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Biomedical subjects

P De Feo

Publications and source records attributed to P De Feo.

At least 19 recordsLinked to original sources

A randomized controlled trial to evaluate the efficacy of ultrasound-guided laser photocoagulation for treatment of benign thyroid nodules.

This randomized controlled study was designed to test the efficacy and safety of percutaneous ultrasound (US)-guided laser photocoagulation (PLP) for treatment of subjects with compressive symptoms due to benign thyroid nodules and/or at high surgical risk. Twenty six subjects were randomized to the intervention (no. 13, age 68+/-3 yr, mean+/-SEM) or observation (no. 13, age 71+/-2 yr) groups. In the control group, the volume of nodules did not significantly change over the 30 week period of observation. In the intervention group, median nodule volume at baseline was 8.2 ml (range 2.8-26.9) and was not significantly different from that of the control group. Nodules decreased significantly (p<0.0001) by 22% after 2 weeks (6.5 ml; range 2.4-16.7) and by 44% after 30 weeks (4.6 ml; range 0.69-14.2). Energy given was correlated (p<0.05) with the reduction of thyroid nodule volume. All patients tolerated the treatment well and reported relief from compressive and cosmetic complaints (p<0.05). At the time of enrolment 7/13 (54%) and 6/13 (46%) of patients in the intervention and control groups, respectively, had sub clinical hyperthyroidism. PLP normalized thyroid function at 6 and 30 weeks after treatment. In conclusion, PLP is a promising safe and effective procedure for treatment of benign thyroid nodules in patients at high surgical risk.

Aged↗

Effects of whole-body vibration exercise on the endocrine system of healthy men.

Whole-body vibration is reported to increase muscle performance, bone mineral density and stimulate the secretion of lipolytic and protein anabolic hormones, such as GH and testosterone, that might be used for the treatment of obesity. To date, as no controlled trial has examined the effects of vibration exercise on the human endocrine system, we performed a randomized controlled study, to establish whether the circulating concentrations of glucose and hormones (insulin, glucagon, cortisol, epinephrine, norepinephrine, GH, IGF-1, free and total testosterone) are affected by vibration in 10 healthy men [age 39 +/- 3, body mass index (BMI) of 23.5 +/- 0.5 kg/m2, mean +/- SEM]. Volunteers were studied on two occasions before and after standing for 25 min on a ground plate in the absence (control) or in the presence (vibration) of 30 Hz whole body vibration. Vibration slightly reduced plasma glucose (30 min: vibration 4.59 +/- 0.21, control 4.74 +/- 0.22 mM, p=0.049) and increased plasma norepinephrine concentrations (60 min: vibration 1.29 +/- 0.18, control 1.01 +/- 0.07 nM, p=0.038), but did not change the circulating concentrations of other hormones. These results demonstrate that vibration exercise transiently reduces plasma glucose, possibly by increasing glucose utilization by contracting muscles. Since hormonal responses, with the exception of norepinephrine, are not affected by acute vibration exposure, this type of exercise is not expected to reduce fat mass in obese subjects.

Adult↗

Meal intake similarly reduces circulating concentrations of octanoyl and total ghrelin in humans.

UNLABELLED: ABSTRACT. Several data show that meal intake and nutritional status regulate circulating ghrelin concentrations in humans. Ghrelin mainly circulates in two different forms: octanoyl and des-octanoyl ghrelin. Most circulating ghrelin is des-octanoyl ghrelin which is considered inactive because it lacks endocrine activity. However, recent evidence suggests that des-octanoyl ghrelin exerts biological activity such as stimulation of adipogenesis, cardiovascular effects and control of cell growth. In healthy humans, although the total ghrelin concentration is known to peak before meals and to be reduced by food intake, no data are available about the octanoyl ghrelin response in the absorptive state. Therefore, after an overnight fast, we compared the effects of a mixed meal ingestion (meal study) or of additional 240 min fasting (control study) on plasma concentrations of octanoyl and total ghrelin in 6 healthy subjects (body mass index: 23 +/- 0.7). At baseline, octanoyl-ghrelin accounted for 3.15 +/- 0.2% of total circulating ghrelin without differences between the two sessions. A similar ratio was maintained in the absorptive state with no differences between the studies and basal values. Compared with control, meal intake significantly suppressed (nadir at 90 min) octanoyl and total ghrelin by 38 +/- 3 and 40 +/- 3% of basal values, respectively. In the meal study, multivariate analysis of variance showed that serum insulin best predicted plasma octanoyl-ghrelin concentrations accounting for 97% of its variation (r2 = -0.97,p = 0.0016). IN CONCLUSION: in healthy humans, octanoyl-ghrelin represents about 3-4% of total circula-ting ghrelin and this ratio is closely maintained in post-absorptive and absorptive states.

