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Biomedical subjects

F Camanni

Publications and source records attributed to F Camanni.

At least 37 records · Page 2Linked to original sources

Growth hormone deficiency in the transition adolescent: should treatment be continued in adult life?

Adults with growth hormone (GH) deficiency (GHD) have impaired health, which improves with GH replacement. GHD in adulthood leads to impairment in body composition and structure functions as well as to deranged lipoprotein and carbohydrate metabolism leading to increased cardiovascular morbidity. Therefore the transition adolescent in whom severe GHD is confirmed has to continue GH replacement with an appropriate age-related dosage. All short children who have been treated with rhGH for classical and non-classical GHD should be suspected as potentially GHD in adulthood though only in classical organic and idiopathic forms is severe GHD likely to be confirmed. GHD must be shown biochemically by single provocative testing. Insulin-induced hypoglycemia (ITT) and GHRH + arginine are the tests of choice provided that appropriate cutoff limits are assumed; these tests show good specificity and sensitivity. Testing with GHRH + GH secretagogues is another reliable alternative. Low IGF-I levels can be definitive evidence of persistent severe GHD in patients with genetic GHD or panhypopituitarism, but normal IGF-I levels do not rule out severe GHD. Individual titration of the rhGH dose is recommended and measurement of IGF-I levels is needed for monitoring the adequacy of replacement. The mean GH dose for replacement in the transition adolescent, however, is still higher than in adulthood; after puberty the rhGH dose should be progressively decreased in the following years (probably up to 25 years old) in order to obtain optimal peak bone mass.

Adolescent↗

Preliminary evidence that Ghrelin, the natural GH secretagogue (GHS)-receptor ligand, strongly stimulates GH secretion in humans.

An endogenous ligand for the GH secretagogue-receptor (GHS-R) has been recently purified from rat and human stomach and named Ghrelin. It has been demonstrated that Ghrelin specifically stimulates GH secretion from rat pituitary cells in culture as well as in rats in vivo. In this preliminary study, in 4 normal adults [age (mean+/-SE): 28.6+/-3.5 yr; body mass index (BMI): 22.3+/-2.1 kg/m2] we administered 1.0 microg/kg Ghrelin or GHRH-29 to compare their GH-releasing activities in humans. In all subjects Ghrelin induced a prompt, marked and long-lasting increase in circulating GH levels (peak: 107.9+/-26.1 microg/l; AUC: 6503.1+/-1632.7 microg/l/h). The GH response to Ghrelin was clearly higher (p<0.05) than that after GHRH (peak: 22.3+/-4.5 microg/l; AUC: 1517.5+/-338.4 microg/l/h). In conclusion, this preliminary study shows that Ghrelin exerts a strong stimulatory effect on GH secretion in humans releasing more GH than GHRH.

Adult↗

Normal IGF-I and enhanced IGFBP-3 response to very low rhGH dose in patients with dilated cardiomyopathy.

Well-nourished patients with dilated cardiomyopathy (DCM) show slight reduction of mean basal IGF-I levels which, however, display a response to a rhGH dose as low as 5.0 microg/kg/day similar to that of age-matched control subjects (CS). To further investigate peripheral GH sensitivity, we studied the IGF-I and IGFBP-3 responses to 4-day s.c. 2.5 microg/kg/day rhGH administration, the lowest effective dose able to increase IGF-I levels in normal subjects, in 10 DCM patients [age (mean+/-SE): 57.6+/-1.0 yr, body mass index (BMI): 24.0+/-1.2 kg/m2, left ventricular ejection fraction: 26.2+/-3.2%, NYHA (New York Heart Association): I/0, II/4, III/4, IV/2] and in 9 age-matched healthy CS (age: 55.3+/-1.2 yr, BMI: 23.7+/-1.8 kg/m2). Basal IGF-I levels in DCM were lower though not significantly than those in CS (147.7+/-9.8 vs 174.7+/-17.0 microg/l). Basal IGFBP-3 levels in DCM were similar to those in CS (3.1+/-0.3 vs 2.7+/-0.2 mg/l). In CS 4-day rhGH increased IGF-I levels (222.4+/-14.9 microg/l; p<0.01 vs baseline) but did not modify IGFBP-3 levels (3.0+/-0.2 mg/l). In DCM IGF-I levels were increased by 4-day rhGH administration (175.7+/-11.0 microg/l; p<0.05 vs baseline) with a similar percent extent than in CS. On the other hand, in DCM, but not in CS, 4-day rhGH significantly increased IGFBP-3 levels (3.5+/-0.3 mg/l; p<0.05 vs baseline). Therefore, in conclusion, testing with the lowest effective rhGH dose further suggest that peripheral GH sensitivity in well-nourished DCM is preserved. On the other hand, DCM patients show enhanced IGFBP-3 sensitivity to stimulation by rhGH.

Cardiomyopathy, Dilated↗

Glucagon is an ACTH secretagogue as effective as hCRH after intramuscolar administration while it is ineffective when given intravenously in normal subjects.

