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Biomedical subjects

F Camanni

Publications and source records attributed to F Camanni.

At least 235 records · Page 13Linked to original sources

The effect of somatostatin on plasma insulin and growth hormone levels in basal conditions and after glucagon in normal and acromegalic subjects.

The effect of low-dose somatostatin (2.5 mug/min i.v.) on blood sugar, insulin and GH levels (basal and after i.v. 1 mg glucagon) was studied in 7 normal and 10 acromegalic subjects. No changes in basal values were noted in normal subjects, whereas the insulin response to glucagon was partly inhibited and the glucose response enhanced. Basal blood glucose was likewise unaltered in the acromegalics. There was, however, a significant, though unrelated, fall in both insulin and GH. The insulin response to glucagon was inhibited to a greater degree than in normal subjects. It is clear, therefore, that somatostatin can inhibit the insulin response to glucagon, as well as that to the other stimuli for which data are given in the literature. Acromegalic subjects appear to be more sensitive to inhibition of insulin secretion by somatostatin, though no relation between this and the drug's parallel inhibition of GH secretion can be shown.

Acromegaly↗

The hypophosphatemic and hyperkalemic effect of arginine in man.

The effects of a 0.5 g/kg body weight arginine infusion on plasma inorganic phosphate and potassium were examined in 15 normal subjects, and 6 recently diagnosed insulinopenic diabetics. Plasma phosphorus displayed a highly significant (p less than 0.001) fall in normal subjects, with a maximum fall below the baseline of 1.11 +/- 0.15 mg/100 ml or 33 + 3% (mean +/- SE). In addition, there was a highly significant correlation (p less than 0.01) between these falls and the insulin peaks induced by arginine. Plasma potassium levels, on the other hand, displayed a distinct and significant increase in 7 of the 8 subjects studied in this connection. The maximum increase over the baseline was 1.23 +/- 0.17 meq/l or 33 +/- 6% (p less than 0.01). In diabetic patients, arginine too led to a fall in phosphorus. While this was still significant, it was clearly less than in normal subjects: maximum fall = 0.64 +/- 0.09 mg/100 ml or 15 +/- 3%. Plasma potassium increased to a greater extent than in normal subjects: maximum increase = 1.63 +/- 0.21 meq/l or 42 +/- 6%. These findings show that arginine is responsible for a fall in plasma phosphorus that may well be partly related to the insulin response, and an increase in plasma potassium of clinical significance, whose mechanism(s), however, are still obscure.

Adolescent↗

Effect of the somatostatin analog D-Trp8,D-Cys14 on glucose insulin, pancreatic glucagon and growth hormone plasma levels in acromegalics and mild diabetics.

The effect of the somatostatin analog (GHRIH-A) D-Trp8, D-Cys14 on plasma levels of growth hormone, pancreatic glucagon, insulin and glucose was studied in four acromegalic patients and in four maturity-onset mild diabetics. Acromegalics received a bolus iv injection of 25 microgram of GHRIH-A, followed by a continuous infusion of 25 microgram in saline over an hour. Mild diabetics were submitted in two different days to two tests: arginine (30 g in 30 min) +/- GHRIH-A (bolus iv injection of 25 microgram followed by an infusion of 25 microgram/h over 120 min) and arginine + saline. GHRIH-A lead to a significant (2 p less than 0.01) fall in GH basal secretion in acromegalics, and significantly reduced the GH response to arginine in maturity-onset diabetics. The inhibitory effect of insulin secretion was less impressive, but significative in both groups. No significant changes in plasma pancreatic glucagon values were noted. In mild diabetics, GHRIH-A infusion induced a small but significant increase in the blood glucose increment due to arginine. Our data suggest that this somatostatin analog may be potentially useful only when GH suppression is the main therapeutic goal to be reached, as in acromegaly and in severe diabetic retinopathy, but not in metabolic control of mild diabetic patients with a good residual insulin secretion.

Acromegaly↗

Low dose orally administered arginine is able to enhance both basal and growth hormone-releasing hormone-induced growth hormone secretion in normal short children.

