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Biomedical subjects

Fabio Lanfranco

Publications and source records attributed to Fabio Lanfranco.

9 recordsLinked to original sources

Neuroregulation of the hypothalamus-pituitary-adrenal (HPA) axis in humans: effects of GABA-, mineralocorticoid-, and GH-Secretagogue-receptor modulation.

The hypothalamus-pituitary-adrenal (HPA) axis exerts a variety of effects at both the central and peripheral level. Its activity is mainly regulated by CRH, AVP, and the glucocorticoid-mediated feedback action. Moreover, many neurotransmitters and neuropeptides influence HPA axis activity by acting at the hypothalamic and/or suprahypothalamic level. Among them, GABA and Growth Hormone Secretagogues (GHS)/GHS-receptor systems have been shown to exert a clear inhibitory and stimulatory effect, respectively, on corticotroph secretion. Alprazolam (ALP), a GABA-A receptor agonist, shows the most marked inhibitory effect on both spontaneous and stimulated HPA axis activity, in agreement with its peculiar efficacy in panic disorders and depression where an HPA axis hyperactivation is generally present. Ghrelin and synthetic GHS possess a marked ACTH/cortisol-releasing effect in humans and the ghrelin/GHS-R system is probably involved in the modulation of the HPA response to stress and nutritional/metabolic variations. The glucocorticoid-mediated negative feedback action is mediated by both glucocorticoid (GR) and mineralocorticoid (MR) receptors activation at the central level, mainly in the hippocampus. In agreement with animal studies, MRs seem to play a crucial role in the maintenance of the circadian ACTH and cortisol rhythm, through the modulation of CRH and AVP release. GABA agonists (mainly ALP), ghrelin, as well as MR agonists/antagonists, may represent good tools to explore the activity of the HPA axis in both physiological conditions and pathological states characterized by an impaired control of the corticotroph function.

Feedback↗

Effects of free fatty acids on ACTH and cortisol secretion in anorexia nervosa.

OBJECTIVE: Free fatty acids (FFAs) exert a stimulatory effect on the hypothalamic-pituitary-adrenal (HPA) axis in animals and inhibit spontaneous ACTH and cortisol secretion in humans. Patients with anorexia nervosa display concomitant HPA axis hyperactivity and increased lipolysis. We studied the effects of a lipid load on ACTH and cortisol secretion in patients with anorexia nervosa in comparison with normal subjects. DESIGN: Eight women with anorexia nervosa (ANW; means +/- s.e.m.: 23.9 +/- 2.3 years of age; body mass index (BMI): 14.9 +/- 0.6 kg/m2) and seven normal women (NW; 25.6 +/- 2.3 years of age; BMI: 22.8 +/- 1.9 kg/m2) had FFA, ACTH, cortisol, glucose and insulin levels measured in the morning every 30 min for 180 min during i.v. saline or lipid-heparin emulsion (LHE) infusion. RESULTS: During saline infusion, ACTH and cortisol levels decreased spontaneously in both groups, ACTH and cortisol levels in ANW being higher than in NW. LHE infusion led to increased FFA levels in both groups (P < 0.005). The ACTH and cortisol decrease in NW was more marked than during saline infusion (P < 0.05). LHE infusion in ANW was associated with a more pronounced decrease in ACTH levels than during saline infusion (P < 0.05), while cortisol levels were unchanged. At the end of the LHE infusion, a progressive decrease in FFA levels was associated with an increase in ACTH and cortisol concentrations in NW (P < 0.05) but not in ANW in whom FFA levels decreased to a lesser extent (P < 0.05). CONCLUSIONS: This study showed that corticotroph sensitivity to the inhibitory effect of an FFA load is preserved in patients with anorexia nervosa, in spite of persistent adrenal hyperactivity.

Adrenocortical Hyperfunction↗

Role of sequence variations of the GnRH receptor and G protein-coupled receptor 54 gene in male idiopathic hypogonadotropic hypogonadism.