It is widely accepted that glucagon stimulates GH, ACTH and cortisol release in humans, though the mechanisms underlying these effects are unclear. Aim of the present study was to evaluate the stimulatory effect of intramuscolar (i.m.) and intravenous (i.v.) glucagon (GLU) administration on ACTH, cortisol (F) and GH release in normal adult subjects and to compare its effect on hypothalamo-pituitary adrenal (HPA) axis with that of hCRH. To this goal, in 6 normal young women (26-32 yrs, 50-58 kg) we studied the ACTH and F responses to either i.m. or i.v. GLU (1 mg, approximately 0.017 mg/kg in subjects of 54.1 +/- 1.6 kg) administration as well as to i.v. hCRH (2.0 micrograms/kg) or placebo administration. The GH and glucose variations after GLU administration were also studied. I.v. GLU did not modify the spontaneous decrease of ACTH and cortisol levels observed after placebo. Conversely, i.m. GLU elicited clear-cut ACTH and F responses (peak vs baseline, mean +/- SEM: 53.0 +/- 15.2 vs 19.0 +/- 1.5 pg/ml, p < 0.05 and 222.3 +/- 23.8 vs 158.3 +/- 7.0 micrograms/l, p < 0.05) which were higher than those recorded after hCRH (28.1 +/- 4.6 vs 17.4 +/- 3.1 pg/ml, p < 0.02 and 182.7 +/- 22.8 vs 114.8 +/- 12.3 micrograms/l p < 0.02), though this difference did not attain statistical significance. Also GH rise was recorded after i.m. but not after i.v. GLU administration (11.6 +/- 3.4 vs 3.3 +/- 0.7 micrograms/l, p < 0.05). Thirty min after both i.v. and i.m. GLU administration glucose levels showed a similar increase followed by similar decrease. The intramuscular administration of GLU induced negligible side-effects in some subject (mild and transient nausea) which, on the contrary, were clear in all subjects after its intravenous administration (nausea, vomiting, tachycardia). In conclusion, glucagon "per se" is not an ACTH, cortisol and GH secretagogue. After intramuscular administration glucagon is a stimulus of HPA axis at least as effective as hCRH. The mechanisms underlying the ACTH, cortisol and GH responses to i.m. glucagon unlikely include glucose variations or stress.

Adrenocorticotropic Hormone↗

Reduction of the pituitary GH releasable pool in short children with GH neurosecretory dysfunction.

OBJECTIVES: The classical 'GH neurosecretory dysfunction' (GHNSD) refers to slowly growing children with normal GH responses to classical provocative tests but impaired spontaneous GH secretion over 24 h frequently leading to low IGF-I levels. Thus it has been assumed that these subjects have insufficiency of spontaneous GH secretion due to neuroendocrine abnormalities in spite of a normal releasable pool of GH. However, classical provocative tests do not reliably assess the maximal somatotroph capacity; thus it is still unclear if the GH pool is really preserved or not. GHRH + arginine test is more potent than the classical tests and evaluates the maximal secretory capacity of somatotroph cells. The GH response to this stimulus is reproducible and also independent of age and puberty. DESIGN AND PATIENTS: We studied the GH response to GHRH (1 microgram/kg iv) + arginine (ARG, 0.5 g/kg iv) in 19 short children with GHNSD (14 boys and 5 girls, age: 12.1 +/- 0.7 years, pubertal stages I-III, HV-SDS between -1.6 and -4.9; GH peak > 10 micrograms/l after classical stimuli but mean GH concentration (mGHc) < 3 micrograms/l). The results in GHNSD were compared with those in 38 short children with idiopathic or organic severe GHD (GHD, 29 boys and 9 girls, age: 11.2 +/- 0.6 years, pubertal stages I-III, HV-SDS between -1.8 and -4.4; GH peak < 10 micrograms/l after 2 classical provocative tests) and in 83 children with normal or familial short stature (NC, 59 boys and 24 girls, age: 11.5 +/- 0.3 years., pubertal stages I-III; HV-SDS > 25th centile, normal IGF-I levels). RESULTS: Mean IGF-I levels in GHNSD (121.9 +/- 20.3 micrograms/l) were lower (P < 0.001) than those in NC (270.3 +/- 13.8 micrograms/l) but higher (P < 0.001) than those in GHD (72.0 +/- 4.0 micrograms/l). The mean GH concentration (mGHc) in GHNSD (2.1 +/- 0.1 micrograms/l) was lower (P < 0.01) than that in NC (4.9 +/- 0.5 micrograms/l) but higher (P < 0.01) than that in GHD (1.5 +/- 0.2 micrograms/l). On the other hand, the mean peak GH response to GHRH + ARG in GHNSD (43.7 +/- 3.7 micrograms/l) was markedly higher (P < 0.001) than that in GHD (8.2 +/- 0.9 micrograms/l) but significantly lower (P < 0.01) than that in NC (60. 4 +/- 2.7 micrograms/l). All GHD patients had peak GH responses to GHRH + ARG below the 3rd centile limit of normality (20 micrograms/l), while all GHNSD patients had peak GH responses within the normal range. No significant correlation was found between GH peak after GHRH + ARG, mGHc and IGF-I levels in each group. CONCLUSION: Our study demonstrates that short children with 'GH neurosecretory dysfunction' show reduction in the GH releasable pool evaluated by the provocative and potent GHRH + arginine test. However, the peak GH response to a single GHRH + arginine test in GH neurosecretory dysfunction is always within the normal range indicating that this test as well as classical stimuli does not distinguish normal subjects from GH neurosecretory dysfunction.

