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Biomedical subjects

S Grottoli

Publications and source records attributed to S Grottoli.

At least 73 records · Page 4Linked to original sources

Effects of acipimox, an antilipolytic drug, on the growth hormone (GH) response to GH-releasing hormone alone or combined with arginine in obesity.

Increased free fatty acid (FFA) levels of obese patients are likely involved in the pathogenesis of the growth hormone (GH) hyposecretion of obesity. To clarify their role, we studied the influence of inhibition of plasma FFA levels, induced by 500 mg oral acipimox (ACX), an antilipolytic drug, on the GH response to GH-releasing hormone (GHRH) alone or combined with arginine ([ARG] study A) in six normal women ([NS] aged 24 to 37 years; body mass index, 22.4 +/- 0.9 kg/m2) and six obese women ([OB] aged 21 to 40 years; body mass index 39.5 +/- 3.2 kg/m2). In a group of seven OB patients (aged 18 to 58 years; body mass index, 35.8 +/- 1.3 kg/m2), the effect of ACX on either GHRH- or GHRH+ARG-stimulated GH increase was also studied after a 4-day treatment with the same drug at 250 mg three times daily (study B). OB patients had baseline FFA levels higher than NS (0.77 +/- 0.06 v 0.44 +/- 0.09 mmol/L, P<.05). In study A, ACX reduced FFA levels to the same nadir in both groups (0.11 +/- 0.02 and 0.12 +/- 0.03 mmol/L, NS and OB subjects, respectively). In NS, ACX failed to significantly potentiate the GH response to either GHRH (1,371.9 +/- 425.2 v 1,001.8 +/- 229.0 micrograms/L x min) or GHRH+ARG (3558.4 +/- 1,513.7 v 3,045.9 +/- 441.8 micrograms/L x min), while in OB patients it increased the GH response to GHRH (797.6 +/- 277.3 v 353.8 +/- 136.7 micrograms/L x min, P<.01) and did not modify the response to ARG+GHRH (1,010.5 +/- 253.1 v 821.1 +/- 222.0 micrograms/L x min). In study B, ACX reduced FFA levels in OB patients (nadir, 0.09 +/- 0.04 mmol/L). This treatment strikingly increased the GH response to GHRH (1,734.0 +/- 725.4 v 271.5 +/- 112.8 micrograms/L x min, P<.01) and significantly potentiated that to ARG+GHRH (2,371.9 +/- 571.3 v 1,020.0 +/- 343.2 micrograms/L x min, P<.05). In conclusion, our present findings indicate that an acute reduction of plasma FFA levels in OB patients restores their somatotrope responsiveness, whereas it does not affect GH secretion in lean subjects. After prolonged treatment, ACX further improves GHRH-stimulated GH secretion in OB patients, suggesting that elevated FFA levels play a leading role in the GH hyposecretory state of obesity.

Adult↗

Hexarelin, a synthetic growth hormone releasing peptide, stimulates prolactin secretion in acromegalic but not in hyperprolactinaemic patients.

OBJECTIVE: In man, new synthetic peptides such as hexarelin have been shown to have a potent and dose dependent GH releasing activity. Furthermore, a significant PRL releasing activity has also been demonstrated, but this has been investigated in less detail. We have therefore evaluated the effect of hexarelin on PRL and GH secretion in patients with active acromegaly or pathological hyperprolactinaemia. DESIGN: Hexarelin (2 micrograms/kg i.v.), a modified derivative of GHRP-6 of the following structure: His-2-Me-D-Trp-Ala-Trp-D-Phe-Lys-NH2, or placebo, was administered in random order on two separate occasions. PATIENTS: Eight patients with active acromegaly (ACRO, 6 F and 2 M, mean age 61.7 years, range 56-73), 6 with macroadenomas and 2 without radiological signs of tumour, and 6 female patients with pathological hyperprolactinaemia (HPRL, mean age 31.2 years, range 18-47) 5 with microadenomas and 1 with empty sella, were studied. Fourteen normal subjects (NS, 8 F and 6 M, 27.1 years, 24-30) were studied as controls. MEASUREMENTS: GH and PRL levels were evaluated every 15 minutes for 2 hours after hexarelin or placebo. Both hormones were measured using commercial IRMA kits. Basal IGF-I was measured in all subjects using an RIA following acid-ethanol extraction. RESULTS: Hexarelin induced a significant increase in PRL levels in NS (median, range, delta peak HEX vs placebo: 150 (-14-402) vs 10 (-34-24) mU/l; delta AUC HEX vs placebo: 7710 (2,100-3 2540) vs 30 (-2,566-2,040) mU min/l, P < 0.01) and in ACRO (190 (-10-496) vs 6 (-100-34) mU/l; 10,170 (-5,310-51,436) vs -82 (-6,030-1,410) mU min/l, P < 0.02), but not in HPRL (10 (-180-80) vs 50 (-100-240) mU/l; -600 (-16,996-10,140) vs -1,950 (-8,540-14,160) mU min/l). Hexarelin also induced a lower increase of GH in HPRL (60 (30-82) vs 1.8 (-0.2-2.2) mU/l; 2,853 (1,477.6-4,372.6 vs 91.6 (-160.6-174) mU min/l, P < 0.05) than in NS (90.8 (50.6-181) vs 0.8 (-1.2-6.8) mU/l; 6642 (2,004-13,252.6 vs 42 (456-900) mU min/l, P < 0.01) or in ACRO (117.2 (21.2-420.6 vs 3.8 (-2.2-18) mU/l; 6645 (1,554-22,138.6 vs 334.6 (-324-1,065) mU min/l, P < 0.02). CONCLUSIONS: Our data show that the PRL releasing effect of hexarelin is preserved in acromegaly but lost in pathological hyperprolactinaemia. In contrast with acromegaly, the GH releasing effect of hexarelin is also blunted in hyperprolactinaemic patients. These data demonstrate that patients with pathological hyperprolactinaemia are partially refractory to the activity of hexarelin.