Aim of this study was to verify whether arginine (ARG), which likely inhibits hypothalamic somatostatin release, has an enhancing effect on the GHRH-induced GH rise, even when administered orally at low dose. To this goal we studied the effects of 4 g orally administered ARG, either hydrochloride (ARG-H) or aspartate (ARG-A), on both basal and GHRH (1 microgram/Kg i.v.)-stimulated GH secretion in 31 children with familial short stature (11 males and 20 females, aged 5.5-13.8 yr, pubertal stage I-III, and compared the results with those of i.v. infusion of 0.5 g/kg ARG-H. Oral ARG-H (Group A, n = 11) induced a significant increase of basal GH levels (4.2 +/- 1.3 vs 1.0 +/- 0.4 micrograms/L, p < 0.02) and enhanced the GH response to GHRH (41.1 +/- 8.6 vs 25.3 +/- 6.7 micrograms/L, p < 0.02). Oral ARG-A (Group B, n = 10) induced a slight, but not statistically significant increase in serum GH levels (3.4 +/- 1.5 vs 1.0 +/- 0.3 micrograms/L) and enhanced the GHRH-induced GH rise (49.7 +/- 9.8 vs 26.1 +/- 8.4 micrograms/L, p < 0.05). Intravenous ARG-H (Group C, n = 10) stimulated basal GH levels (6.2 +/- 1.2 vs 1.2 +/- 0.3 micrograms/L, p < 0.005) and increased the GHRH-induced GH rise (46.7 +/- 5.0 vs 17.1 +/- 2.3 micrograms/L, p < 0.005). This response was similar to those after oral ARG-H or ARG-A plus GHRH. No variation was observed in PRL levels after oral ARG (either ARG-H or ARG-A) and/or GHRH.(ABSTRACT TRUNCATED AT 250 WORDS)

Administration, Oral↗

Natural killer activity in hyperprolactinemic patients.

Several pieces of evidence suggest the existence of a relationship between neuroendocrine and immune systems. Prolactin (PRL) has been demonstrated to modulate some immune responses and its influence seems to be permissive or inhibitory depending on its concentration. Previous studies have reported a reduced natural killer (NK) cell function in patients with hyperprolactinemia. In 36 patients (34 females and 2 males, aged 14-46 years) with hyperprolactinemia (mean +/- SEM PRL 142.2 +/- 42.1 micrograms/l) of tumorous (19 patients) and functional (17 patients) origins, NK activity of peripheral blood lymphocytes (PBL) was studied. Patients had NK cell activity against the K562 cell line which did not differ from that of lymphocytes from 36 age- and sex-matched healthy donors (mean +/- SEM lytic units (LU) 619.0 +/- 103.0 and 531.9 +/- 52.6 respectively). No correlation between PRL levels and LU values was found (r = 0.28). When patients with tumors or functional hyperprolactinemia were separately analysed no difference was found between these two groups (mean +/- SEM LU 690.0 +/- 117.7 vs. 606.0 +/- 148.8). In conclusion, our data demonstrate that neither the elevated PRL levels nor the PRL-secreting tumor per se interfere with the NK system of hyperprolactinemic patients.

Adolescent↗

The enhancing effect of pyridostigmine on the GH response to GHRH undergoes an accelerated age-related reduction in Down syndrome.