Arginine↗

Retesting young adults with childhood-onset growth hormone (GH) deficiency with GH-releasing-hormone-plus-arginine test.

Within an appropriate clinical context, severe GH deficiency (GHD) in adults has to be defined biochemically by provocative testing of GH secretion. Patients with childhood-onset GHD need retesting in late adolescence or young adulthood to verify whether they have to continue recombinant human GH treatment. GHRH + arginine (GHRH+ARG) is the most reliable alternative to the insulin-induced hypoglycemia test (ITT) as a provocative test for the diagnosis of GHD in adulthood, provided that appropriate cut-off limits are assumed (normal limits, 16.5 microg/L as 3rd and 9.0 microg/L as 1st centile). We studied the GH response to a single GHRH (1 microg/kg iv) + ARG (0.5 g/kg iv) test in 62 young patients who had undergone GH replacement in childhood, based on the following diagnosis: 1) organic hypopituitarism with GHD (oGHD) In = 18: 15 male (M), 3 female (F); age, 26.8+/-2.2 yr; GH peak < 10 microg/L after two classical tests]; 2) idiopathic isolated GHD (iGHD) [n = 23 (15 M, 8 F); age, 23.0+/-1.5 yr; GH peak < 10 microg/L after two classical tests]; and 3) GH neurosecretory dysfunction (GHNSD) [n = 21 (10 M, 11 F); age, 25.1+/-1.6 yr; GH peak > 10 microg/L after classical test but mGHc < 3 microg/L]. The GH responses to GHRH+ARG in these groups were also compared with that recorded in a group of age-matched normal subjects (NS) [n = 48 (20 M, 28 F); age, 27.7+/-0.8 yr]. Insulin-like growth factor I levels in oGHD subjects (61.5+/-13.7 microg/L) were lower (P < 0.001) than those in iGHD subjects (117.2+/-13.1 microg/L); the latter were lower than those in GHNSD subjects (210.2+/-12.9 microg/L), which, in turn, were similar to those in NS (220.9+/-7.1 microg/L). The mean GH peak after GHRH+ARG in oGHD (2.8+/-0.8 microg/L) was lower (P < 0.001) than that in iGHD (18.6+/-4.7 microg/L), which, in turn, was clearly lower (P < 0.001) than that in GHNSD (31.3+/-1.6 microg/L). The GH response in GHNSD was lower than that in NS (65.9+/-5.5 microg/L), but this difference did not attain statistical significance. With respect to the 3rd centile limit of GH response in young adults (i.e. 16.5 microg/L), retesting confirmed GHD in all oGHD, in 65.2% of iGHD, and in none of the GHNSD subjects. With respect to the 1st centile limit of GH response (i.e. 9.0 microg/L), retesting demonstrated severe GHD in 94% oGHD and in 52.1% of iGHD. All oGHD and iGHD with GH peak after GHRH+ARG lower than 9 microg/L had also GH peak lower than 3 microg/L after ITT. In the patients in whom GHD was confirmed by retesting, the mean GH peak after GHRH+ARG was higher than that after ITT (3.4+/-0.5 vs. 1.9+/-0.4). In conclusion, given appropriate cut-off limits, GHRH+ARG is as reliable as ITT for retesting patients who had undergone GH treatment in childhood. Among these patients, severe GHD in adulthood is generally confirmed in oGHD, is frequent in iGHD, but never occurs in GHNSD.

Adolescent↗

Two-year follow-up of acromegalic patients treated with slow release lanreotide (30 mg).