Acromegaly↗

Effects of glucose load and/or arginine on insulin and growth hormone secretion in hyperprolactinemia and obesity.

In hyperprolactinemic patients an exaggerated glucose-induced insulin secretion has been reported, but these results have not been confirmed by other researchers. On the other hand, there are few data concerning somatotrope secretion in this condition. In order to clarify these points, in seven normal weight hyperprolactinemic female patients (HP: age 18-46 years, body mass index = 21.8 +/- 0.6 kg/m(2), basal prolactin = 91.7 +/- 16.5 micrograms/l) we studied the effects of glucose load (100 g orally) and/or arginine (0.5 g/kg infused over 30 min) on insulin glucose and growth hormone (GH) levels. These results were compared with those obtained in seven patients with simple obesity (OB: age 23-48 years, body mass index = 38.3 +/- 2.6 kg/m(2)) in whom exaggerated insulin and low GH secretion are well known. Seven normal women (NS: age 26-32 years, body mass index = 20.6 +/- 1/9 kg/m(2)) were studied as controls. The insulin response to glucose in HP (area under curve = 11,460.8 +/- 1407.5 mU x min x l(-1)) was not significantly different from NS (7743.7 +/- 882.9 mU x min x l(-1)) and OB (14,504.8 +/- 1659.9 mU x min x l(-1)). The arginine-induced insulin release in HP and OB was similar (4219.4 +/- 631.7 and 4107.3 +/- 643.2 mU x min x l(-1), respectively), both being higher (p < 0.02) than in NS (2178.1 +/- 290.9 mU x min x l(-1). Glucose and arginine had an additive effect on insulin release in HP and NS (19,769.1 +/- 3249.6 and 10,996.6 +/- 1201.0 mU x min 1(-1), respectively) and a synergistic effect in OB (28 117.3 +/- 5224.7 mU x min x l(-1)). In HP the insulin response to the combined administration of glucose and arginine was not significantly different from the one in OB, and both were higher (p < 0.05) than in NS. The increase in glucose levels after glucose administered on its own or combined with arginine was higher (p < 0.02) and longer lasting in OB than in NS and HP. After arginine in OB, the glucose levels did not show the late decrease under baseline values observed in HP and NS. Glucose inhibited GH secretion both in HP and NS (p < 0.05), while arginine stimulated it in all groups, although the GH response in HP and NS was higher (p < 0.03) than in OB. The arginine-induced GH secretion was inhibited by glucose in HP and NS but not in OB. These results demonstrate that both in hyperprolactinemic patients and in obesity there is a clear increase in insulin secretion. The insulin hyperresponsiveness in hyperprolactinemia is more clearly demonstrated by combined stimulation with glucose and arginine. In spite of similar insulin hypersecretion in hyperprolactinemic and obese patients, GH secretion is reduced only in the latter; with these data the hypothesis that somatotrope insufficiency in obesity is due to hyperinsulinism is unlikely.

Adolescent↗

Short-term administration of intranasal or oral Hexarelin, a synthetic hexapeptide, does not desensitize the growth hormone responsiveness in human aging.

