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Cardiovascular and endocrine effects of clonidine premedication in neurosurgical patients.

The present study was conducted to examine the haemodynamic and endocrine effects of clonidine, given as sole preanaesthetic medication, in neurosurgical patients. Nineteen patients of ASA physical status I and II, subjected to craniotomy, randomly received po premedication of either clonidine (300 micrograms, n = 9) or placebo (n = 10). Blood pressure and heart rate were monitored continuously, while arterial blood samples were collected at specific times, from induction of anaesthesia to recovery, for the measurement of plasma concentrations of epinephrine, norepinephrine, cortisol, aldosterone, and glucose. Clonidine treatment led to a decrease in mean arterial blood pressure (MABP), heart rate (HR), and plasma cortisol and aldosterone concentrations throughout the study, compared with placebo (P less than 0.05). Clonidine, however, did not prevent increases in MABP (16 +/- 5 mmHg, mean +/- SE, P less than 0.05) and HR (18 +/- 4 bpm, P less than 0.05) during induction of anaesthesia, which was comparable to the placebo group. Plasma catecholamine concentrations did not differ between the two groups. Plasma glucose concentrations increased in both groups at the end of the study (P less than 0.05), but were lower in clonidine-treated patients (P less than 0.05). Though statistically significant, the observed inhibitory haemodynamic and endocrine effects of clonidine seem to be of minor clinical importance. As the action of clonidine on cerebral blood flow regulation is not well known, we see no advantage in the preanaesthetic administration of clonidine to neurosurgical patients with normal cardiovascular status.

Administration, Oral↗

GnRH receptors and GnRH endocrine effects on luteoma cells.

An ovary implanted into the spleen of an ovariectomized rat develops into a luteinized tumor, growing in response to gonadotrophins. Previously, it was shown that in vivo Buserelin, a gonadotrophin-releasing hormone (GnRH) analog, inhibited tumor growth. To determine if GnRH had a direct effect on tumor cells, the presence of GnRH receptors as well as the endocrine effects of buserelin were studied on tumoral tissue. GnRH receptors were present in luteoma in similar concentrations and dissociation constant (Kd) to control estrous ovaries. In vivo treatment with buserelin did not modify luteoma GnRH receptors. In organ incubations, luteoma secreted significantly higher estradiol and lower progesterone than estrous ovaries; addition of buserelin did not modify steroid secretion. The same difference in basal steroid secretion between luteoma cells and luteal cells superovulated prepubertal ovaries was observed in cell cultures. Although luteinizing-hormone (LH)-stimulated progesterone in both kinds of cells, buserelin significantly inhibited LH-stimulated progesterone only in luteoma cells. These results describe clear differences in basal steroid secretion between tumoral and normal tissue. Furthermore, they show that luteoma possess GnRH receptors similar to those in normal ovarian tissue, and that GnRH analogs have endocrine effects on these cells. Therefore, a direct effect of buserelin on luteoma cells can be postulated.

Animals↗

Endocrine effects of oral contraception.

Numerous well-documented endocrine effects of oral contraceptives (OCs) can be subdivided into two groups: (a) those relating to the hypothalamic and pituitary-ovarian system, the breast and the genital tract of the human female and (b) those related indirectly to laboratory testing of other endocrine glands. Benefits from OC use include marked decreases in the incidence of menorrhagia, benign breast disease, dysmenorrhea, iron deficiency anemia, premenstrual tension and ovarian cyst formation--all of which will be discussed only briefly. Of much concern are two suggested adverse effects of OCs: (a) the development of amenorrhea or menstrual disturbance associated with anovulation after discontinuing OCs, thereby possibly influencing the future fertility of former OC users, and (b) the suggested relationship between hyperprolactinemia and the development of micro- and eventually macropituitary adenomas. A review of the literature, along with our own findings, is presented.

Adenoma↗

Pharmacokinetics and endocrine effects of the LHR analogue buserelin after subcutaneous implantation of a slow release preparation in prostatic cancer patients.