Cholinergic agonists are known to potentiate GHRH-induced GH secretion, probably acting via inhibition of hypothalamic somatostatin release. Their effect is reduced in aging and in patients with Alzheimer's disease. This may be the consequence of age-related cholinergic impairment, which, in turn, could cause somatostatinergic hyperactivity leading to GH hyposecretion. As in Down syndrome (DS) neural alterations have been reported similar to those in aging, including cholinergic impairment, we verified the GH response to GHRH (1 microgram/kg i.v. at 0 min) alone or combined with pyridostigmine (PD), a cholinesterase inhibitor (60 and 120 mg, respectively, in children and adults, orally at -60 min) in 15 DS children (13.5 +/- 0.6 years) and in 11 DS young adults (24.0 +/- 1.2 years). Fifteen normal children (11.9 +/- 0.5 years), 15 normal adults (27.3 +/- 0.9 years) and 16 normal elderly (76.3 +/- 1.5 years) were studied as controls. IGF-I levels showed an age-related reduction both in DS (children vs. adults, mean +/- SEM:354.8 +/- 44.9 vs. 204.4 +/- 29.4 micrograms/l, p < 0.02) and in controls (normal children vs. normal adults vs. normal elderly:281.4 +/- 36.3 vs. 175.4 +/- 11.2 vs. 72.5 +/- 6.6 micrograms/l, p < 0.001). The GH response to GHRH in DS children was higher than in DS adults (areas under curve: 1,197.6 +/- 241.5 vs. 434.4 +/- 83.3 micrograms/l/h, p < 0.01). On the other hand, in normal subjects the GHRH-induced GH rise was similar in children and adults (1,056.2 +/- 128.4 vs. 800.8 +/- 124.5 micrograms/l/h) and both were higher than that in elderly subjects (296.0 +/- 61.0 micrograms/l/h, p < 0.001). PD enhanced the GH response to GHRH both in DS and in normal subjects (p < 0.005). The GH response to PD+GHRH was lower in DS adults than in DS children (1,068.1 +/- 145.7 vs. 1,897.4 +/- 198.8 micrograms/l/h, p < 0.001) as well as in normal elderly subjects with respect to that in normal children and normal adults (832.3 +/- 144.7 vs. 2,172.1 +/- 156.1 and 2,347.6 +/- 322.4 micrograms/l/h, respectively, p < 0.001). The GH response to GHRH alone or combined with PD in DS adults was lower (p < 0.01) than that in normal adults and similar to that in normal elderly subjects. In conclusion, the present data demonstrate that the stimulated GH secretion in DS undergoes an accelerated age-related reduction. They also suggest the existence of a precocious impairment of central cholinergic activity in DS, which, in turn, could cause somatostatinergic hyperactivity and reduced GH secretion.

Adolescent↗

Growth hormone secretion in Alzheimer's disease: studies with growth hormone-releasing hormone alone and combined with pyridostigmine or arginine.

There is evidence that GH secretion is reduced in normal elderly subjects as well as in patients with Alzheimer's disease (AD). To clarify the mechanisms underlying this GH hyposecretory state in 14 elderly subjects (age 65-75 years) and 15 AD patients (age 61-78 years), we studied the effects of both pyridostigmine (PD, 120 mg orally), a cholinesterase inhibitor, and arginine (ARG, 0.5 g/kg i.v.), two substances likely acting via inhibition of hypothalamic somatostatin, on GH response to GHRH (1 microgram/kg i.v.). The GH response to PD alone was also studied. Twenty-two young healthy volunteers were studied as control group. Basal GH levels were similar in young, elderly and AD subjects (0.7 +/- 0.2, 0.8 +/- 0.2 and 0.9 +/- 0.2 microgram/l). IGF-I levels were lower (p < 0.005) in elderly (73.9 +/- 8.2 microgram/l) and in AD subjects (108.0 +/- 5.9 micrograms/l) than in young subjects (288.7 +/- 22.1 micrograms/l); however, they were higher (p < 0.01) in AD patients than in the elderly subjects. The PD-induced GH release did not significantly differ in young, elderly and AD subjects while the GH responses to GHRH in the elderly (AUC: 297.9 +/- 49.2 micrograms/l) and in AD subjects (437.6 +/- 93.5 micrograms/l/h) were lower (p < 0.01) than in young subjects (658.6 +/- 100.1 micrograms/l/h). PD potentiated the GH response to GHRH both in elderly and in AD subjects (901.7 +/- 222.4 and 1,070.3 +/- 207.2 micrograms/l/h, p < 0.005) but these responses were lower (p < 0.0001) than those recorded in young subjects (2,041.1 +/- 245.6 micrograms/l/h).(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Growth hormone response to GHRH during lifespan.

Recent evidence has shown that growth hormone-releasing hormone (GHRH) enables investigation of the pathophysiology of GH secretion in a variety of different states, but it cannot be used as a test for probing pituitary somatotrophic function, due to the extreme inter- and intra-subject variability in normal subjects. This task is better accomplished when compounds which deprive the pituitary of inhibitory (somatostatinergic) influences, e.g. pyridostigmine, arginine, etc., are given in combination with GHRH. Administration of GHRH in both animals and humans reveals a state of GH hyperresponsiveness in the immediate postnatal period, which is likely to be due to a reduced pituitary sensitivity to somatostatin. GH responses to GHRH are relatively constant throughout the different stages of pubertal development, though further studies are needed to confirm these findings, and decline after the third-fourth decade in men, after menopause in women. It is apparent that during aging the releasable pool of GH is preserved and that impaired GH secretion is due to defective hypothalamic GHRH function and a relative predominance of somatostatinergic function.