The function of the growth hormone-insulin-like growth factor I (GH-IGF-I) axis is reduced in aging, although the secretory capacity of somatotrope cells is preserved. Previous studies have suggested that continuous administration of GH-releasing peptides (GHRPs) results in homologous desensitization to the GH-releasing effect of the peptides. In the present study we have studied whether healthy elderly subjects would remain responsive to short-term, intermittent treatment with Hexarelin (HEX), a GHRP, and whether this treatment would result in an increase in serum IGF-I. In study I, the effect of an 8-day treatment with intranasal administration of 1.25 mg (about 18 micrograms/kg) t.i.d. HEX on the acute GH response to the hexapeptide and on serum IGF-I, IGF binding protein 3 (IGFBP-3), prolactin and cortisol levels was studied in seven elderly subjects (four males and three females, aged 67-80 years). In study II, the same parameters were studied before and after a 15-day treatment with oral administration of 20 mg (about 300 micrograms/kg) t.i.d. HEX in seven elderly women (aged 63-80 years). The GH response to the intranasal HEX administration was not significantly higher than that induced by 1 microgram/kg iv GHRH (229.4 +/- 35.9 vs 145.8 +/- 26.9 micrograms.l-1.h-1) and was maintained with a trend towards increase after an 8-day treatment with the peptide (342.5 +/- 199.3 micrograms.l-1.h-1). On the other hand, HEX treatment did not significantly modify IGF-I (138.7 +/- 11.1 vs 122.4 +/- 14.1 micrograms/l) but increased IGFBP-3 levels (2.4 +/- 0.2 vs 1.6 +/- 0.2 mg/l, p < 0.02). The GH response to the oral HEX administration was also not significantly higher than that to iv GHRH (257.6 +/- 72.0 vs 179.0 +/- 42.8 micrograms.l-1.h-1) and did not change after a 15-day treatment with the peptide (237.8 +/- 42.8 micrograms.l-1.h-1). Both IGF-I and IGFBP-3 levels were slightly but significantly increased by oral HEX treatment (156.0 +/- 10.7 vs 141.6 +/- 13.6 micrograms/l, p < 0.03, 3.4 +/- 0.2 vs 3.1 +/- 0.2 mg/l, p < 0.03, respectively). Neither intranasal nor oral HEX treatment modified PRL or cortisol levels and did not induce any side effect. In conclusion, these results indicate that chronic but intermittent treatment with HEX, administered either by intranasal or oral route, does not desensitize the GH response to the peptide. Moreover, after HEX treatment a trend towards increase was shown for IGF-I and IGFBP-3 levels. Thus, our findings strengthen the hypothesis that prolonged treatment with HEX may restore the reduced GH release in aging.

Administration, Intranasal↗

Somatotrope responsiveness to Hexarelin, a synthetic hexapeptide, is refractory to the inhibitory effect of glucose in obesity.

Both spontaneous and stimulated growth hormone (GH) secretion is reduced in obesity, in which state insensitivity to the inhibitory effect of hyperglycemia also has been reported. To further investigate this point, in eight male obese (OB) patients (27-49 years old; body mass index = 39.5 +/- 1.7 kg/m2) we studied the effect of oral glucose load (100 g) on the GH response to Hexarelin (HEX, 2 micrograms/kg iv), a synthetic hexapeptide belonging to the GH-releasing peptide family, which has been reported to be able to induce a marked GH rise even in obese patients. As a control group, six male age-matched normal subjects (NS) were studied (26-35 years old; body mass index = 22.3 +/- 1.5 kg/m2). In all subjects the GH response to growth hormone-releasing hormone (GHRH, 1 microgram/kg iv) was also studied. Basal GH and insulin-like growth factor I (IGF-I) levels in OB and NS were similar (0.3 +/- 0.1 vs 0.5 +/- 1.0 microgram/l and 166.7 +/- 12.3 vs 145.4 +/- 6.9 micrograms/l, respectively). Hexarelin induced a clear GH rise in OB (peak: 20.0 +/- 2.9 micrograms/l; AUC: 1193.0 +/- 213.7 micrograms.l-1.120 min-1) but this response was clearly lower (p < 0.0002) than that observed in NS (62.6 +/- 7.3 micrograms/l, 4587.5 +/- 614.9 micrograms.l-1.120 min-1). The GHRH-induced GH rise was lower (p < 0.002) in OB (4.4 +/- 1.2 micrograms/l, 331.0 +/- 95.9 micrograms.l-1.120 min-1) than that in NS (20.2 +/- 1.9 micrograms/l, 1281.0 +/- 157.5 micrograms.l-1 .120 min-1) and both were lower (p < 0.05) than those induced by HEX. In NS, glucose significantly blunted the GH response to HEX (38.4 +/- 7.2 micrograms/l, 2236.5 +/- 514.8 micrograms.l-1.120 min-1, p < 0.05) but failed to modify it in OB (19.4 +/- 2.7 micrograms/l, 934.5 +/- 151.3 micrograms.l-1. 120 min-1). Plasma glucose peaks after oral glucose load in OB and NS were similar (164.5 +/- 9.7 vs 145.8 +/- 4.6 mg/dl). In conclusion, the present data demonstrate that, in contrast to normal subjects, in obese patients HEX has a reduced GH-releasing effect that is not inhibited by glucose. In OB patients as well as in normal subjects HEX releases more GH than GHRH. These findings strengthen the evidence that GH secretion in obesity is refractory either to stimulatory inputs or to the inhibitory effect of hyperglycemia.

Administration, Oral↗

Human aging and the GH-IGF-I axis.

The activity of the GH-IGF-I axis undergoes an age-related reduction and in the elderly both spontaneous GH secretion and IGF-I levels are frequently low overlapping with those usually recorded in GH deficient patients. Hypoactivity of the GH-IGF-I axis could explain age-related changes in body composition, function and metabolism, as also indicated by evidence that treatment with rhGH reverses these alterations. The mechanisms underlying the hypoactivity of the GH-IGF-I axis in the aged likely include changes in nutrition and lifestyle, e.g. reduction of physical exercise. However, alterations of neurohormonal hypothalamic control of GH secretion, including reduced activity of GHRH-secreting neurons and somatostatinergic hyper-activity, seem to play a major role. The exaggerated somatostatinergic hyperactivity could be due, in turn, to the impairment of cholinergic activity found in the aging brain. Age-related variations in the activity of other neurotransmitters, such as catecholamines, amino acids, e.g. arginine, neuropeptides, e.g. galanin and/or a putative natural GHRP-like ligand, could play a key role in causing the reduced activity of the GH-IGF-I axis. It is still unclear whether it is of benefit to restore GH secretion in aging. As the pituitary GH releasable pool is preserved in the elderly, it would be more appropriate to increase GH by GH secretagogues such as the new synthetic GH-releasing peptides (GHRPs) or non-peptidyl GHRP mimetics which are active even with oral administration.