The pharmacokinetics and endocrine effects of the LHRH analogue buserelin [D-Ser(TBU)6-LHRH], released from biodegradable implants, were studied in 14 patients with stage C and D prostate cancer. Six patients received a subcutaneous implant of 3.3 mg buserelin monthly, and 8 patients received a subcutaneous implant of 6.6 mg buserelin every two months. Serum levels of buserelin decreased rapidly immediately after implantation. After 1-2 weeks a more gradual decline occurred, while in the two-monthly treated group a third phase of the elimination curve started after 5 weeks. Mean serum buserelin levels just before the next implantation in the two groups were not different. Urinary excretion of buserelin followed the same pattern. Serum LH levels in both groups became non-detectable 2 weeks after the first implant. This decrease of LH levels was accompanied by a suppression of serum testosterone to concentrations below 1 nmol/l (castration level). Side effects were not different from those observed with the intranasal application of buserelin. It is concluded that the subcutaneous application of buserelin is an easily administered form of treatment which has more profound and more reliable endocrine effects when compared with the intranasal administration of the drug. The greatest advantage of the new preparation is that the intervals between applications may be prolonged to at least 2 months.

Aged↗

Sensitive detection of the endocrine effects of the estrogen analogue ethinylestradiol using a modified enhanced subacute rat study protocol (OECD Test Guideline no. 407).

Groups of five male and female Wistar rats were treated by gavage with 0, 0.01, 0.05 or 0.2 mg/kg body weight of the known synthetic estrogen ethinylestradiol for 28-32 days according to a modified enhanced OECD Test Guideline no. 407 in order to investigate which of the current and/or additional parameters would detect effects on the endocrine system reliably and sensitively and to provide data on intra-laboratory variability. Two identical studies (A and B) were run concurrently. The modified enhanced protocol requests the additional determination of triiodothyronine, thyroxine and thyroid-stimulating hormone (TSH), of the stage of the estrous cycle to ensure necropsy of all females in diestrus, of the number and morphology of cauda epididymal spermatozoa, and of additional organ weights (ovaries, uterus, thyroid, and male accessory reproductive organs), and histopathology of additional organs (pituitary, epididymides, coagulation glands, pancreas, and vagina). There were no treatment-related mortalities, clinical signs or changes in behavioral parameters. In male rats, 0.2 mg/kg was the maximum tolerated dose (MTD) resulting in reduced body weight gain. The only treatment-related alteration in hematological parameter was prolonged blood clotting time in high-dose females of both studies. Changes in clinical chemistry observed in study A were elevated alkaline phosphatase activity (high-dose females) and triglyceride levels (mid- and high-dose females and high-dose males). Changes in thyroid hormones and TSH of treated animals showed high variability with no clear dose-dependency, and could not be clearly related to estrogenic activity. In accordance to a suppression of the hypothalamic-pituitary-gonadal axis, decreased relative organ weights of the male accessory reproductive organs were obtained in both studies at the high dose. Corresponding histological changes were degeneration of the testicular germinal epithelium and atrophy of Leydig cells and of all accessory sex glands. Atrophy of the coagulating gland (study A) and seminal vesicles (study B) was also seen at 0.05 mg/kg. A marked increase in relative adrenal weight in male rats, accompanied by decreased vacuolization of zona fasciculata cells observed in both studies at the high dose seems to reflect an activation of the hypothalamic-pituitary-adrenal axis. The male mammary gland was sensitively affected. Increased numbers of small basophilic over large acidophilic cells indicated an estrogen-mediated feminisation and were detected at the low (study A) or mid dose (study B). Co-mitogenic properties of estrogens in rat liver were reflected by increased relative liver weights in females at the mid and high dose of study A and also at the high dose in study B. No treatment-related changes in endocrine organ weights were observed in treated females. Histological changes in the ovaries were increased numbers of apoptotic corpora lutea (from mid dose, study B) and of early stage follicles at the high dose in both studies. Classical direct estrogenic effects on the uterus, i.e. an increased height of luminal and glandular epithelium and increased granulocytic infiltration of the endometrium, were observed even at the low dose in both studies. Uterine findings occurring with a greater variability were dilation, squamous metaplasia of glands and thickened walls. Although females were necropsied in diestrus, as diagnosed by vaginal cytology, typical signs of estrogenic action in the vagina such as keratinization (indicative of estrus in normally cycling rats), mucification (indicative of proestrus), or thickened epithelia were observed in both studies even at the lowest dose. This unexpected discrepancy between vaginal cytology and vaginal and uterine morphology of treated females was considered to be treatment-related as it was not observed in the controls. Studies on liver enzymes that were performed outside the scope of the enhanced protocol showed that ethinylestradiol at 0.2 mg/kg decreased the activity of the sex-specific testosterone-dependent liver enzyme CYP2C11 in male rats. A simulation of doubling group size (to ten animals) by combining both studies did not increase the sensitivity of detection of endocrine-mediated effects above the level already obtained by histopathological examination of groups containing five animals. Only some of the enhancements to the current OECD Test Guideline no. 407 evaluated in this study (additional organs weights and additional histopathological investigations) were helpful in detecting the endocrine-mediated effects of ethinylestradiol, while other enhancements did not contribute towards this aim. Spermatology was completely insensitive at the MTD and measurement of thyroid hormones and TSH did not contribute to increased sensitivity. Vaginal cytology appeared to be an unreliable procedure for estrous cycle staging in estrogen-treated animals. Ongoing investigations, according to the modified version of the enhanced OECD Test Guideline no. 407 protocol, into the interference of ten compounds with the endocrine system by different mechanisms will result in the identification of the most appropriate enhancements.

