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Biomedical subjects

M Vigas

Publications and source records attributed to M Vigas.

At least 73 records · Page 4Linked to original sources

Activation of NK cells in subjects exposed to mild hyper- or hypothermic load.

The effect of mild hyper- and hypothermic stress on release of selected hormones (somatotropin, noradrenaline, etc.), interferon (IFN), and activity of NK cells in the blood was examined in groups of young males during a 30 min exposure to 39 degrees C and 4 degrees C. A quick release of somatotropin was registered in 44% of examinees in the hyperthermic group, while the persons exposed to 4 degrees C reacted with a release of noradrenaline only. Concurrently, an elevation of NK cell activity was observed both in the subgroup releasing somatotropin after hyperthermic stress and in the group exposed to cold. Since these forms of mild stress did not lead to an appearance of IFN in the serum, the possibility of an NK cell activating effect of somatotropin and/or the adrenal hormones was tested. While the adrenal hormones stimulated the NK cell activity in vitro, no support for a similar role for somatotropin was found.

Adult↗

Effect of acute cold exposure and insulin hypoglycemia on plasma thyrotropin levels by IRMA in healthy young males.

Thyrotropin (TSH) levels in plasma were estimated with the aid of immunoradiometric assay in two groups of healthy male subjects aged 21-22 years in two experiments: 1. acute (30 min) exposure to 4 degrees C in a cold room; 2. insulin (0.01 U per kg i.v.) hypoglycemia at room temperature and at 55 degrees C. Immediately after cold exposure a decrease of TSH level was found (P less than 0.01), while no changes were observed during 30 min exposure. After insulin injection a significant decrease (P less than 0.05 to less than 0.001) of TSH level was found at 45 to 120 min irrespectively of the ambient temperature. In addition, increased levels of noradrenaline and decreased levels of growth hormone after cold exposure are presented.

Adult↗

Diminished growth hormone secretion in blind males after L-dopa stimulation.

Growth hormone secretion after L-dopa administration (1000 mg p.o.) was investigated in young adult normal and blind volunteers. The average increment of plasma growth hormone after L-dopa stimulation in the blind was below the criterion for a positive response (less than 5 ng ml-1). The control volunteers showed normal response. After L-dopa stimulation there was a significantly diminished growth hormone response in the young adult blind compared to control volunteers.

Administration, Oral↗

Effect of human growth hormone and somatomedin on the recovery of sheep red blood cell receptor in peripheral T-lymphocytes.

The effect of growth hormone (GH) and somatomedin (SM) on the recovery of sheep red blood cell (SRBC) receptor in trypsinized human T-lymphocytes was studied either with the use of sera from patients with acromegaly or pituitary dwarfism or after the addition of exogenous GH, SM or thymosin to human sera. It was found that GH does not show any effect on the recovery of SRBC receptor, but it may act through the increase of SM level. It was concluded that the regulation of cellular immunity may be influenced by GH through its stimulatory action on the synthesis and release of somatomedins.

Acromegaly↗

Effects of sauna and glucose intake on TSH and thyroid hormone levels in plasma of euthyroid subjects.

The effect of sauna on thyroid function parameters and its modification by glucose was studied in young euthyroid male volunteers. A 30-minute stay in sauna resulted in an increase in plasma TSH; the response was exaggerated if glycemia had been increased by oral glucose intake at the beginning of the experiment. Plasma rT3 also increased in sauna, this response was, however, blunted by the higher glycemia. TSH response to sauna was definitely present in young men (aged 20 to 25) and absent in middle-aged ones (50 to 55). To explore the mechanism of the effect of increased glycemia, TRH tests were performed and dopamine infusions were administered with and without glucose pretreatment. Increased glycemia did not affect TSH and T3 response to TRH in young volunteers; however, 90 minutes after the administration, plasma rT3 levels were significantly lower in glucose pretreated subjects than in those receiving TRH injections after water pretreatment. Simultaneous infusion of glucose prevented the inhibitory effect of dopamine infusion on plasma TSH. It was concluded that glucose directly modulates the effect of sauna on plasma TSH at a suprapituitary level, while the inhibiting effect of glucose on plasma rT3 response to sauna and TRH is probably mediated by the insulin effect on thyroid hormone metabolism.

Adult↗

Insulin-induced hypoglycemia activates the release of adrenocorticotropin predominantly via central and propranolol insensitive mechanisms.

The dynamic patterns of pituitary-adrenocortical and sympatho-adrenal hormone responses to insulin hypoglycemia as well as the relative importance of central vs. peripheral control of hypoglycemia-induced ACTH secretion were evaluated. In conscious rats bearing indwelling cannulae, the changes in hormone concentrations after insulin injection were dependent on the changes in blood glucose levels with respect to both time course and magnitude. ACTH, corticosterone, epinephrine, and norepinephrine levels were found to be maximal at 60 min after 2.5 IU kg-1 insulin injected ip, whereas earlier (20 min) but smaller increases were obtained in response to 0.5 IU kg-1 insulin injected iv. In rats 6-7 days after lesions of the medial basal hypothalamus (MBH), the rise of ACTH during insulin hypoglycemia was markedly inhibited and corticosterone levels were significantly reduced. Simultaneously, the hypoglycemia-induced increase in plasma epinephrine was unchanged and that in plasma norepinephrine was significantly enhanced in rats with the MBH destroyed. The beta-adrenoreceptor blocker propranolol did not inhibit ACTH and corticosterone responses to hypoglycemia in either sham-operated or MBH-lesioned animals. We conclude that the main factors triggering ACTH release during insulin-induced hypoglycemia are of central rather than peripheral origin. The high concentrations of circulating catecholamines occurring during insulin hypoglycemia are not responsible for pituitary-adrenocortical activation by direct, beta-adrenoreceptor mediated action at the pituitary level.