Adult↗

Circulating ghrelin levels of visceral obese men are not modified by a short-term treatment with very low doses of GH replacement.

Ghrelin, the endogenous ligand for the GH secretagogue-receptor (GHS-R), in addition to its GH-releasing action, has orexigenic and adipogenic properties. These characteristics make ghrelin a potential hormone involved in the pathogenesis of obesity. Ghrelin levels are decreased in obese humans and it is unknown whether this decrease is responsible for the blunted GH secretion reported in visceral obesity. Since only few data are available on the potential feedback regulation by GH on systemic ghrelin concentrations, it remains to be established whether the correction of circulating GH concentrations in obese individuals affects ghrelin concentrations. To answer this question, we measured plasma ghrelin levels after a week of administration of low doses of recombinant human GH (rhGH) in a randomized, double-blind, placebo (PL)-controlled trial. This study was originally designed to evaluate the effects of GH replacement on lipid kinetics in visceral obese men. Six adult men with abdominal/visceral obesity (age 42+/-3 yr, body weight 107 +/- 10 kg, BMI 33 +/- 1 kg/m2, waist circumference 111 +/- 3 cm, mean +/- SE) were evaluated in the basal state (BS) and after one week of treatment with subcutaneous bedtime injections of either PL, 2.5 (GH2.5) or 3.3 (GH3.3) pg/kg/die of rhGH. In comparison to BS either PL, GH2.5 or GH3.3 did not significantly modify circulating ghrelin concentrations (p = 0.77). In contrast, a significant increase of serum GH (p = 0.0028), IGF-I (p = 0.0033) and whole body rate of lipolysis (p = 0.038, GH2.5; p = 0.009, GH3.3) occurred, in comparison to BS or PL, after GH2.5 and GH3.3, without differences between the two treatments. These data demonstrate that in abdominal/visceral obese men a short-term treatment with very low doses of rhGH replacement, sufficient to augment the rate of lipolysis, do not modify circulating ghrelin levels.

Adult↗

Metabolic response to exercise.

At the beginning, the survival of humans was strictly related to their physical capacity. There was the need to resist predators and to provide food and water for life. Achieving these goals required a prompt and efficient energy system capable of sustaining either high intensity or maintaining prolonged physical activity. Energy for skeletal muscle contraction is supplied by anaerobic and aerobic metabolic pathways. The former can allow short bursts of intense physical activity (60-90 sec) and utilizes as energetic source the phosphocreatine shuttle and anaerobic glycolysis. The aerobic system is the most efficient ATP source for skeletal muscle. The oxidative phosporylation of carbohydrates, fats and, to a minor extent, proteins, can sustain physical activity for many hours. Carbohydrates are the most efficient fuel for working muscle and their contribution to total fuel oxidation is positively related to the intensity of exercise. The first metabolic pathways of carbohydrate metabolism to be involved are skeletal muscle glycogenolysis and glycolysis. Later circulating glucose, formed through activated gluconeogenesis, becomes an important energetic source. Among glucose metabolites, lactate plays a primary role as either direct or indirect (gluconeogenesis) energy source for contracting skeletal muscle. Fat oxidation plays a primary role during either low-moderate intensity exercise or protracted physical activity (over 90-120 min). Severe muscle glycogen depletion results in increased rates of muscle proteolysis and branched chain amino acid oxidation. Endurance training ameliorates physical performance by improving cardiopulmonary efficiency and optimizing skeletal muscle supply and oxidation of substrates.

Adaptation, Physiological↗

Diabetes and exercise.