Aging↗

Metabolic modulation of the growth hormone-releasing activity of hexarelin in man.

Hexarelin (His-D-2-methyl-Trp-Ala-Trp-D-Phe-Lys-NH2) is a new potent synthetic growth hormone (GH)-releasing hexapeptide. The mechanism of action of hexarelin in man has never been evaluated. Hexarelin may act directly on specific pituitary receptors and indirectly on the hypothalamus. To elucidate its mechanism of action in man, we studied the interaction of hexarelin with glucose and free fatty acids (FFA), two metabolic factors known to inhibit both basal and GH-releasing hormone (GHRH) stimulated GH secretion. Glucose is thought to inhibit GH secretion via stimulation of endogenous somatostatin release, whereas FFA could also act directly on somatotrope cells. Therefore, we investigated the effect of oral glucose (100 g) and lipid-heparin infusion (250 mL of a 10% lipid solution + 2,500 U heparin) on the GH response to a maximal dose (2 micrograms/kg intravenously [IV]) of hexarelin or GHRH in six normal men. Hexarelin elicited a clear-cut GH response (mean +/- SEM; peak, 62.6 +/- 8.0 micrograms/L) that was higher (P < .01) than that observed after GHRH (peak, 19.8 +/- 2.4 micrograms/L). Although similar increases in plasma glucose were observed with the two peptides, oral glucose almost abolished the GH response to GHRH (peak, 5.6 +/- 0.9 micrograms/L, P < .01) while only blunting the somatotrope response to hexarelin (peak, 38.4 +/- 7.9 micrograms/L, P < .05). Similarly, lipid-heparin infusion nearly abolished the GH response to GHRH (peak, 4.9 +/- 1.0 micrograms/L, P < .01) while only blunting the somatotrope response to hexarelin (peak, 34.2 +/- 4.5 micrograms/L, P < .05).(ABSTRACT TRUNCATED AT 250 WORDS)

Administration, Oral↗

Blunted GH response to growth hormone-releasing hormone (GHRH) alone or combined with arginine in non-insulin-dependent diabetes mellitus.

An increased spontaneous and stimulated growth hormone (GH) secretion is well documented in insulin-dependent diabetes mellitus. On the contrary, in non-insulin-dependent diabetes mellitus (NIDDM) conflicting results arise from literature. In 14 patients with NIDDM, 7 normal weight (NWD) and 7 obese (OD), we investigated the somatotrope responsiveness to GHRH (1 microgram/kg) alone or combined with arginine (ARG, 0.5 g/kg), which is able to enhance the GH response to GHRH, probably by inhibiting somatostatin release from hypothalamus. Baseline IGF-I, IRI FFA and glucose levels were also determined. Twelve healthy normal subjects (NS) and 12 obese patients (OP) were evaluated as control groups. GH but not IGF-I levels were higher (p < 0.05) in NS than in OP (1.5 +/- 0.5 vs 0.5 +/- 0.2 microgram/l). Insulin levels were higher (p < 0.05) in OP than in NS, NWD and OD (18.7 +/- 1.8 vs 8.7 +/- 0.5, 6.4 +/- 1.9 and 11.8 +/- 1.2 microU/l). FFA were higher (p < 0.05) in NWD. OD and OP than in NS (0.69 +/- 0.04, 0.70 +/- 0.04 and 0.65 +/- 0.06 vs 0.39 +/- 0.03 mmol/l). Plasma glucose was higher (p < 0.05) in diabetic patients than in normal and obese subjects. GH responses to GHRH in NWD, OD and OP were similar (AUC: 221.6 +/- 33.3, 206.0 +/- 35.9 and 177.2 +/- 57.3 micrograms/l/min, respectively) and all lower (p < 0.05) than that in NS (776.7 +/- 206.5 micrograms/l/min). ARG determined a significant increase of GHRH-induced GH release in all groups (p < 0.01).(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Short-term fasting in obesity fails to restore the blunted GH responsiveness to GH-releasing hormone alone or combined with arginine.