Pharmacotherapy of acromegaly has been improved in recent years as new long-acting somatostatin analogs have became available; they have been suggested as an alternative treatment to pituitary surgery and radiotherapy. To avoid the inconvenience of multiple daily injections during long-term therapy, a slow release formulation of lanreotide (LAN), to be administered im at a dose of 30 mg every 7-14 days, has been introduced in the therapeutic management. The suppressive effects of a short-term LAN treatment on GH and insulin-like growth factor I (IGF-I) hypersecretion were shown to be similar to those obtained with sc octreotide. However, scant data have been reported concerning a long-term treatment with this drug. In the present study the efficacy and tolerability of a 24-month LAN treatment were evaluated in 118 active acromegalic patients; 71 had been previously operated on and treated with s.c. octreotide (operated patients), 24 previously operated on had been irradiated and treated with s.c. octreotide (irradiated patients), and the remaining 23 were newly diagnosed (de novo patients). The efficacy was considered on the basis of controlled GH (fasting, <7.5 mU/L; glucose-suppressed, <3.0 mU/L) and IGF-I (age-adjusted normal values) secretion. In the 118 patients as a whole, circulating GH and IGF-I levels were significantly decreased during the 24-month LAN treatment (P < 0.0005 at all time points vs. basal value). After 24 months of therapy, controlled GH and IGF-I levels were achieved in 64%, 37%, and 78% and in 51%, 37%, and 70% of operated, irradiated, and de novo patients, respectively. A reduction in tumor size was documented in 5 of 23 de novo patients (22%). Among the 84 operated/irradiated with evident tumor remnant, significant shrinkage was documented in 5 patients (5.9%). Treatment was well tolerated by the majority of patients. Only 2 patients (1.7%) withdrew from LAN treatment due to severe side effects. In conclusion, a 24-month treatment with slow release lanreotide (30 mg) is effective in reducing GH and IGF-I levels; furthermore, in de novo patients it induces disease control in 70% of patients and causes tumor shrinkage in 22% of them, with excellent compliance. These data suggest that LAN can be used in long-term treatment of acromegalic patients.

Acromegaly↗

Stimulatory effect of adrenocorticotropin on cortisol, aldosterone, and dehydroepiandrosterone secretion in normal humans: dose-response study.

The short ACTH test is widely used in clinical practice for the diagnosis of adrenal insufficiency. It is classically performed administering 250.0 microg ACTH(1-24) although 1.0 microg ACTH dose has been reported having maximal stimulatory effect on cortisol levels in normal subjects. We aimed to define the maximal and the minimal stimulatory ACTH dose on cortisol, aldosterone, and dehydroepiandrosterone (DHEA) in humans. To this goal, in 12 normal volunteers (6 males and 6 females; age, 22-34 yr; body mass index 20-25 kg/m2; body surface 1.6-1.9 m2), we studied the dose-response effect of eight ACTH doses (0.01, 0.03, 0.06, 0.125, 0.5, 1.0, 25.0, and 250.0 microg) on cortisol, aldosterone, and DHEA levels. Each ACTH dose administered at 0 min was followed by a second ACTH dose of 250.0 microg at +60 min. The cortisol delta areas under response curve (deltaAUCs) after all ACTH doses, apart from 0.01 microg, were significantly higher (P < 0.02) than that after placebo, showing a clear dose-response relationship (P < 0.001). The doses of 0.03 and 1.0 microg ACTH were the minimal and maximal effective doses, respectively. The cortisol response to 250.0 microg ACTH was not modified by pretreatment with 0.01, 0.03, and 0.06 microg ACTH doses, whereas it was progressively reduced by increasing the dose of ACTH pretreatment (P < 0.001). The aldosterone deltaAUCs to all but 0.01 microg ACTH doses were significantly higher (P < 0.02) than that after placebo, showing a clear dose-response relationship (P < 0.001). The dose of 0.03 microg was the minimal effective stimulating dose, whereas 25.0 microg showed the same aldosterone-releasing effect of 250.0 microg. The aldosterone response to 250.0 microg ACTH, preceeded by placebo, was not modified by pretreatment with 0.01 and 0.03 microg ACTH doses, whereas it was reduced by increasing the dose of ACTH pretreatment (P < 0.05-0.02). The DHEA deltaAUCs to all ACTH doses were significantly higher (P < 0.01) than that after placebo, showing a clear dose-response relationship (P < 0.001). The doses of 0.01 and 1.0 microg ACTH were the minimal and maximal effective dose, respectively. The DHEA response to 250.0 microg ACTH was not modified by pretreatment with 0.01, 0.03, 0.06, and 0.125 microg ACTH doses, whereas it was progressively reduced by pretreatment with 0.5, 1.0, and 25.0 microg ACTH doses (P < 0.01). In conclusion, these results show that an extremely low ACTH dose is needed to stimulate adrenal steroids and, among them, DHEA seems the most sensitive to corticotropin stimulation.

Adrenocorticotropic Hormone↗

Hypothalamic growth hormone-insulin-like growth factor-I axis across the human life span.