Animals↗

Endocrine effects of organophosphate antidotal therapy.

To determine the endocrine effects of the treatment of organophosphate poisoning, this prospective study was conducted in a university-based emergency department among patients with a history and clinical findings compatible with those of organophosphate poisoning. Thyrotrophin (TSH), free triiodothyronine (FT3), free thyroxine (FT4), follicle-stimulating hormone (FSH), luteinizing hormone (LH), prolactin (PRL), progesterone (PRG), adrenocorticotropic hormone (ACTH), cortisol, and testosterone (TST) levels were analyzed before and after treatment with atropine and pralidoxime. The Wilcoxon's sign rank sum (nonparametric) test was used to compare dependent variables before and after treatment. A total of 44 patients (19 male; mean age: 28.5 +/- 12.6 y) were enrolled in the study. Patients were hospitalized for 5.4 +/- 1.3 days. Posttreatment ACTH, cortisol, PRL, FT3, FSH, and PRG levels were significantly lower than pretreatment levels (P < .05). The decrease in TSH, LH, and TST levels did not reach statistical significance, while FT4 levels increased following the treatment (P < .05). Six patients were diagnosed on admission with sick euthyroid syndrome, and 11 patients who were euthyroid on admission developed sick euthyroid syndrome following treatment. ACTH, cortisol, PRL, FT3, FT4, FSH, and PRG levels are affected by acute organophosphate poisoning. The change in hormone levels may result from the effects of neurotransmitters, from the direct effect of the toxic agent, or from stress associated with events leading to the poisoning incident.

Adolescent↗

[Endocrine effects of hypotension induced by diltiazem in rabbits].

Endocrine effects of hypotension induced by diltiazem, a calcium antagonist, were studied in 16 male rabbits under the inhalation of 0.7% halothane in oxygen. They were randomly allocated to one of two groups. Group C (n = 8) received no vasodilator therapy and served as control and group D (n = 8) received infusion of diltiazem. Mean arterial pressure was decreased and was maintained at 60 mmHg for 60 minutes in group D. No change was noted in plasma catecholamines measured in group C throughout the experiment but plasma renin activity decreased progressively. During and after induced hypotension in group D plasma epinephrine showed a dramatic rise compared with the control value. The maximum increase occurred 30 minutes after induction of hypotension but this change was not statistically significant. Plasma norepinephrine in group D was significantly higher than the control value. Compared with the control value (0.19 +/- 0.04 ng.ml-1), plasma norepinephrine was activated 30 and 60 minutes after induction of hypotension (0.71 +/- 0.16 ng.ml-1, P less than 0.05, 0.82 +/- 0.20 ng.ml-1, P less than 0.05, respectively). Plasma renin activity in group D was significantly higher than the control value. The highest level of plasma renin activity was three times the control value 30 minutes after induction of hypotension. In conclusion, our data show that induced hypotension by diltiazem activates the renin-angiotensin-sympathetic nervous system.