OBJECTIVE: Fasting is known to clearly increase both spontaneous and GHRH-stimulated GH secretion in normal subjects and this effect is likely to be due to hypothalamic mechanism(s). Our aim was to clarify the effect of a 3 or 4-day fast, on the GH response to GHRH alone or combined with arginine, an amino acid probably acting via inhibition of hypothalamic somatostatin release. DESIGN: Two tests with GHRH (1 microgram/kg i.v.), administered either alone or in combination with arginine (ARG, 0.5 g/kg i.v.) were performed, in a randomized order at least 3 days apart. In obese women the two tests were repeated after a 3 or 4-day fast. PATIENTS: Seven obese women (OB, aged 17-54 years, BMI 42.4 +/- 3.6 kg/m2, waist-hip ratio (WHR) 0.85 +/- 0.01) and ten healthy women, as control subjects (CS, aged 20-44 years, BMI 23.1 +/- 1.1 kg/m2, WHR 0.79 +/- 0.01) were studied. MEASUREMENTS: Serum GH and IGF-I levels were measured by radioimmunoassay. The GH secretory responses were expressed either as absolute values (mU/l) or as areas under the curve (AUC, mU/l/h) calculated by trapezoidal integration. IGF-I concentrations were expressed as absolute values (microgram/l) with reference to a pure recombinant IGF-I preparation. Results are expressed as mean +/- SEM. RESULTS: Basal GH and IGF-I levels in OB were lower than in CS (0.8 +/- 0.2 vs 4.8 +/- 1.0 mU/l, P < 0.0001 and 120.1 +/- 21.4 vs 188.7 +/- 13.1 micrograms/l, P < 0.02, respectively). The GHRH-induced GH rise in OB was lower (P < 0.00001) than in CS (AUC 340.2 +/- 81.0 vs 2125.0 +/- 199.6 mU/l/h). ARG increased the GHRH-induced GH rise in both groups, but in OB the GH response to ARG+GHRH (1458.4 +/- 439.0 mU/l/h, P < 0.03 vs GHRH alone) remained lower (P < 0.0001) than in CS (6396.2 +/- 772.2 mU/l/h, P < 0.01 vs GHRH alone). In spite of a reduction in body weight and IGF-I, insulin and glucose levels, in OB fasting failed to modify both the basal GH levels and the somatotroph responsiveness to GHRH when administered either alone or combined with ARG. An increase in free fatty acids (FFA) was also found after fasting. CONCLUSIONS: The results of this study demonstrate that in obesity the somatotroph hyporesponsiveness to GHRH, either alone or combined with arginine, is not improved by short-term fasting. As fasting is considered a CNS mediated stimulus to GH secretion, its ineffectiveness in obesity does not support a hypothalamic pathogenesis and suggests that long standing metabolic alterations, such as hyperinsulinaemia and/or elevated free fatty acids, could play a major role in causing GH insufficiency in obese patients.

Adult↗

Prolactin receptors in human pituitary adenomas.

OBJECTIVE: In the rat, prolactin receptors (PRL-R) have been identified in normal pituitary cells and in anterior pituitary tumours induced by oestradiol. No published data are available concerning PRL-R in the human pituitary. The aim of our study was therefore to detect the presence of PRL-R in the normal human pituitary gland and human pituitary adenomas. DESIGN: Evaluation of free and total PRL-R in the normal pituitary gland and different pituitary tumours characterized by immunocytochemical analysis. PATIENTS: Twenty-six unselected patients (14 M, 12 F) who underwent surgery for pituitary adenoma (3 prolactinomas, 4 GH-PRL adenomas, 5 GH adenomas, 1 ACTH adenoma, 9 glycoprotein and/or alpha-subunit adenomas, 4 null cells adenomas) were studied. Nine pituitaries from subjects whose death was unrelated to brain and endocrine diseases, were also studied as a control group in the PRL binding studies. MEASUREMENTS: Free PRL-R in microsomal membranes were determined by in-vitro radioreceptor assay using 125I-labelled human PRL as ligand. Total PRL-R were also measured in the same membrane fractions by removing endogenous PRL bound to its receptors using 4 M MgCl2. Serum PRL levels were also evaluated in all patients before surgery using an IRMA method. RESULTS: Specific binding values for PRL (free PRL-R) were 0.39 +/- 0.03% (range 0-1.96%) in the pituitary adenomas. These binding values were identical to those observed in normal pituitaries (0.38 +/- 0.07%, range 0.1-0.78%). Elevated PRL binding (1.25% and 1.96%) was found in two patients with PRL secreting adenomas and very high serum PRL levels (5768 and 11240 mU/I. No PRL binding was shown in 4 patients. Treatment of membranes with 4 M MgCl2 increased the specific binding (total PRL-R) in both pituitary tumours (0.5 +/- 0.11%; P < 0.001) and normal pituitaries (0.47 +/- 0.07%; P < 0.02). CONCLUSIONS: Our data have demonstrated the presence of prolactin receptors in normal cadaveric pituitary and in most pituitary adenomas, irrespective of histological classification. In particular, elevated prolactin receptor levels were shown in PRL-secreting tumours from patients with markedly increased serum PRL levels. Our study may support several lines of experimental evidence for a specific functional role for PRL in the growth of some pituitary adenomas.

Adenoma↗

In obesity the somatotrope response to either growth hormone-releasing hormone or arginine is inhibited by somatostatin or pirenzepine but not by glucose.

