Hyperparathyroidism associated with hyperthyroidism.
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Biomedical subjects
Publications and source records attributed to G Osella.
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The aim of the present study was to analyze the effects of exogenous melatonin (MT) upon pituitary and adrenal responsiveness to releasing hormones in different phases of the menstrual cycle. We evaluated the response of FSH and LH to 100 micrograms gonadotropin releasing hormone, of TSH and prolactin (PRL) to 200 micrograms thyrotropin releasing hormone (TRH), and of cortisol to 10 micrograms ACTH 1-17. We studied eight young women with normal ovulatory cycles in the early follicular (days 5-7) and luteal (days 22-24) phases. Stimulation tests were performed at 18.00 in baseline conditions as well as 1 h after oral intake of exogenous MT (2 mg as a gelatine capsule). We did not observe any significant change in FSH, LH, TSH and cortisol responses to their respective releasing hormones in either phase of the cycle. PRL response to TRH was higher after MT in the follicular phase, when evaluated in terms of net increment and integrated area of response (p less than 0.02 versus baseline conditions for both variables). In the luteal phase, we recorded larger interindividual variability and higher responses after MT were observed in five out of eight subjects. These results suggest that MT may play a facilitatory role in the TRH-induced PRL release in women of reproductive age.
Human sexual behaviour is determined by different regulatory systems. Central and peripheral nervous system, endocrine and vascular systems, all play a pivotal role in the modulation of male sexual activity. Therefore, many steps of possible drug interference can be recognized. In this regard, drugs are usually classified on the basis of their side effects (impairment of libido, erection and/or ejaculation). In the present work we review the sexual-related side effects of drugs of widespread clinical use on the basis of their mechanism and site of action.
We performed a combined stimulation test with the simultaneous application of GnRH (100 micrograms), TRH (200 micrograms) and ACTH (10 micrograms) in 10 healthy adult males at two opposite clock timing, i.e. at 09:00 and 21:00 h. Pituitary (gonadotropins, PRL, TSH) and adrenal (cortisol, aldosterone, progesterone) hormones showed a common trend of enhanced responsiveness to the evening challenge. Differences reached statistical significance in the case of cortisol, aldosterone, PRL and FSH. These findings suggest that the responsiveness of some pituitary and adrenocortical hormones to specific stimuli is physiologically different in humans as a function of the clock timing, being higher in the evening than in the morning. From the clinical standpoint, however, differences in the magnitude of responses were not enough to recommend provocative testing at a particular clock time, at least for routine diagnostic purposes.
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Six healthy adult male volunteers underwent serial blood drawings at 4-hour intervals over 24 hours for the definition of melatonin (MT), prolactin (PRL), cortisol, and testosterone circadian patterns. Serum levels of triiodotironine (T3) and thyroxine (T4) were determined at 0800. Systolic and diastolic blood pressure and heart rate were automatically recorded every 30 minutes for 24 hours. The responses of luteinizing hormone (LH), follicle stimulating hormone (FSH), PRL, thyroid stimulating hormone (TSH), cortisol, and aldosterone to a stimulation test with gonadotrophin-releasing hormone (Gn-RH), thyrotrophin-releasing hormone (TRH), adrenocorticotrophin (ACTH), and testosterone to human chorionic gonadotrophin (HCG) were also evaluated. The same protocol was repeated after a two-month course of treatment with MT, 2 mg per os daily at 1800. After treatment, we recorded a marked elevation of mean serum MT levels with a significant phase-advance of its circadian rhythm. The 24-hour patterns of cortisol and testosterone displayed an anticipation of the morning acrophase of about 1.5 hour (not significant) for cortisol and three hours (P less than 0.05) for testosterone. PRL pattern was unchanged as well as serum levels of thyroid hormones. The circadian organization of the cardiovascular variables did not show any changes after MT supplementation; the pituitary, adrenal, and testicular responses to specific stimuli were comparable before and after treatment. These results are compatible with the view that the MT signal may provide temporal cues to the neuroendocrine network for the organization of testicular circadian periodicity.
We evaluated the circadian profiles of serum melatonin (MT) and cortisol in 6 patients with Cushing's disease while those of serum MT and GH were evaluated in 8 patients with acromegaly. The control group consisted of 15 healthy subjects in whom MT, cortisol and GH were determined. The presence of a circadian rhythmicity was validated by the cosinor method, while the diurnal and nocturnal amount of MT secretion were expressed in terms of area under the curve. Gross alterations of MT rhythm were not apparent in Cushing's patients. In acromegalics, we observed a blunted day-night oscillation of MT accounted for by a significant increase of its secretion during the day-time period.
We monitored the circadian profiles of cortisol, systolic and diastolic blood pressure (SBP and DBP) and heart rate (HR) in 33 matched normotensive subjects, 32 patients with essential hypertension and 16 patients with Cushing's Syndrome (8 pituitary adenomas, 6 adrenal adenomas and 2 adrenal carcinomas). Each subject underwent serial blood drawings at 4-hr intervals along the 24-hr cycle. BP and HR were automatically recorded every 30 min. Data were analyzed by conventional statistics and by chronobiological procedures (cosinor rhythmometry). Both the control subjects and essential hypertensives showed a circadian profile of BP and HR characterized by a peak in the early afternoon and a clear nocturnal fall (rhythm detection: P less than 0.001). The rhythmicity of BP was disrupted in patients affected by Cushing's Syndrome, whereas the 24-hr oscillation of HR was preserved (P less than 0.001). Our data are compatible with the view that glucocorticoids are involved in the control of BP circadian rhythm, whereas HR is not under their control.
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The extensive use of visualization techniques has allowed the finding of adrenal masses without clinical symptoms in a growing number of patients affected by diseases of different nature. The challenge of these masses, so called incidentalomas, is particularly diagnostic but also prognostic and therapeutic. A flow-chart of proper investigations utilized in a tumoral patient harbouring a left adrenal mass, permitted the correct diagnosis and prognosis.
We monitored the circadian profile of cortisol, systolic and diastolic blood pressure (SBP and DBP), heart rate (HR) in 33 normotensive subjects aged 20-40 years, 20 normotensive subjects aged 40-60, 32 patients with essential hypertension and 13 patients with Cushing's syndrome (6 pituitary adenomas, 5 adrenal adenomas and 2 adrenal carcinomas). All controls and patients underwent serial blood drawings at 4-h intervals during the 24-h cycle. BP and HR were recorded every 30 min by an automatic, room-restricted instrument. Data were analyzed by conventional statistics and by chronobiological procedures (cosinor rhythmometry) to quantify rhythm parameters such as the MESOR (rhythm-adjusted average), amplitude (difference between maximum and MESOR) and acrophase (timing of the crest of the rhythm). Both the control and essential hypertensive subjects showed a BP and HR circadian profile characterized by a peak in the early afternoon and a clear nocturnal fall (rhythm detection: p less than 0.001). The chronobiological analysis did not reveal any significant difference between healthy young and aged subjects. BP rhythmicity was disrupted in patients affected by Cushing's syndrome, whereas the 24-h oscillation of HR was preserved (p less than 0.001). Patients with pituitary-dependent Cushing's syndrome had higher BP levels than adrenal-dependent subjects (p less than 0.001). Our data are compatible with the view that glucocorticoids are involved in the control of BP circadian rhythm, whereas HR is not under their control.