Animals↗

[Endocrine effects of hypotension induced by nicardipine in rabbits].

Endocrine effects of hypotension induced by nicardipine, a calcium antagonist, were studied in 18 male rabbits under halothane anesthesia. They were randomly divided into two groups; nicardipine (group N; n = 10) and controls (group C; n = 8). No change was noted in plasma catecholamines in group C throughout the experiment, but plasma renin activity decreased progressively. During and after induced hypotension, in group N, plasma epinephrine was significantly higher than the control value. The highest level of plasma epinephrine was seven times of the control value during 30 minutes after induction of hypotension. Plasma norepinephrine of group N was significantly higher than the controls. The maximum increase occurred 60 minutes after induction of hypotension. Plasma renin activity of group N was significantly higher than the control value. Compared with the control value (15.1 +/- 1.8 ng.ml-1.hr-1), plasma renin activity was activated 30 and 60 minutes after induction of hypotension (55.5 +/- 6.0 ng.ml-1.hr-1, P less than 0.001, 50.3 +/- 7.1 ng.ml-1.hr-1, P less than 0.01, respectively). In conclusion, our data show that hypotension by nicardipine activates the renin-angiotensin-sympathetic system.

Animals↗

Endocrine effects of human recombinant interleukin-3 in cancer patients.

It is known that several cytokines can exert hormonal effects. At present, no data are available about the possible influence of IL-3 on the endocrine system. In order to investigate the endocrine effects of IL-3 in humans, we have evaluated serum levels of cortisol, beta-endorphin, GH, PRL, FSH, LH, TSH and melatonin in response to intravenous injection of IL-3 at a dose of 1 mcg/kg b.w. at 6.00 p.m. The study was performed in 5 non-small cell lung cancer patients. GH increased significantly in response to IL-3. PRL showed a progressive decrease after IL-3 injection, but its variations were not statistically significant. All other hormones, including cortisol, were not affected by IL-3. This preliminary study shows that IL-3 may exert endocrine effects in humans, which would seem at variance with previously reported results on most other cytokines.

Biomarkers, Tumor↗

Endocrine effects of alcohol.

A variety of effects of alcohol on endocrine function are now well documented. Clinically, the most important of these are alcohol-induced 'pseudo-Cushing's syndrome' and a syndrome of hypothalamic-pituitary-adrenocortical unresponsiveness, both of which result from long-term over-indulgence, and impairment of testosterone secretion which may occur following relatively short-term drinking. Evidence indicates that a number of different mechanisms are responsible for mediating the effects of alcohol on endocrine function. In a few instances (e.g. inhibition of vasopressin secretion and impairment of steroidogenesis resulting in a fall in testosterone production rate), alcohol appears to influence directly the release or synthesis of individual hormones. However, the majority of the endocrine effects of alcohol are probably indirect, resulting from either the stress of intoxication (stimulation of cortisol, catecholamines and possibly GH and prolactin), changes in the level of intermediary metabolites (e.g. a fall in circulating FFA stimulating GH secretion) or changes in the metabolism of hormones (e.g. catecholamines, oestrogens, androgens) resulting from alteration in intracellular redox state or tissue damage.

Adrenal Cortex↗

Endocrine effects of 5-methoxytryptoline, 5-hydroxytryptoline and tryptoline, putative modulators of rat serotonergic system.