OBJECTIVE: To determine the frequency of mutations of the gonadotropin-releasing hormone receptor (GnRHR) and of the G protein-coupled receptor 54 (GPR54) genes in normosmic idiopathic hypogonadotropic hypogonadism (IHH). METHODS: In a retrospective study we analyzed the GnRHR and the GPR54 genes of 45 IHH patients and 50 controls. Genomic DNA was amplified by PCR to obtain partially overlapping amplicons encompassing the exon-intron boundaries of the GnRHR and GPR54 genes and analyzed by single-stranded conformation polymorphism gel electrophoresis and/or DNA sequencing. RESULTS: One heterozygous R262Q mutation of the GnRHR gene was identified in one patient with familial IHH. The silent single-nucleotide polymorphism (SNP) 453C > T occurred at the same frequency in patients and controls. One patient with sporadic IHH and consanguineous parents showed a novel homozygous sequence variation of the GPR54 gene (1001_1002insC) resulting in an open reading frame shift and elongation of 43 amino acids with an increased number of proline residues in the intracellular receptor domain. This patient had delayed puberty, low testosterone (3.4 nmol/l), and low-normal LH and FSH levels responsive to GnRH. Pulsatile GnRH administration normalized testosterone levels and induced spermatogenesis sufficiently to induce a pregnancy with assisted reproduction. Two common SNPs in exon 1 and exon 5 of the GPR54 gene showed similar frequency distribution and hormonal profiles in IHH and controls. CONCLUSIONS: Mutations of the GnRHR and of the GPR54 gene are rare in IHH and should be investigated especially in cases with autosomal recessive transmission. Common SNPs of the GnRHR and GPR54 genes do not play any role in IHH.

Adolescent↗

Serum adiponectin levels in hypogonadal males: influence of testosterone replacement therapy.

OBJECTIVE: Adiponectin is an adipocyte-specific secretory protein which exhibits antiatherogenic, anti-inflammatory and antidiabetic properties. We hypothesized that testosterone plays an important role in the regulation of its secretion in humans, as adiponectin concentrations are higher in women than in men and as testosterone administration is accompanied by a reduction in serum adiponectin in animals and by reduced protein secretion in cultured adipocytes. This study aimed to evaluate adiponectin levels in hypogonadal men prior to and during testosterone replacement therapy. SUBJECTS AND METHODS: In a retrospective study, adiponectin, total and free testosterone, oestradiol, SHBG, total cholesterol and triglyceride levels were evaluated in 31 hypogonadal men [HM; age, mean +/- SEM: 36.5 +/- 2.4 years; body mass index (BMI) 24.6 +/- 0.8 kg/m2] and 29 weight-matched eugonadal men (EM; age 30.8 +/- 1.5 years; BMI 23.4 +/- 0.6 kg/m2). In 13 HM (age 33.9 +/- 3.2 years; BMI 24.2 +/- 0.9 kg/m2) the same parameters were also evaluated after 6 months of testosterone replacement therapy. Correlation analysis between adiponectin and hormonal, biochemical and anthropometric parameters was performed in all subjects. RESULTS: Testosterone, free testosterone and oestradiol concentrations were significantly lower in HM than in EM (4.4 +/- 0.4 nmol/l, 78.4 +/- 10.9 pmol/l and 36.1 +/- 3.0 pmol/l, respectively, in HM vs. 21.9 +/- 0.7 nmol/l, 507.9 +/- 13.8 pmol/l and 65.2 +/- 1.8 pmol/l, respectively, in EM, P < 0.0001), while SHBG levels in HM were higher than in EM (54.4 +/- 7.5 vs. 30.9 +/- 2.2 nmol/l, P < 0.005). Serum adiponectin levels in HM were significantly higher than in EM (9.53 +/- 0.73 vs. 6.80 +/- 0.55 microg/ml, P < 0.01). Calculation of the Pearson coefficient showed that adiponectin levels in HM were not correlated with any of the anthropometric and hormonal parameters examined, but showed a significant negative correlation with serum triglycerides (r = -0.38, P < 0.05). Serum adiponectin levels were negatively correlated with body weight (r = -0.41, P < 0.05) in EM but not with other anthropometric, hormonal or biochemical parameters. Six months after initiation of testosterone replacement therapy, which increased testosterone and free testosterone levels to the normal range, adiponectin levels were significantly reduced in HM (6.37 +/- 0.93 vs. 9.26 +/- 1.01 microg/ml, P < 0.01) and similar to those recorded in EM. CONCLUSIONS: Compared to eugonadal subjects, hypogonadal men show higher adiponectin levels which are reduced by testosterone replacement therapy. This study indicates that testosterone exerts a regulatory role on adiponectin secretion in humans.