Physical activity has acute and chronic effects on glucose, lipid and protein metabolism. Long-term effects of regular exercise are particularly advantageous for Type 2 diabetic patients. Regular aerobic exercise reduces visceral fat mass and body weight without decreasing lean body mass, ameliorates insulin sensitivity, glucose and BP control, lipid profile and reduces the cardiovascular risk. For these reasons, regular aerobic physical activity must be considered as an essential component of the cure of Type 2 diabetes mellitus. In this regard, individual behavioral strategies have been documented to be effective in motivating sedentary Type 2 diabetic subjects to the adoption and the maintenance of regular physical activity. In Type 1 diabetic subjects, the lack of the physiological inhibition of insulin secretion during exercise results in a potential risk of hypoglycemia. On the other hand, exercise-induced activation of counter-regulatory hormones might trigger an acute metabolic derangement in severe insulin-deficient subjects. Thus, diabetic patients, before starting exercise sessions, must be carefully educated about the consequences of physical activity on their blood glucose and the appropriate modifications of diet and insulin therapy.

Blood Glucose↗

Effects of dietary protein restriction on fibrinogen and albumin metabolism in nephrotic patients.

BACKGROUND: Nephrotic syndrome (NS) is characterized by profound changes in albumin and fibrinogen levels. Dietary protein restriction has been advocated in the treatment of patients with NS, but its effects on albumin and fibrinogen metabolism have not been fully elucidated. METHODS: We evaluated the effects of dietary protein restriction on endogenous leucine flux (ELF), fibrinogen and albumin metabolism in seven patients with NS who consumed either a normal protein diet (NPD; 1.20 +/- 0.06 g/kg/day), or a low protein diet (LPS; 0.66 +/- 0.04 g/kg/day) for four weeks. Seven normal subjects served as controls. The postabsorptive ELF value, fractional synthesis rate (FSR) and absolute synthesis rate (ASR) of both albumin and fibrinogen were evaluated during the last 120 minutes of a five-hour 5,5,5-D3-L-leucine infusion. RESULTS: During the NPD regimen. ELF was increased, serum albumin was reduced, plasma fibrinogen was increased, albumin FSR and ASR were both increased, fibrinogen FSR was normal, and fibrinogen ASR was greater in patients with NS compared to controls. In patients with NS the LPD regimen reduced proteinuria, ELF, albumin FSR and ASR, plasma fibrinogen levels, fibrinogen ASR, and increased serum ulbumin levels. Dietary-induced changes in albumin and fibrinogen synthesis were significantly correlated (r = 0.719, P < 0.05). CONCLUSIONS: Patients with NS treated with LPD show: (1) a reduction of proteinuria, albumin ASR and FSR, with an increase in serum albumin levels and its intravascular pool; (2) a decrease of fibrinogen ASR, with a reduction in both plasma fibrinogen levels and intravascular pool; and (3) a reduced rate of whole body proteolysis.

Adult↗

Administration of recombinant human growth hormone on alternate days is sufficient to increase whole body protein synthesis and lipolysis in growth hormone deficient adults.

OBJECTIVE: At present, the duration of the effect of recombinant human growth hormone (rhGH) on the rates of protein synthesis and lipolysis in GH deficient (GHD) adults is unknown. This study was designed to establish the frequency of rhGH administration necessary to provide the beneficial metabolic effects of the hormone in GHD adults. DESIGN AND PATIENTS: Two different studies (A and B) were performed in two groups of five GHD men. In study A, whole body protein and lipid kinetics was determined in the basal state (Bas), 12 (GH12h) and 36 (GH36h) h after the last of seven injections of rhGH (3.3 microg/kg), given at bedtime on alternate days. In study B, the same parameters were determined in the basal state (Bas), 60 (GH60h) and 84 (GH84h) h after the last of seven injections of rhGH (3.3 microg/kg), given at bedtime at 3 day intervals. MEASUREMENTS: The rates of protein metabolism were estimated by infusing [1-13C]leucine, and those of lipolysis by infusing [1,1,2,3, 3-D5]glycerol. RESULTS: Leucine oxidation decreased (P < 0.01) by approximately 30% after GH12h and GH36h but did not change after GH60h and GH84h. Non-oxidative leucine disposal increased after GH12h and GH36h by approximately 13% (P < 0.05) whereas it did not change after GH60h and GH84h. Glycerol appearance increased (P < 0. 01) by approximately 45% after GH12h and GH36h but did not change after GH60h and GH84h. CONCLUSIONS: The effects on protein and lipid metabolism following the injection of rhGH last longer than 36 and less than 60 h. In fact, rhGH administration on alternate days induced a sustained increase in the rates of protein synthesis and lipolysis of GHD adults, whereas a longer interval of administration (3 days) had no effect by 60 h.