The activity of the growth hormone (GH)-insulin-like growth factor-I (IGF-I) axis undergoes marked variations across the human life span, mainly reflecting age-related changes in the neural control of somatotroph function. IGF-I secretion generally reflects GH status, except in newborns, who secrete high levels of GH but low levels of IGF-I. Changes in the gonadal steroid milieu, particularly estradiol, play a major role in the enhanced activity of the GH-IGF-I axis at puberty and probably reflect further changes in the neuroendocrine control of somatotroph secretion. The change in responsiveness of somatotrophs to various stimuli, including GHRH, is not as marked as the spontaneous secretion of GH at puberty. However, in childhood, somatotrophs are unusually refractory to the somatostatin-mediated negative GH autofeedback mechanism. Normal children show normal responsiveness to the stimulatory influence of alpha-adrenergic and cholinergic agonists, galanin and arginine, but the activating effect of these stimuli on somatotroph secretion is reduced in elderly individuals, with the notable exception of arginine. Arginine potentiates both spontaneous and GHRH-induced GH secretion to the same extent in normally growing children, adults and elderly individuals, indicating that the releasable pool of GH is generally preserved across the human life span. Thus, the reduction in spontaneous and GHRH-induced GH secretion in the elderly probably reflects age-related changes in neurotransmitter control, leading to GHRH hypoactivity and absolute or relative somatostatin hyperactivity in the aged hypothalamus. Cholinergic impairment in the aging brain probably involves hypothalamic pathways and leads to decreased activity of the GH-IGF-I axis in normal and elderly individuals, as well as in individuals with premature brain aging. However, there is evidence indicating that age-related variations in the activity of the natural GH-secretagogue ligand(s) at the hypothalamic level could also play a role in the age-dependent changes in the GH-IGF-I axis.

Adult↗

Comparisons among old and new provocative tests of GH secretion in 178 normal adults.

Classical provocative stimuli of GH secretion such as insulin-induced hypoglycaemia, arginine, clonidine, glucagon and levodopa have been widely used in clinical practice for approximately 30 years. On the other hand, in the last 10 years new potent stimuli of GH secretion have been proposed, but an extensive comparison with the classical ones has rarely been performed, at least in adults. In order to compare the GH-releasing activity of old and new provocative stimuli of GH secretion, and to define the normative values of the GH response, in 178 normal adults (95 males, 83 females; age range: 20-50 years, all within +/-15% of their ideal body weight), we studied the GH response to: insulin-induced hypoglycaemia (ITT, 0.1IU/kg i.v.), arginine (ARG, 0.5g/kg i.v.), clonidine (CLO, 300 microg/kg p.o.), glucagon (GLU, 1mg i.m.), pyridostigmine (PD, 120mg p.o.), galanin (GAL, 80pmol/kg per min), GH-releasing hormone (GHRH, 1 microg/kg i.v.), GHRH+ARG, GHRH+PD, hexarelin, a GH-releasing protein (HEX, 2 microg/kg i.v.) and GHRH+HEX (0.25 microg/kg i.v.). The mean (+/-s.e.m.) peak GH response to ITT (21.8+/-2.8, range: 3.0-84.0 microg/l) was similar to those to ARG (18.0+/-1.6, range: 2.9-39.5 microg/l) or GLU (20. 5+/-2.2, range: 10.6-36.9 microg/l) which, in turn, were higher (P<0. 001) than those to CLO (8.2+/-1.6, range: 0.3-21.5 microg/l), PD (9. 6+/-1.1, range: 2.2-33.0 microg/l) and GAL (9.3+/-1.1, range: 3.9-18. 3 microg/l). The GH response to GHRH (19.1+/-1.5, range: 2.7-55.0 microg/l) was similar to those after ITT, ARG or GLU but clearly lower than those after GHRH+ARG (65.9+/-5.5, range: 13.8-171.0 microg/l) and GHRH+PD (50.2+/-4.6, range: 17.7-134.5 microg/l) which, in turn, were similar. The GH response to HEX (55.3+/-5.5, range: 13.9-163.5 microg/l) was similar to those after GHRH+ARG and GHRH+PD but lower (P<0.001) than that after GHRH+HEX (86.0+/-4.3, range: 49. 0-125.0 microg/l) which was the most potent stimulus of GH secretion. In this adult population the third centile limits of peak GH response to various stimuli were the following: ITT: 5.3; ARG: 2.9; CLO: 1.5; GLU: 7.6; PD: 2.2; GAL: 4.0; GHRH: 5.0; GHRH+ARG: 17.8; GHRH+PD: 17.9; HEX: 21.6; GHRH+HEX: 57.1. These results confirm that, among classical provocative tests of GH secretion, ITT followed by ARG and GLU are the most potent ones and possess clear limits of normality. GHRH+ARG or PD and HEX are strong stimuli of GH secretion which, however, is maximally stimulated by a combination of GHRH and a low dose of HEX. It is recommended that each test is used with appropriate cut-off limits.

Adult↗

Interaction between glucagon and human corticotropin-releasing hormone or vasopressin on ACTH and cortisol secretion in humans.