Adrenocorticotropic Hormone↗

Increased glucagon secretion during hyperthermia in a sauna.

Plasma glucagon, adrenaline, noradrenaline, insulin and glucose concentrations were measured in 7 healthy young males during hyperthermia in a sauna bath: plasma glucagon levels increased from baseline values of 127.0 +/- 12.9 (SEM) pg X ml-1 to a maximum of 173.6 +/- 16.1 (SEM) pg X ml-1 at the 20th min of exposure. No change in plasma insulin and a slight increase in plasma glucose concentration were seen. Since a concomitant moderate increase in plasma catecholamine levels was also present, the adrenergic stimulus is believed to trigger glucagon release during hyperthermia. Diminished visceral blood flow, known to occur in sauna baths, may cause a decrease in the degradation of plasma glucagon and thus contribute to the elevated plasma glucagon levels.

Adult↗

The patterns of endocrine response to surgical stress during different types of anesthesia and surgery in man.

The authors studied 123 patients undergoing minor (varicectomy) or major (cholecystectomy) surgery under diethyl ether, halothane, enflurane or hydroxydione anesthesia. The goal was to investigate the effects of emotional tension, anesthesia and surgical trauma, as well as glucose load, on the patterns of endocrine response under standardized clinical settings. The endocrine response (growth hormone, cortisol, insulin) was not modified significantly by emotional stress and the anesthetics used. Only prolactin was unique in that its release was markedly stimulated by halothane anesthesia. Neither the anesthetic drugs nor both types of surgical injury led to a constant hyperglycaemic response. Minor surgery failed to stimulate secretion of the studied hormones. However, major surgery stimulated growth hormone and cortisol secretion irrespective of the anesthetic used. Insulin secretion following glucose load was enhanced disproportionately. It is concluded that growth hormone level during surgical stress is determined by the extent and severity of surgical trauma, while neither anesthesia nor emotional tension exert any pronounced stimulative effect on its release. The observed changes in blood glucose levels and the lack of a proportionate insulin secretion are due to the effect of anesthesia rather than to that of surgery.

Adolescent↗

Plasma testosterone and catecholamine responses to physical exercise of different intensities in men.

Plasma testosterone, noradrenaline, and adrenaline concentrations during three bicycle ergometer tests of the same total work output (2160 J X kg-1) but different intensity and duration were measured in healthy male subjects. Tests A and B consisted of three consecutive exercise bouts, lasting 6 min each, of either increasing (1.5, 2.0, 2.5 W X kg-1) or constant (2.0, 2.0, 2.0 W X kg-1) work loads, respectively. In test C the subjects performed two exercise bouts each lasting 4.5 min, with work loads of 4.0 W X kg-1. All the exercise bouts were separated by 1-min periods of rest. Exercise B of constant low intensity resulted only in a small increase in plasma noradrenaline concentration. Exercise A of graded intensity caused an increase in both catecholamine levels, whereas, during the most intensive exercise C, significant elevations in plasma noradrenaline, adrenaline and testosterone concentrations occurred. A significant positive correlation was obtained between the mean value of plasma testosterone and that of adrenaline as well as noradrenaline during exercise. It is concluded that both plasma testosterone and catecholamine responses to physical effort depend more on work intensity than on work duration or total work output.

Adult↗

Increase in plasma ACTH after dopaminergic stimulation in rats.

The effects of a dopaminergic agonist, apomorphine, and a dopaminergic antagonist, haloperidol, on plasma ACTH, and corticosterone levels were evaluated in adult male rats. Subcutaneous administration of apomorphine in the dose range of 50-500 micrograms X kg-1 significantly increased plasma corticosterone levels. Acute treatment with apomorphine (250 micrograms X kg-1) resulted in an elevation of plasma ACTH concentration, peak values being reached 15 min after the injection. The apomorphine-induced rise in plasma ACTH levels was completely inhibited by pretreatment with haloperidol (1 mg X kg-1). A stimulatory role for dopamine receptors in the control of pituitary ACTH release in the rat is suggested.

Adrenocorticotropic Hormone↗

Maturation of the inhibitory response of growth hormone secretion to ether stress in postnatal rat.

To study the maturation of inhibitory influences on growth hormone (GH) secretion the effect of ether stress on plasma GH levels was studied during postnatal ontogenesis in female rats. Ether stress did not affect plasma GH levels in 1-day-old pups. A distinct decrease of plasma GH was found in 3- and 9-day-old pups, and the response was prevented by treatment of 3-day-old animals with somatostatin antiserum. No effect of ether stress on plasma GH was noted in 12-, 15-, 18- and 21-day-old rats. Treatment of intact 12-day-old pups with the somatostatin antiserum increased plasma GH level under basal conditions. The inhibitory effect of ether stress on plasma GH was noted again at the age 30 days and in adult animals. It is concluded that the hypothalamus of 3-day-old rats is able to release enough somatostatin to inhibit GH secretion after stress. At the period 12-18 days a phase of pituitary refractoriness was noted: ether stress as well as TRH injection (our previous observation) fail to affect plasma GH in female pups, probably due to high somatostatin secretion under basal conditions and (or) low capacity of pituitary to release GH. It is suggested that regulation of GH secretion is not mature until after the 21st day of life.

Aging↗