It is known that spontaneous and stimulated GH secretion is reduced in obesity. On the other hand, it has been recently reported that, in obese subjects, plasma GH levels did not change during a hyperglycemic clamp. To further study the sensitivity of somatotrope cells to inhibitory influences in obesity, we studied the effect of somatostatin, pirenzepine, or glucose on the GH response to GHRH or arginine in 32 obese patients and 30 controls. Basal GH levels were lower in obese than in normal subjects (1.0 +/- 0.6 vs. 4.8 +/- 0.7 micrograms/L, P < 0.05), while insulin-like growth factor-I levels were similar in both groups (137.3 +/- 13.2 vs. 138.8 +/- 12.2 micrograms/L). In obese as well as in control subjects pirenzepine abolished the GH response to either GHRH (AUC0-120: 43.7 +/- 9.6 vs. 258.3 +/- 59.9 micrograms/L/h, P < 0.04 and 113.0 +/- 75.0 vs. 870.5 +/- 255 micrograms/L.h, P < 0.01, respectively) or arginine (6.5 +/- 2.5 vs. 118.7 +/- 55.9 micrograms/L.h, P < 0.05 and 47.7 +/- 7.3 vs. 334.0 +/- 157.5 micrograms/L.h, P < 0.01, respectively). Differently from pirenzepine, glucose blunted the GH response to either GHRH or arginine in control subjects (260.8 +/- 38.3 vs. 479.5 +/- 83.9 micrograms/L.h, P < 0.03 and 294.8 +/- 46.3 vs. 625.1 +/- 139.1 micrograms/L.h, P < 0.05, respectively), but failed to modify it in obese patients (193.7 +/- 39.4 vs. 172.4 +/- 33.6 micrograms/L.h and 121.1 +/- 43.4 vs. 155.1 +/- 39.7 micrograms/L.h, respectively). On the other hand, somatostatin deeply blunted the GHRH-induced GH release in obese patients (58.5 +/- 25.4 vs. 548.7 +/- 196.6 micrograms/L.h, P < 0.05) as well as in controls (181.4 +/- 44.4 vs. 759.7 +/- 46.6 micrograms/L.h, P < 0.04). In conclusion, our results show that, in obesity, the stimulated GH release is refractory to the inhibitory effect of glucose but not of pirenzepine, in spite of their likely common mechanism of action, i.e. increase of hypothalamic somatostatin release. Exogenous somatostatin is able to abolish GH secretion both in normal and obese subjects. These data suggest the existence of a peculiar inhability of hyperglycemia to trigger somatostatinergic release in obesity.

Adult↗

Effect of galanin on basal and stimulated secretion of prolactin, gonadotropins, thyrotropin, adrenocorticotropin and cortisol in humans.

Galanin enhances both baseline and growth hormone-releasing hormone (GHRH)-induced GH secretion both in animals and in man. Although galanin has a clear influence on the secretion of other anterior pituitary hormones in animals, in man it increases prolactin (PRL) slightly but does not affect spontaneous thyrotropin (TSH), luteinizing hormone (LH), follicle-stimulating hormone (FSH) or adrenocorticotropin (ACTH) secretion. The aim of our study was to verify the effect of galanin on basal and releasing hormone-stimulated release of gonadotropins, PRL, TSH, ACTH and cortisol secretion. As GH release has been shown to be inhibited by corticotropin-releasing hormone (CRH), we also studied the effect of CRH on galanin-stimulated GH increase. The effect of porcine galanin (15 micrograms/kg iv infused in 60 min) alone and in combination with thyrotropin-releasing hormone (TRH, 200 micrograms iv bolus), CRH (100 micrograms iv bolus) and gonadotropin-releasing hormone (GnRH, 100 micrograms iv bolus) on GH, PRL, TSH, ACTH, cortisol, FSH and LH secretion in seven normal young women (aged 25-30 years) was studied. Galanin infusion caused an increase in serum GH levels (p < 0.02) but failed to modify significantly the spontaneous PRL, LH, FSH, TSH, ACTH and cortisol secretion. The combined administration of TRH, GnRH and CRH caused a significant increase in PRL (p < 0.02), LH (p < 0.02), FSH (p < 0.02), TSH (p < 0.02), ACTH (p < 0.02) and cortisol (p < 0.05), but not in GH levels.(ABSTRACT TRUNCATED AT 250 WORDS)

Adrenocorticotropic Hormone↗

Effect of arginine and pyridostigmine on the GHRH-induced GH rise in obesity and Cushing's syndrome.