Adiponectin↗

Free fatty acids exert an inhibitory effect on adrenocorticotropin and cortisol secretion in humans.

Free fatty acid (FFA) administration stimulates the hypothalamic-pituitary-adrenal (HPA) axis in rats, suggesting that the HPA axis and lipolysis may be linked by a positive-feedback loop. To clarify the influence of FFA on the HPA axis in humans, we studied the effect of lipid load on both basal and stimulated ACTH and cortisol secretion in normal subjects. In six young female volunteers [(mean +/- SEM) age, 24.4 +/- 2.1 yr; body mass index, 23.1 +/- 1.2 kg/m(2)), ACTH, cortisol, FFA, glucose, and insulin levels were measured every 30 min for 330 min during the following procedures: 1) i.v. saline infusion (from 0 to 330 min); 2) i.v. FFA infusion (Intralipid 10%, from 0 to 210 min) followed by saline infusion (from 210 to 330 min); 3) human CRH (hCRH) administration (2 microg/kg i.v. at 90 min) during saline infusion (from 0 to 330 min); and 4) hCRH administration during FFA infusion (Intralipid 10%, from 0 to 210 min, followed by saline infusion from 210 to 330 min). During saline infusion, ACTH and cortisol levels progressively declined. Lipid-heparin emulsion (LHE) infusion strikingly increased circulating FFA levels and, simultaneously, amplified the ACTH and cortisol decrease (P < 0.05). After LHE withdrawal, FFA decrease was associated with an increase (P < 0.05) in ACTH and cortisol levels (restored to baseline values within 60 min). The ACTH and cortisol responses to hCRH, however, were unaffected by LHE that, concomitantly, induced an increase (P < 0.05) in glucose but not in insulin levels. This study shows that an LHE-induced increase in FFA levels has an inhibitory effect on spontaneous ACTH and cortisol secretion in humans. Lipid load, however, does not affect the ACTH and cortisol responses to hCRH; this evidence would indicate that the negative influence of FFA on the HPA axis in humans takes place at the suprapituitary level.

Adrenocorticotropic Hormone↗

Alprazolam (a benzodiazepine activating GABA receptor) reduces the neuroendocrine responses to insulin-induced hypoglycaemia in humans.

OBJECTIVE: Alprazolam (ALP), a benzodiazepine-activating GABAergic receptor, possesses clear centrally mediated inhibitory effects on ACTH and cortisol secretion that could reflect an inhibitory influence on CRH- and/or AVP-secreting neurones. An inhibitory effect of ALP on catecholamine release has also been shown while its effect on GH secretion is unclear. To further clarify the neuroendocrine actions of ALP, we studied the ALP effects on the neurohormonal responses to hypoglycaemia in a group of normal subjects. DESIGN: In eight normal subjects [four women and four men, 22-34 years old, body mass index (BMI) 20-25 kg/m2] the ACTH, cortisol, GH, adrenaline (A) and noradrenaline (NA) responses to insulin-induced hypoglycaemia [ITT, 0.1 UI/kg regular insulin intravenously (i.v.) at 0 min] preceded by placebo or ALP (0.02 mg/kg orally at -90 min) were studied in two sessions at least 10 days apart. MEASUREMENTS: Blood samples were taken basely at -90 and 0 min and every 15 min up to +120 min. ACTH, cortisol, GH, A and NA level were assayed at each time point in both sessions. RESULTS: All subjects experienced hypoglycaemia (plasma glucose levels below 2.2 mmol/l). After placebo ITT induced clear-cut increases in ACTH (peak vs. baseline, mean +/- SEM: 27.9 +/- 3.9 vs. 7.1 +/- 1.5 pmol/l), cortisol (438.1 +/- 32.0 vs. 237.7 +/- 19.3 nmol/l) and GH (38.1 +/- 9.7 vs. 5.7 +/- 2.0 micro g/l) levels (P < 0.05). Marked increase in A (6627.2 +/- 116.7 vs. 263.7 +/- 71.4 pmol/l) and NA (3.8 +/- 1.5 vs. 1.6 +/- 1.0 nmol/l) levels were also recorded (P < 0.05). Pretreatment with ALP significantly inhibited the ACTH peak response to ITT (17.8 +/- 5.0 pmol/l, P < 0.05), while the cortisol response showed a non significant reduction (342.1 +/- 38.7 nmol/l). ALP also significantly reduced the GH (21.7 +/- 4.7 micro g/l, P < 0.02) and A (3828.0 +/- 1400.7 pmol/l, P < 0.02) responses to ITT. On the contrary, ALP lowered basal NA levels (P < 0.05) but did not significantly affect its response to ITT (2.2 +/- 1.2 nmol/l). Glucose changes induced by ITT were not modified by ALP. CONCLUSIONS: This study shows that GABAergic activation by alprazolam significantly inhibits the neuroendocrine and adrenomedullary responses to hypoglycaemia.