OBJECTIVE: It is known that glucagon administration elicits ACTH and cortisol responses in humans, although this effect takes place after intramuscular or subcutaneous but not after the intravenous route of administration. The mechanisms underlying this stimulatory effect on corticotroph secretion are unknown but they are unrelated to glucose variations and stress-mediated actions. DESIGN AND METHODS: To throw further light on the stimulatory effect of i.m. glucagon on the pituitary-adrenal axis, using six normal young female volunteers (26-32 years, body mass index 19.7-22.5 kg/m(2)) we studied the interaction between glucagon (GLU; 0.017 mg/kg i.m.) and human corticotropin-releasing hormone (hCRH; 2.0 microg/kg i.v.) or vasopressin (AVP; 0.17 U/kg i.m.). The interactions between hCRH and AVP on the hypothalamo-pituitary-adrenal (HPA) axis and the GH response to GLU alone or combined with hCRH or AVP were also studied. RESULTS: GLU i.m. administration elicited a clear increase in ACTH (peak vs baseline, means+/-s.e.m.: 11.6+/-3.3 vs 4.2+/-0.3 pmol/l, P<0.05), cortisol (613.5+/-65.6 vs 436.9+/-19.3 nmol/l, P<0.05) and GH levels (11.6+/-3.4 vs 3.3+/-0.7 microg/l, P<0.05). The ACTH response to GLU (area under the curve: 426.4+/-80.9 pmol/l per 120 min) was higher than that to AVP (206.3+/-38.8 pmol/l per 120 min, P<0.02) and that to hCRH (299.8+/-39.8 pmol/l per 120 min) although this latter difference did not attain statistical significance. The GLU-induced cortisol response (28336.9+/-2430.7 nmol/l per 120 min) was similar to those after hCRH (24099.2+/-2075.2 nmol/l per 120 min) and AVP (21808.7+/-1948.2 nmol/l per 120 min). GLU and hCRH had an additive effect on ACTH (964.9+/-106.6 pmol/l per 120 min, P<0.02) and a less than additive effect on cortisol levels (35542.5+/-2720. 2 nmol/l per 120 min). Similarly, GLU and AVP had an additive effect on ACTH (825.6+/-139.6 pmol/l per 120 min, P<0.02) and an effect less than additive on cortisol levels (33059.2+/-1965.3 nmol/l per 120 min). The effects of GLU co-administered with hCRH or AVP were similar to those of the combined administration of hCRH and AVP on ACTH (906. 0+/-152.7 pmol/l per 120 min) and cortisol (34383.5+/-1669.2 nmol/l per 120min) levels. The GH response to GLU was not modified by hCRH or AVP. CONCLUSIONS: These results show that i.m. glucagon administration is a provocative stimulus of ACTH and cortisol secretion, at least as potent as hCRH and AVP. The ACTH-releasing effect of i.m. glucagon is not mediated by selective CRH or AVP stimulation but the possibility that both neurohormones play a role could be hypothesized.

Adrenocorticotropic Hormone↗

Interaction between glucagon and hexarelin, a peptidyl GH secretagogue, on somatotroph and corticotroph secretion in humans.

OBJECTIVE: Glucagon administration stimulates both somatotroph and corticotroph secretion in humans, although this happens only if glucagon is administered by the intramuscular route and not by the intravenous route. On the other hand, GH secretagogues (GHS) strongly stimulate GH and also possess ACTH-releasing activity. DESIGN AND METHODS: To clarify the mechanisms underlying the stimulatory effects of both glucagon and GHS on somatotroph and corticotroph secretion, we studied the GH, ACTH and cortisol responses to glucagon (GLU, 0.017 mg/kg i.m.) and Hexarelin, a peptidyl GHS (HEX, 2.0 microg/kg i.v.) given alone or in combination in 6 normal young volunteers (females, aged 26-32 years, body mass index 19.7-22.5 kg/m). RESULTS: GLU administration elicited a clear increase in GH (peak vs baseline, mean+/-S.E.M.: 11.6+/-3.4 vs 3. 3+/-0.7 microg/l, P<0.02), ACTH (11.6+/-3.3 vs 4.1+/-0.3 pmol/l, P<0. 02) and cortisol (613.5+/-65.6 vs 436.9+/-19.3 nmol/l, P<0.05) levels. HEX induced a marked increase in GH levels (55.7+/-19.8 vs 3. 7+/-1.9 microg/l, P<0.005) and also significant ACTH (5.7+/-1.1 vs 3. 4+/-0.6 pmol/l, P<0.01) and cortisol (400.2+/-31.4 vs 363.4+/-32.2 nmol/l, P<0.05) responses. The GH area under the curve (AUC) after HEX was clearly higher than after GLU (1637.3+/-494.0 vs 479.1+/-115. 7 microg/l/120 min, P<0.04) while HEX and GLU coadministration had a true synergistic effect on GH release (3243.8+/-687.5 microg/l/120 min, P<0.02). The ACTH and cortisol AUCs after HEX were lower (P<0. 02) than those after GLU (208.3+/-41.3 vs 426.3+/-80.9 pmol/l/120 min and 18 874.5+/-1626.1 vs 28 338.5+/-2430.7 nmol/l/120 min respectively). The combined administration of HEX and GLU had an effect which was less than additive on both ACTH (564.02+/-76.5 pmol/l/120 min) and cortisol (35 424.6+/-5548.1 nmol/l/120 min) secretion. CONCLUSIONS: These results show that the intramuscular administration of glucagon releases less GH but more ACTH and cortisol than Hexarelin. The combined administration of glucagon and Hexarelin has a true synergistic effect on somatotroph secretion but a less than additive effect on corticotroph secretion; these findings suggest that these stimuli act via different mechanisms to stimulate somatotrophs while they could have a common action on the hypothalamo-pituitary-adrenal axis.