OBJECTIVES: The aim of this work was to clarify the mechanisms underlying growth hormone (GH) hyposecretion in Cushing's syndrome (CS) and in obesity. We studied the GH response to GH-releasing hormone (GHRH) alone and combined with arginine or pyridostigmine, two substances likely to inhibit hypothalamic somatostatin release. DESIGN: Three tests with GHRH alone (1 microgram/kg i.v. at 0 min) and combined with arginine (ARG, 0.5 g/kg infused over 30 min) or pyridostigmine (PD, 120 mg orally at -60 min) were performed 3 days apart and in random order in eight women with CS (five with ACTH-dependent and three with ACTH-independent hypercortisolism, age 18-56, BMI 26.1 +/- 1.5 Kg/m2) and 11 with OB (age 17-54, BMI 42.9 +/- 2.2 Kg/m2). Eleven normal women (age 23-50, BMI 21.9 +/- 0.3 Kg/m2) were studied as controls (C). MEASUREMENTS: Serum GH and IGF-I levels were measured by radioimmunoassay. The GH secretory responses were expressed either as absolute values (micrograms/L) or as areas under the curve (AUC, micrograms/L/h) calculated by trapezoidal integration. IGF-I concentrations were expressed as absolute values (micrograms/L) with reference to a pure recombinant IGF-I preparation. RESULTS: Basal GH levels in CS were similar to those registered in OB (mean +/- s.e.m. 0.7 +/- 0.1 vs 0.9 +/- 0.2 microgram/L) and lower than in C (3.4 +/- 0.5 microgram/L, P < 0.00001). On the other hand, IGF-I levels were similar in all groups. The GHRH-induced GH rise in CS was lower, though not significantly, to that observed in OB (AUC: 65.6 +/- 13.2 vs 192.5 +/- 61.7 microgram/L/h) and both GH responses were significantly lower than that of C (1029.9 +/- 98.0 micrograms/L/h, P < 0.00001). ARG enhanced the GHRH-induced GH release in CS (331.9 +/- 51.9 micrograms/L/h vs GHRH alone, P < 0.0001), OB (852.4 +/- 162.1 micrograms/L/h, P < 0.0001) and C (3362.6 +/- 386.0 micrograms/L/h, P < 0.0002). However, the GH response to GHRH plus ARG in CS was lower (P < 0.002) than that in OB which, in turn, was lower than that in C (P < 0.00001). Pyridostigmine significantly enhanced the GHRH-induced GH rise in C (2808.5 +/- 221.2 micrograms/L/h, P < 0.00001) and, to a lesser extent, in OB (627.3 +/- 84.7 micrograms/L/h, P < 0.0002) but not in CS (102.9 +/- 25.0 micrograms/L/h). CONCLUSIONS: Our results indicate that the GH releasable pool is reduced in obesity and, to an even greater extent, in Cushing's syndrome. The inability of pyridostigmine and arginine to restore a normal GH response to GHRH in these conditions makes the existence of a hypothalamic somatostatinergic hyperactivity unlikely.

Adolescent↗

Double blind randomized study using oral or injectable bromocriptine in patients with hyperprolactinaemia.

OBJECTIVE: A new long-acting injectable form of bromocriptine has become available for long-term treatment of hyperprolactinaemic patients. The objective of this study was to compare efficacy and tolerability of injectable and oral forms of bromocriptine. DESIGN: A double-blind randomized study. All patients received either one injection of bromocriptine 50 mg intramuscularly and placebo tablets for 28 days (Group A) or one placebo injection and oral bromocriptine 7.5 mg daily for 28 days (Group B). PATIENTS: Twenty-three (12 patients for Group A and 11 patients for Group B) hyperprolactinaemia patients with (19 patients) or without (4 patients) CT/MRI evidence of tumour were studied. MEASUREMENTS: Plasma PRL levels and serum bromocriptine levels were assessed during a follow-up of 42 days. MRI and/or CT were evaluated before and 28 days after the beginning of the study. RESULTS: All patients had significant reductions of PRL levels from 1000 h and 1100 h of day 1 to 2000 h of day 35. Normoprolactinaemia was shown in eight patients of Group A and six of Group B on days 1-28. Normal PRL levels were still present in five patients of Group A and in one patient of Group B on day 35; only three patients of Group A had normoprolactinaemia on day 42. A significantly greater decrease in Group A in comparison with Group B was shown at 1200 h on day 1 and at all times as a percentage decrease from basal levels. Significantly higher levels of bromocriptine were shown in Group A at all timepoints studied. No difference was shown in tolerability and incidence of side-effects. CONCLUSION: Our data show that injectable bromocriptine more frequently induced a prolonged normoprolactinaemia than did the oral drug. Moreover, bromocriptine levels released during injectable bromocriptine were significantly higher than during oral bromocriptine. On the other hand no difference was shown in the tolerability of bromocriptine according to the route of administration.

Administration, Oral↗

Impaired prolactin response to arginine in patients with hyperthyroidism.

OBJECTIVE: Reduced PRL responses to TRH or dopamine antagonists have been described in hyperthyroid patients. Arginine stimulates PRL secretion through pathways other than the activation of TRH receptors or dopamine-dependent mechanisms. We therefore investigated PRL responses to arginine in patients with hyperthyroidism. DESIGN: L-Arginine (30 g infused over 30 minutes) was administered at time zero. SUBJECTS: Sixteen patients with untreated hyperthyroidism due to Graves' disease (8 female and 8 male), with a mean age (+/- SE) of 31.3 +/- 1.4 years (range 23-42), and 12 normal subjects (6 female and 6 male, ages 30.1 +/- 2.1 years, range 22-47) were studied. MEASUREMENTS: Prolactin was measured by RIA between -30 and 120 minutes, at 15-minute intervals. RESULTS: Basal PRL levels were similar in the hyperthyroid patients and normal control subjects. The hyperthyroid women showed blunted PRL responses compared to normal women (peak PRL levels, 364 +/- 44 mU/l, vs 760 +/- 156, P < 0.02). PRL responses to arginine, small but clearly detectable in normal men, were completely abolished in hyperthyroid men (peak PRL levels, 248 +/- 48 mU/l, vs 112 +/- 14, P < 0.01). CONCLUSIONS: PRL responses to arginine are impaired in hyperthyroid patients. Therefore, arginine should be added to the list of PRL stimuli whose responses are blunted in hyperthyroidism. Inhibition of PRL gene expression, and thus reduced pituitary PRL synthesis and storage, may explain why PRL responses to all secretagogues are reduced in these patients.