Adrenocorticotropic Hormone↗

Obstructive sleep apnoea syndrome impairs insulin sensitivity independently of anthropometric variables.

OBJECTIVES: Obstructive sleep apnoea syndrome (OSAS) is strongly associated with obesity and characterized by endocrine and metabolic changes including impairment of insulin sensitivity. The aim of this study was to further clarify the insulin dynamics and glucose metabolism in this condition. DESIGN, PATIENTS AND MEASUREMENTS: We studied 30 obese patients with OSAS [OSA, 21 males, 9 females; age, mean +/- SEM: 53.1 +/- 1.7 years; body mass index (BMI): 38.6 +/- 1.1 kg/m2; waist-to-hip ratio (WHR): 0.99 +/- 0.07; Apnoea/Hypopnoea Index (AHI): 40.5 +/- 5.8 events/h of sleep] by means of overnight polysomnography and oral glucose tolerance testing. Mathematical models were used to assess: (i) whole-body insulin sensitivity index (ISI composite); (ii) hepatic ISI; (iii) the first phase of insulin secretion (DeltaI30'-0'/DeltaG30'-0'). Results were compared with those in 27 weight-matched patients with simple obesity (OB, 12 males, 15 females; age: 48.1 +/- 2.8 years, BMI: 38.5 +/- 1.4 kg/m2, WHR: 0.94 +/- 0.09; AHI: 2.15 +/- 0.5 events/h of sleep) and with 20 normal subjects (NS, 15 females; 5 males, age: 40.4 +/- 2.9 years; BMI: 22.2 +/- 0.6 kg/m2). RESULTS: ISI composite value was significantly lower in OSAS (1.71 +/- 1.41) than in OB (3.08 +/- 0.27) and in NS (6.1 +/- 0.4) even after age-, BMI- and WHR-adjustment. Similarly, hepatic ISI was significantly different among the three groups (OB = 0.25 +/- 0.02, OSAS = 0.16 +/- 0.014 and NS = 0.55 +/- 0.04). Sex did not affect ISI indices. Insulin secretion estimates were not significantly different among the three groups. DISCUSSION: Obese patients with obstructive sleep apnoea syndrome are more insulin resistant than patients with simple obesity independently of the degree and distribution of adiposity. The worsening in insulin sensitivity in obstructive sleep apnoea syndrome patients could reflect the hypoxic state and would account for the increased vascular risk in this condition.

Analysis of Variance↗

Klinefelter's syndrome.

Klinefelter's syndrome is the most common genetic cause of human male infertility, but many cases remain undiagnosed because of substantial variation in clinical presentation and insufficient professional awareness of the syndrome itself. Early recognition and hormonal treatment of the disorder can substantially improve quality of life and prevent serious consequences. Testosterone replacement corrects symptoms of androgen deficiency but has no positive effect on infertility. However, nowadays patients with Klinefelter's syndrome, including the non-mosaic type, need no longer be considered irrevocably infertile, because intracytoplasmic sperm injection offers an opportunity for procreation even when there are no spermatozoa in the ejaculate. In a substantial number of azoospermic patients, spermatozoa can be extracted from testicular biopsy samples, and pregnancies and livebirths have been achieved. The frequency of sex chromosomal hyperploidy and autosomal aneuploidies is higher in spermatozoa from patients with Klinefelter's syndrome than in those from normal men. Thus, chromosomal errors might in some cases be transmitted to the offspring of men with this syndrome. The genetic implications of the fertilisation procedures, including pretransfer or prenatal genetic assessment, must be explained to patients and their partners.

Anthropometry↗