Adult↗

Moderate and large doses of ethanol differentially affect hepatic protein metabolism in humans.

The intake of approximately 70 g of alcohol impairs liver protein metabolism in healthy humans. To establish the threshold at which alcohol impairs hepatic protein metabolism in humans we compared the effects of 500 mL of water (control study), 300 (28.4 g ethanol) or 750 mL (71 g ethanol) of table wine on hepatic protein metabolism in three groups of healthy nonalcoholic volunteers. Hepatic protein metabolism was estimated (L-[1-14C]leucine infusion) by measuring the fractional secretory rates of albumin and fibrinogen during the overnight postabsorptive state (basal) and the subsequent administration of water or two different amounts of wine (300 or 750 mL) given with a liquid glucose-lipid-amino acid meal. During the meal, water did not affect fibrinogen fractional secretory rate and increased albumin fractional secretory rate by approximately 50% (P < 0.01). The 300 mL of wine increased albumin secretory rate by only approximately 20% (P < 0.01 vs. basal, P < 0.04 vs. water) and did not affect fibrinogen secretory rate. The 750 mL of wine profoundly impaired hepatic protein metabolism, decreasing the fractional secretory rates of albumin (P < 0.01 vs. water and 300 mL wine) and fibrinogen (P < 0.04 vs. water and 300 mL of wine) below the postabsorptive values. These results demonstrate that a moderate dose of alcohol (28 g, approximately 2 drinks) slightly affects postprandial hepatic protein metabolism by blunting the meal-induced increase in albumin synthesis, whereas it does not interfere with fibrinogen synthesis as do higher doses.

Adult↗

Fed state protein metabolism in diabetes mellitus.

Current knowledge concerning the physiologic regulation of protein anabolism during feeding is both limited and debated; little information is available on the effects of pathological conditions such as diabetes mellitus. This is due largely to methodological problems and the technical difficulties associated with the isotope dilution techniques used to estimate protein kinetics in the fed state. Data that are available suggest that meal intake induces protein anabolism in healthy subjects by reducing endogenous proteolysis and selectively stimulating protein synthesis, with amino acids and insulin playing the major regulatory role. Data obtained in subjects with noninsulin-dependent diabetes mellitus demonstrate that the impaired insulin action on glucose metabolism characteristic of that disease may not be associated with abnormal protein metabolism in the fed state. Severe insulin deficiency, as occurs in insulin-dependent diabetes, adversely affects nitrogen balance; at present, however, the effects of poor postprandial glycemic control on protein kinetics in subjects with insulin-dependent diabetes remain to be established.

Diabetes Mellitus↗

Gender differences in basal protein kinetics in young adults.

Gender affects energy expenditure and influences the relative utilization of carbohydrate and fat as fuels. However, little is known about the possible effects of gender on protein metabolism. Thus, we compared whole body and plasma (albumin and fibrinogen) protein kinetics in the basal postabsorptive state in young, untrained volunteers divided into two groups according to gender (women: n=17; age, 24+/-4 yr; men: n=17; age, 25+/-2 yr). The two groups were matched for body mass index. Protein kinetics were measured by means of L-[1-14C]leucine infusion. The leucine whole body rate of appearance, an index of proteolysis, and nonoxidative rate of disappearance, an index of protein synthesis, were similar in the two groups. However, the leucine oxidation rate was significantly lower in women compared to men (0.23+/-0.07 vs. 0.31+/-0.08 micromol/kg min; P=0.0062). Similar results were obtained when data were adjusted for estimated body composition. Albumin and fibrinogen fractional secretion rates were not different in the two groups. In conclusion, in the basal state leucine oxidation is lower in women than in men regardless of body composition. This could be one of the factors contributing to the lower metabolic rate in women.

Adult↗

A dose-response study of growth hormone (GH) replacement on whole body protein and lipid kinetics in GH-deficient adults.

