, cortisol levels had returned to normal (but with continued absence of diurnal variation), growth velocity improved, and puberty ensued. Five years after treatment, the patient developed clinical and biochemical evidence of recurrent CD. The high baseline evening corticotropin level (9 pmol/L [40 pg/mL]) was unresponsive (maximum level, 10 pmol/L [46 pg/mL]) to stimulation with ovine corticotropin-releasing hormone (CRF). In patients with CD treated with radiotherapy, the corticotropin response to CRF stimulation may not be reliably compared with that of normal control values. After pituitary adenomectomy, the corticotropin concentration was still unresponsive to CRF. We suggest that the pituitary tumor was secondary to abnormal hypothalamic CRF regulation not corrected by pituitary irradiation; therefore, CD may recur despite pituitary irradiation.
The BBB and G syndromes are multiple congenital anomaly (MCA) syndromes characterized by a developmental defect of the midline field. Prominent clinical manifestations are hypertelorism and, in males, hypospadias. Transmission is most likely autosomal dominant in both syndromes. Examination of two new cases and scrutiny of the literature led us to conclude that there are no discriminating qualitative differences between the two conditions. Therefore we propose that they both be designated by the common term "Opitz syndrome."
We have evaluated the plasma GH response to a single injection of 1 microgram/kg of GH-releasing hormone (GHRH)-40 in 15 obese children and 15 age-matched control children. Most of the obese children showed a subnormal plasma GH response to GHRH and the mean plasma GH integrated area (IC-GH) following stimulation was significantly smaller in obese than control children. Plasma somatomedin-C (SM-C) levels were significantly higher in obese than control children, and were negatively correlated with the peak plasma GH levels (r = -0.616, P less than 0.01) and the IC-GH (r = -0.554, P less than 0.02) after GHRH. Non-esterified fatty acids (NEFA) and fasting plasma insulin levels were also elevated in obese children, but did not correlate with the extent of plasma GH response to GHRH. These data confirm previous observations on the refractoriness of obese children to release GH after GHRH, and imply that it may be due to the feedback inhibition operated by the elevated plasma levels of SM-C.
The response of growth hormone (GH) to acute administration of GH-releasing hormone 1-40 (GHRH) was evaluated in 12 patients with Turner's syndrome and in 12 prepubertal or early pubertal girls. In 7 of 12 patients GHRH induced a definite increase (greater than 10 ng/ml) of plasma GH levels. In 5 patients there was a poor GH rise after GHRH administration (less than 10 ng/ml). Overall, the mean GH response of patients was significantly lower than that of normal girls. Five out of 7 patients with a 45 X,O karyotype had a reduced GH rise after GHRH, while all patients with non X,O karyotype (mosaicism and/or 46 X,iX) had a normal GH response to GHRH. Although the cause of short stature in patients with Turner's syndrome is most likely multifactorial, a reduced pituitary GH reserve, as documented by the reduced GH response to GHRH in some of our patients, may contribute to the growth impairment in this disorder.
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Thirteen normal children, seven males and six females, during early puberty (I-II according to Tanner), have been studied. Each subject was injected at weekly intervals and in random order with 100 micrograms of LHRH, 0.2 mg/kg of naloxone and 0.9% saline in single bolus. The gonadotrophin response was evaluated. The administration of naloxone failed to elevate LH levels in any of the subjects studied, even in those who showed a clear gonadotrophin response to LHRH. Unlike the response noted in adults, endogenous opiates do not appear to exert a tonic inhibitory influence on LH secretion during early puberty.
Out of 90 children, examined because of growth failure, 15 have been treated surgically. The diagnoses were intrasellar arachnoid diverticulum or empty sella (5 cases), enlarged chiasmatic cisterns (5 cases), chronic 'occult' hydrocephalus (5 cases). Surgery was followed by an immediate increase in growth rate in almost all the cases, even if the result was persistent only in some subjects. In percentage, better results were obtained in patients with enlarged chiasmatic cisterns and chronic occult hydrocephalus than in patients with arachnoid diverticulum or empty sella. The evaluation of prolactin serum levels was demonstrated to be useful both in preoperative diagnosis and postoperative control.
Opiate peptides stimulate the release of GH and PRL, and such changes have also been reported following physical exercise. To investigate opiate involvement in the exercise-induced release of these hormones, eight professional athletes were exercised to 80% of their maximal heart rate on a bicycle ergometer. This exercise alone induced an increase in circulating mean GH (basal to maximal level, 3.1 +/- 0.9 ng/ml-27.3 +/- 5.9 ng/ml) and mean PRL level (6.1 +/- 1.1 ng/ml-19.5 +/- 1.9 ng/ml). Infusion of naloxone (0.3 mg/min) antagonized these responses in mean serum GH (5.6 +/- 1.0 ng/ml to 8.6 +/- 1.1 ng/ml) and PRL levels (6.4 +/- 1.1 ng/ml-8.1 +/- 1.2 ng/ml), which were both significantly less than during the control infusions (P less than 0.01). It is suggested that certain forms of stress stimulate the release of PRL and GH via endogenous opiate peptides.
A total of 192 patients with benign fibrocystic disease of the breast were studied. Diagnosis was based on the clinical picture, xerography, and/or mammography. Most of the patients were 30-45 years old. Hormonal studies including serum PRL, 17-beta-estradiol, progesterone, and gonadotropins were performed by means of specific and sensitive RIA techniques. Patients were allotted to treatment with 3 x 25 mg p.o. 2-bromo-alpha-ergocryptine (CB 154, Parlodel, Sandoz) continuously for a period of 3 months. In an attempt to establish a possible relationship between PRL levels and the disease, patients were divided into two groups with high or normal levels of PRL. Results indicate an improvement or complete recovery in about 75% of the cases. These results are independent of PRL levels. According to our experience CB 154 seems to be the most effective treatment of this disease.