Adrenocorticotropic Hormone↗

Relationships between IGF-I and age, gender, body mass, fat distribution, metabolic and hormonal variables in obese patients.

OBJECTIVE: To compare insulin-like growth factor-I (IGF-I) concentrations in obese and normal subjects, and evaluate the possible relationships between IGF-I concentrations and demographic, anthropometric, metabolic and hormonal variables in obese patients. SUBJECTS AND METHODS: 286 obese outpatients (OB, 234 female and 52 male; age 18-71 y, body mass index (BMI) > 27 kg/m2) were recruited. MEASUREMENTS: BMI, waist-to-hip ratio (WHR), serum basal and oral glucose tolerance test (OGTT)-stimulated glucose and insulin concentrations, IGF-I, basal growth hormone (GH), prolactin (PRL), androgens, thyrotropin (TSH), free triiodothyronine (fT3), free thyroxine (fT4), free fatty acids (FFA), triglycerides, total and high density lipoprotein (HDL)-cholesterol, 24h-urinary cortisol levels and blood pressure (BP) values were measured. IGF-I concentrations were also evaluated in a large population of 326 age-matched controls (controls, 228 women, 98 men; age 20-86 y, BMI < 25 kg/m2). RESULTS: IGF-I concentrations were lower in OB than in controls (age-adjusted mean: 21.6 vs 23.6 nmol/L, P < 0.03). However, individual IGF-I concentrations in OB were within the age-adjusted normal range. In both groups, IGF-I concentrations were gender-independent, and showed a simple negative correlation with age (r = -0.47). In OB, univariate analysis also shows that IGF-I concentrations were negatively correlated with BMI (r = -0.33), but not WHR, with both basal (r = -0.16) and OGTT-stimulated glucose levels (r = -0.17), as well as FFA levels (r = -0.19), and with both diastolic and systolic BP (both r = -0.17). In OB women, IGF-I concentrations positively correlated with PRL (r = 0.31), testosterone (r = 0.30), androstenedione (r = 0.30), and dehydroepiandrosterone-sulfate (DHEAS) concentrations (r = 0.41). No correlation was found with other variables. The multiple regression analysis showed that IGF-I concentrations were inversely and independently related to age and BMI only. CONCLUSIONS: In obesity, IGF-I concentrations are slightly reduced, but generally within the age-adjusted normal range. IGF-I concentrations in obesity show independent and negative relationships with age and BMI, but are not associated with fat distribution, insulin secretion, glucose tolerance, BP or risk indices for cardiovascular disease (CVD).

Adipose Tissue↗

Comparison of six months therapy with octreotide versus lanreotide in acromegalic patients: a retrospective study.

OBJECTIVE: We analysed the effects of 6-months' treatment with octreotide s.c. and lanreotide-SR on circulating GH and IGF-I levels in acromegaly. DESIGN: Open retrospective study. PATIENTS: Thirty-eight patients with active acromegaly (plasma IGF-I levels greater than 2 standard deviations for age-matched controls and increased serum GH levels not suppressible by oral glucose load) were studied. All patients received s.c. octreotide at a dose of 150-600 microg/day for six months as first therapy and subsequently, lanreotide i.m., 30-60 mg either at 14 or 10 day intervals, for 6 months. A 3 months' washout was applied before starting lanreotide treatment. MEASUREMENTS: Mean serum GH levels (from three samples), IGF-I, and clinical examination were performed before and 30, 60, 90 and 180 days after octreotide and lanreotide treatments. Safety tests, HbA1c and, thyroid function were evaluated every three months. RESULTS: Circulating GH and IGF-I levels were significantly reduced (P < 0.001) after one, three and six months of both octreotide and lanreotide treatment. The absolute values were lower and the percent decrease in serum GH levels obtained after octreotide treatment was significantly greater, at all scheduled assessments, than after lanreotide (P < 0.01). Serum IGF-I levels during octreotide were significantly lower only after the first month of therapy (P < 0.01). CONCLUSIONS: Our study shows that octreotide s.c. is able to induce an earlier reduction in IGF-I levels and a more marked reduction in GH levels than lanreotide. However, after six months of therapy the number of patients with safe GH levels and normal IGF-I age-matched levels, was similar with both drugs. Therefore we suggest that octreotide treatment be preferentially used in the short-term presurgical treatment, while lanreotide can be used in chronic therapy when better compliance is necessary.

Acromegaly↗

Dose-response study of GH effects on circulating IGF-I and IGFBP-3 levels in healthy young men and women.