Aging↗

Neurotransmitter control of growth hormone secretion in humans.

Growth hormone secretion is mainly regulated by the interplay of GHRH and somatostatin, two specific hypophysiotrophic neurohormones. In addition to GHRH and somatostatin, many neurotransmitters and neuropeptides influence GH secretion mainly by acting at the hypothalamic level. This paper focuses on the stimulatory role of acetylcholine, arginine and galanin as well as on the inhibitory influence of catecholamines which is mediated by the activation of beta-adrenergic receptors. Attention will be given to the age-related changes in the neural control of GH secretion from childhood to old age.

Acetylcholine↗

The GH-releasing effect of Hexarelin, a synthetic hexapeptide, in newborns is lower than in young adults.

The aim of the present study was to verify the GH-releasing effect of Hexarelin, a synthetic hexapeptide, in newborns who are known to have GH hypersecretion likely due to hyperactivity of GHRH-secreting neurons while somatostatinergic activity seems not fully operative. We studied in 6 newborns (NB, 2.5 +/- 2.1 days), 12 prepubertal children (PC, 9.8 +/- 0.45 yr) and 12 young adults (YA, 28.2 +/- 0.2 yr) the GH response to Hexarelin (HEX, 2 micrograms/kg i.v.) compared to that observed after GHRH (1 microgram/kg i.v.) in 6 NB (4.2 +/- 0.4 days), 12 PC (9.9 +/- 0.6 yr) and 12 YA (31.0 +/- 1.3 yr). GH levels were assayed basally and 30 and 60 min after drug administration. In NB, mean (+/- SEM) basal GH levels were higher while IGF-I levels were lower than those recorded in PC and YA (GH: 34.8 +/- 1.9 vs 2.8 +/- 0.4 vs 1.4 +/- 0.4 micrograms/l, p < 0.0006; IGF-I: 36.3 +/- 1.9 vs 152.0 +/- 11.5 vs 175.8 +/- 15.3 micrograms/l, p < 0.0007); in the last two groups GH and IGF-I levels were similar. The mean delta GH peak after HEX in NB (32.8 +/- 4.7 micrograms/l) was similar to that in PC (34.6 +/- 4.3 micrograms/l) and lower (p < 0.01) than that in YA (56.2 +/- 7.4 micrograms/l). Delta GH peak after GHRH in NB (60.1 +/- 1.5) was higher than those in PC and YA (20.8 +/- 4.8 and 22.8 +/- 3.4 micrograms/l) (p < 0.005 and < 0.002, respectively). In NB, the GH response to HEX was lower (p < 0.005) than to GHRH while in PC and YA the somatotrope response to HEX was higher (p < 0.03 and 0.0004, respectively) than to GHRH. These data demonstrate that the GH-releasing effect of Hexarelin undergoes age-dependent variation being lower in newborns than in young adults, opposite to that observed after GHRH administration. The evidence that Hexarelin releases less GH than GHRH in newborns but not in prepubertal children and in young adults makes unlikely the hypothesis that the GH-releasing effect of this hexapeptide is mediated via endogenous GHRH release.

Adolescent↗

GH response to GHRH combined with pyridostigmine or arginine in different conditions of low somatotrope secretion in adulthood: obesity and Cushing's syndrome in comparison with hypopituitarism.