This study was designed to establish the lower dose of effective GH replacement therapy in severe GH-deficient (GHD) adults. Whole body protein and lipid kinetics were determined in six GHD men in the basal state (B) and after 1 week of treatment with placebo (PL) or 3.3 (GH3.3) or 2 (GH2) micrograms/kg.day recombinant human GH (rhGH). The rates of whole body proteolysis, oxidation, and synthesis were estimated by infusing [1-13C]leucine (prime, 1 mg/kg; infusion rate, 1 mg/kg.h); those of lipolysis (measured in four of the six patients) were estimated by infusing [1,1,2,3,3-D5]glycerol (prime, 1.8 mumol/kg; infusion rate, 0.06 mumol/kg.min). Serum insulin-like growth factor I (IGF-I) concentrations (picograms per mL; mean +/- SE) similarly increased from the basal level (39 +/- 7) after 3.3 (108 +/- 18) or 2 (109 +/- 24) microgram/kg.day rhGH (P < 0.001 vs. basal), whereas they did not change with placebo (41 +/- 8). Leucine Ra was unaffected by the treatments. GH3.3 reduced by 30% the rate of leucine oxidation (P = 0.0069 vs. basal) and increased by 11% nonoxidative leucine disposal (P = 0.0095 vs. basal) and by 21% glycerol Ra (0.0035 vs. basal); GH2 and placebo had no significant effect. In conclusion, 1) at least 3.3 micrograms/ kg.day rhGH are required to increase whole body protein synthesis and lipolysis in male GHD adults; 2) 2 micrograms/kg.day rhGH normalize serum IGF-I concentrations, but do not modify protein and lipid metabolism; and 3) a normal serum IGF-I concentration does not guarantee that rhGH treatment is also effective on intermediate metabolism.

Adult↗

Nicotinamide counteracts alcohol-induced impairment of hepatic protein metabolism in humans.

We have recently shown that a large amount of wine (750 mL, approximately 70 g of alcohol) markedly impairs postprandial hepatic protein metabolism in healthy subjects. This is probably due to the shift in the intracellular redox state (increased NADH/NAD+) induced by ethanol oxidation. If this hypothesis is true, the administration of nicotinamide (NAD+ precursor) should provide NAD+ in excess and thus correct the NADH/NAD+ abnormalities and prevent the ethanol hepatotoxicity. Whole-body protein metabolism and the fractional secretory rates of hepatic (albumin, fibrinogen) and extra-hepatic (immunoglobulin G, IgG) plasma proteins were measured in the basal postabsorptive and in the absorptive states in 15 healthy subjects, that had been assigned to three groups matched for age and body mass index. During the absorptive state (intragastric meal), the three groups received water (control), 750 mL of wine, or 750 mL of wine + 1.25 g of nicotinamide, respectively. The redox state was estimated by determining the plasma lactate/pyruvate ratio. Compared with the basal state, wine alone increased the lactate/pyruvate ratio twofold and depressed the fractional secretory rates of albumin and fibrinogen (P < 0.01 vs. control and nicotinamide); nicotinamide reduced the effects of wine on the lactate/pyruvate ratio (P < 0.02 vs. wine alone) and prevented the reduction of albumin and fibrinogen secretory rates (P > 0.05 vs. control). These results indicate that nicotinamide counteracts the acute hepatotoxic effects of ethanol by ameliorating the redox state.

Adult↗

Hormonal regulation of human protein metabolism.

This review focuses on the effects of hormones on protein kinetics in humans. Most of the recent knowledge on the regulation of protein metabolism in humans has been obtained by tracing protein kinetics in vivo, using labelled isotopes of essential or non-essential amino acids. This technique allows the rates of the whole-body protein synthesis and breakdown to be estimated together with amino acid oxidation and the fractional synthetic rates of mixed muscle proteins or of single plasma proteins. Changes induced within these parameters by hormonal administration or endocrine diseases are also discussed. Hormones, on the basis of their net effect on protein balance (protein synthesis minus protein breakdown), are divided into two categories: those provided with an anabolic action and those with a prevalent catabolic action. The effects on protein metabolism of the following hormones are reviewed: insulin, growth hormone, IGF-I, adrenaline, androgens, estrogens, progesterone, glucagon, glucocorticosteroids, thyroid hormones. The review concludes with a report on the effects of multiple hormonal infusions on whole-body protein kinetics and a discussion on the potential role played by the concomitant increase of several hormones in the pathogenesis of protein wasting that complicates stress diseases.

Hormones↗