The aim of our study was to define the dose-response effect of a short-term treatment with different recombinant human growth hormone (rhGH) doses (1.25, 2.5, 5.0, 10.0, and 20.0 micrograms . kg-1. day-1 for 4 days) on insulin-like growth factor I (IGF-I) and insulin-like growth factor-binding protein (IGFBP)-3 levels in 21 normal young adults of both sexes. The dose of 1.25 microgram/kg rhGH did not modify IGF-I levels. The dose of 2.5 micrograms/kg rhGH significantly increased IGF-I levels in men (P < 0.05) but not in women, whereas the higher doses increased IGF-I levels in both sexes (P < 0.002). IGFBP-3 levels were not modified by 1.25 or 2.5 micrograms/kg rhGH in either sex. On the other hand, 5.0 micrograms/kg increased IGFBP-3 levels in men (P < 0.05) but not in women, whereas the higher doses increased IGFBP-3 levels similarly in both sexes (P < 0.02). In conclusion, our results demonstrate that IGF-I and IGFBP-3 responses to rhGH are dose and sex dependent. However, IGFBP-3 is less sensitive than IGF-I to rhGH stimulation.

Adult↗

Endocrine and non-endocrine activities of growth hormone secretagogues in humans.

Growth hormone (GH) secretagogues (GHS) are synthetic peptidyl and non-peptidyl molecules which possess strong, dose-dependent and reproducible GH releasing effects as well as significant prolactin (PRL) and adrenocorticotropic hormone (ACTH) releasing effects. The neuroendocrine activities of GHS are mediated by specific receptors mainly present at the pituitary and hypothalamic level but also elsewhere in the central nervous system. GHS release GH via actions at the pituitary and (mainly) the hypothalamic level, probably acting on GH releasing hormone (GHRH) secreting neurons and/or as functional somatostatin antagonists. GHS release more GH than GHRH and the coadministration of these peptides has a synergistic effect but these effects need the integrity of the hypothalamo-pituitary unit. The GH releasing effect of GHS is generally gender-independent and undergoes marked age-related variations reflecting age-related changes in the neural control of anterior pituitary function. The PRL releasing activity of GHS probably comes from direct pituitary action, which indeed is slight and independent of both age and gender. The acute stimulatory effect of GHS on ACTH/cortisol secretion is similar to that of corticotropin releasing hormone (CRH) and arginine vasopressin (AVP). In physiological conditions, the ACTH releasing activity of GHS is mediated by central mechanisms, at least partially, independent of both CRH and AVP but probably involving GABAergic mechanisms. The ACTH releasing activity of GHS is gender-independent and undergoes peculiar age-related variations showing a trend towards increase in ageing. GHS possess specific receptors also at the peripheral levels in endocrine and non-endocrine human tissues. Cardiac receptors are specific for peptidyl GHS and probably mediate GH-independent cardiotropic activities both in animals and in humans.

Adrenocorticotropic Hormone↗

The inhibitory effect of alprazolam, a benzodiazepine, overrides the stimulatory effect of metyrapone-induced lack of negative cortisol feedback on corticotroph secretion in humans.

Alprazolam (ALP), a benzodiazepine that activates gamma-aminobutyric acid-ergic receptors, inhibits the activity of hypothalamo-pituitary-adrenal (HPA) axis, probably via inhibition of hypothalamic CRH and/or arginine vasopressin release. To further clarify the effects of ALP on the HPA axis in humans, in six normal young women (26-34 yr old) we studied the effects of 0.02 mg/kg ALP (administered orally at 0700 h) or placebo on ACTH, cortisol (F), and 11-deoxycortisol (S) levels assayed after placebo or metyrapone (MET; 0.04 g/kg administered orally at 2300 h the night before). After placebo administration, ACTH, F, and S levels showed a progressive decrease from 0700-1200 h (P < 0.03). At 0700 h, ACTH, F, and S levels before ALP overlapped with those after placebo. At 1200 h, ACTH, F, and S levels after ALP were lower than those after placebo (P < 0.03). MET pretreatment strongly increased ACTH (P < 0.03) and S (P < 0.02) while clearly inhibiting F (P < 0.03) levels at 0700 h. After MET, ACTH levels did not show any decrease up to 1200 h; similarly, S levels persisted similar up to 1200 h, whereas F levels at 1200 h were significantly increased (P < 0.03). At 0700 h, MET-induced ACTH and F levels before ALP overlapped with those after MET alone. The MET-induced ACTH levels at 1200 h were markedly inhibited by ALP (P < 0.05). At 1200 h after MET and ALP, a clear reduction of S levels (P < 0.02) and an insignificant F reduction were also found. In conclusion, our present data show that ALP inhibits basal and, much more, metyrapone-induced corticotroph secretion. These findings indicate that the inhibitory effect of central gamma-aminobutyric acid-ergic activation by ALP overrides the stimulatory effect of the MET-induced lack of negative F feedback on corticotroph secretion. These results also point toward potential contraindication of ALP administration in patients with suspected hypoadrenalism.

Adrenocorticotropic Hormone↗