Adult↗

Arginine and growth hormone-releasing hormone restore the blunted growth hormone-releasing activity of hexarelin in elderly subjects.

Although both spontaneous and stimulated GH secretion undergo an age-related decline, the secretory capacity of somatotrope cells is preserved in human aging. In the present study we compared the GH responses to hexarelin, GHRH, and the combined administration of hexarelin and GHRH or arginine in young and elderly subjects. Thirteen young (24- to 30-yr-old) and 16 elderly (65- to 84-yr-old) normal males were divided into 2 groups. The first group (7 young and 8 elderly subjects) received the following as single iv injections during 3 different treatment sessions: hexarelin (2 micrograms/kg), GHRH (2 micrograms/kg), or hexarelin (2 micrograms/kg) plus GHRH (2 micrograms/kg). The second group (6 young and 8 elderly subjects) was administered single iv injections of hexarelin (2 micrograms/kg) or hexarelin (2 micrograms/kg) plus arginine (0.5 g/kg) during 2 different treatment sessions. In both groups basal IGF-I levels in the elderly were lower than those in young subjects (114.5 +/- 18.7 vs. 211.5 +/- 19.1 micrograms/L; P < 0.001). In the first group the GH response to hexarelin was greater in young compared to elderly subjects (area under the curve from 0-120 = 4849 +/- 601 vs. 2112 +/- 683 micrograms.min/L; P < 0.001). GHRH elicited a lower GH response than that induced by hexarelin in both young (1455 +/- 102 micrograms/h.L; P < 0.02) and elderly subjects (563 +/- 87 micrograms/min.L; P < 0.02). GHRH potentiated the somatotrope response to hexarelin in both young (7725 +/- 503 micrograms/min.L; P < 0.02) and elderly subjects (3895 +/- 612 micrograms/min.L; P < 0.02), but to a lesser extent in the latter (P < 0.001). In the second group, the GH response induced by hexarelin was also higher in young subjects than in elderly subjects (4819 +/- 668 vs. 1649 +/- 459 micrograms/min.L; P < 0.001). The GH response to hexarelin was potentiated by arginine in elderly (4139 +/- 1057 micrograms/min. L; P < 0.001), but not in young subjects (4743 +/- 774 micrograms/min.L). This study shows that the maximal effective dose of hexarelin releases more GH than the maximal effective dose of GHRH in both normal young and elderly subjects. The effect of hexarelin on GH secretion is age dependent, and the GH response to the combined administration of hexarelin and GHRH was significantly higher in young subjects compared to elderly subjects. Arginine does not potentiate the GH response to hexarelin in young subjects, whereas it significantly enhances it in elderly subjects.(ABSTRACT TRUNCATED AT 400 WORDS)

Adult↗

Growth hormone-releasing activity of growth hormone-releasing peptide-6 is maintained after short-term oral pretreatment with the hexapeptide in normal aging.

The reduced activity of the growth hormone (GH)-insulin-like growth factor I (IGF-I) axis in aging may contribute to changes in body composition. As this GH insufficiency is due to hypothalamic pathogenesis, the availability of GH-releasing peptides (GHRPs), such as GHRP-6 (His-D-Trp-Ala-Trp-D-Phe-Lys-NH2) which is active even after oral administration, might be useful to restore it. The aim of our study was to verify the effectiveness of oral administration of GHRP-6 in normal elderly subjects and to investigate whether its GH-releasing activity is maintained or vanishes after short-term oral treatment. Seven normal elderly women (aged 65-82 years) were studied. The effect of oral administration of 300 micrograms/kg GHRP-6 on GH secretion was investigated before and after 4 days of treatment with the hexapeptide given twice daily. The GH response to the maximal effective dose of GHRH (1 microgram/kg i.v.) also was studied. Before treatment, oral administration of 300 micrograms/kg GHRP-6 elicited a clear GH rise (peak 10.7 +/- 3.3 micrograms/l; AUC 353.1 +/- 90.6 micrograms.l-1.h-1), which was significantly higher (p < 0.01) than that induced by intravenous GHRH (peak 5.1 +/- 1.5 micrograms/l; AUC 106.5 +/- 43.9 micrograms.l-1.h-1). After 4 days of treatment with GHRP-6, the GH response to the hexapeptide was maintained, with a trend towards an increase (peak 16.8 +/- 2.9 micrograms/l; AUC 499.8 +/- 107.2 micrograms.l-1.h-1). The IGF-I levels were not increased significantly after treatment (77.1 +/- 8.4 vs 84.1 +/- 12.2 micrograms/l).(ABSTRACT TRUNCATED AT 250 WORDS)

Aged↗

Chorea due to hyperthyroidism in old age. A case report.

The authors discuss the case of an elderly female patient with thyrotoxicosis and chorea. T3 and T4 serum values were high. Since the chorea disappeared with euthyroidism but reappeared whenever there was a further increase in T3 and T4, its relationship on hyperthyroidism and its reversibility are clearly demonstrated. The chorea therefore appears to be another clinical condition present in hyperthyroidism.

Aged↗