BACKGROUND: Diagnosing GH deficiency in adults is difficult due to the age-related variations of GH/IGF-I axis and the influence of nutrition. Nowadays, GH replacement is allowed for patients with GH peak to provocative stimuli < 3 micrograms/L. Somatotrope insufficiency is present in hypopituitarism but also in obesity and hypercortisolism. However, to evaluate GH insufficiency in adults is difficult due to variations of GH and IGF-I levels as function of age and nutrition status. METHODS: We aimed to verify the GH response to GHRH (1 mg/kg i.v.) combined with pyridostigmine (PD, 120 mg p.o.) or arginine (ARG, 0.5 g/kg i.v.), in 26 hypopituitaric patients (GHD), in 11 obese women (OB), in 8 women with Cushing's syndrome (CS), and in 72 control subjects (NS). RESULTS: IGF-I levels in GHD were lower than those in OB (p < 0.01) and in CS (p < 0.01) which, in turn, were lower to those in NS (p < 0.02). In NS, the GH peak responses to GHRH + PD and GHRH + ARG were similar and the minimum normal GH peak was 16.5 mg/L. GHD had GH responses similar, lower than those in NS (p < 0.01) and always below the normal limit. However, only 12/20 and 8/14 had peaks < 3 micrograms/L; conventionally, below this limit severe GH deficiency is shown and rhGH replacement is allowed. In OB, the GH responses to GHRH + PD and GHRH + ARG were similar, lower (p < 0.01) and higher (p < 0.01) than those in NS and GHD, respectively. Six out of 11 OB had GH peaks below the normal limits but nobody < 3 micrograms/L. In CS, the GH response to GHRH + PD was lower than that to GHRH + ARG (p < 0.01); both these responses were lower than those in NS (p < 0.01) and even in OB (p < 0.01) but higher than those in GHD (p < 0.01). All and 7/8 CS had GH peaks lower than normal limits after PD + GHRH and ARG + GHRH, respectively while 6/8 showed GH peak < 3 micrograms/L after PD + GHRH but only 1 after ARG + GHRH. CONCLUSIONS: Present data demonstrate that the maximal somatotrope secretory capacity is reduced in OB and even more in CS. From a diagnostic point of view, PD + GHRH and ARG + GHRH tests distinguish OB from severe GHD. As hypercortisolism impairs the activity of cholinesterase inhibitors, only ARG + GHRH, but not PD + GHRH is a reliable test to explore the maximal somatotrope secretory capacity in CS. Notably, even with the ARG + GHRH test, in CS the maximal somatotrope secretory capacity is sometimes so reduced as to overlap with that of severe GHD.

Adult↗

Comparison of growth hormone-releasing effect of growth hormone-releasing hormone, clonidine and pyridostigmine in normal children and adolescents. GH-releasing effect of GHRH, clonidine and pyridostigmine.

The GHRH test has been proposed to replace conventional stimuli in the diagnosis of GH deficiency. However the reliability of GHRH in discriminating between normal and GH-deficient children is still uncertain. The aim of this study was to compare the GH-releasing effect of GHRH (1 microgram/kg i.v.) with that of two neuroactive drugs, clonidine (CLON, 150 micrograms/m2 orally), an alpha 2-receptor agonist, and pyridostigmine (PD, 60 mg orally), a cholinergic agonist that inhibits cholinesterases, in 23 children and adolescents with normal and familial short stature. The plasma GH peak (mean +/- SEM) after GHRH (20.3 +/- 2.5 ng/ml), CLON (17.0 +/- 2.1 ng/ml) and PD (14.9 +/- 1.5 ng/ml) did not significantly differ. According to the conventional limit (less than 10 ng/ml), a false negative response was present in 6, 5 and 6 subjects after GHRH, CLON and PD, respectively. In conclusion, GHRH, CLON and PD have a similar GH-releasing effect. A similar percentage of false negative responses was observed with all tests and this evidence reduces their diagnostic ability.

Adolescent↗

Comparison of Monotard and Ultratard insulin at bedtime in a model of optimized insulin therapy in Italy.

The italian habit of having a low calorie breakfast suggests an insulin treatment made up of two daily injections of soluble insulin before lunch and dinner, adding at bed time an injection of retard insulin. Aim of this study was to verify whether Monotard or Ultratard proved more effective as retard insulin in this regimen. Sixteen insulin-dependent diabetics treated with the above-mentioned insulin regimen were studied for 16 weeks. They were divided in two groups: group 1 was treated initially with Ultratard and group 2 with Monotard, with a cross-over after 8 weeks. The metabolic control achieved with the treatment was considered good with either retard insulin used. HbA1c, fructosamine, body weight and glycemic values measured after 8 and 16 weeds failed to reveal any differences between the treatment with Monotard on Ultratard. Either Monotard or Ultratard can be successfully used as bedtime retard insulin in this multiple injection insulin treatment.

Adult↗