The effects of tryptolines (TH beta Cs), putative endogenous compounds acting on the serotonergic function, have been studied on endocrine parameters in rats. In particular, graded doses of 5-methoxytryptoline (5-MeOT), 5-hydroxytryptoline (5-OHT) and tryptoline (Tp) were ip or iv administered to the animals and the circulating titers of prolactin (PRL), growth hormone (GH) and luteinizing hormone (LH) were assayed either at 20 min or at various times after the injection of the compounds. The data herein reported show that TH beta Cs exert endocrine effects, at least in a pharmacological condition. However, the three compounds unequally affect anterior pituitary function. In fact, while 5-MeOT, 5-OHT and Tp all enhance plasma PRL concentrations in a quick, short lasting and dose-related manner, 5-MeOT and Tp induce also decreases of serum LH levels in ovariectomized rats, and 5-MeOT only is able to diminish plasma GH titers. These findings underline an endocrine effect for TH beta Cs in pharmacological conditions and may suggest a functional role for these compounds in the control of anterior pituitary function.

Animals↗

Acute endocrine effects of interleukin-12 in cancer patients.

IL-12, which play a fundamental antitumor role, would be also involved in the physiological regulation of neuroendocrine and immune interactions. At present, however, there are no data about the endocrine effects of IL-12. This preliminary study was performed to investigate the acute endocrine effects of IL-12 in metastatic renal cell cancer patients. Each IL-12 injection consisted of 0.5 micrograms/kg/bw subcutaneously in the morning. The study has evaluated the effects of 6 different injection cycles. Serum samples were collected before, and 4, 8 and 12 hours from IL-12 injection. In each sample, we have measured by the RIA method serum levels of GH, PRL, TSH, FSH, LH, T3, T4, cortisol, testoterone, estradiol and the pineal hormone melatonin. No significant change occurred in TSH, FSH, LH, T3, T4, testoterone and melatonin mean serum levels in response to IL-12 administration. In contrast, cortisol, PRL and estradiol significantly increased after Il-12 injection. GH also increased in response to IL-12, without however, significant differences with respect to the baseline values. This preliminary study shows that the acute subcutaneous injection of IL-12 may influence the endocrine secretions in humans. In particular, IL-12 would stimulate the secretions of cortisol, PRL and estradiol. Therefore, this study would further confirm that IL-12 may act as biological response modifier in humans, not only on the immune system, but also on the neuroendocrine functions.

Carcinoma, Renal Cell↗

The endocrine effects of long-term treatment with mifepristone (RU 486).

Mifepristone (RU 486) is a compound with progesterone as well as cortisol-blocking activities. We investigated the endocrine effects of long-term therapy of 10 patients with meningiomas with 200 mg mifepristone daily for 1 yr. Most patients initially complained of nausea, vomiting, and/or tiredness. In four patients prednisone (7.5 mg/day) had to be given simultaneously in order to overcome these side-effects. In retrospect those patients who presented with the most severe side-effects showed the most rapidly occurring activation of the hypothalamo-pituitary-adrenal-axis, as measured by an increase of circulating cortisol levels as well as of urinary cortisol excretion. Therapy with RU 486 activated the hypothalamo-pituitary-adrenal axis, resulting in a resetting of this system at a higher level at which the diurnal rhythm and the responsiveness to CRH stimulation were maintained, whereas the sensitivity to dexamethasone had diminished. Secondarily the production of androstenedione and estradiol increased considerably. These endocrine changes were caused by the induction of partial cortisol receptor resistance during therapy with RU 486. The compensatory overproduction of androgens and consequently of estrogens during long-term RU 486 therapy might limit its use as a single treatment in the treatment of estrogen-dependent cancer.

Adrenocorticotropic Hormone↗

Endocrine effects of erythropoietin in cancer patients.

The recent advances in the knowledge of the psychoneuroimmunological pathogenesis of human neoplasms have demonstrated the existence of feed-back mechanisms operating between interleukins and endocrine secretions, which play an important role in the regulation of the immune responses, including the anticancer immunity. In contrast, few studies only have been performed to investigate the possible relation between endocrine activities and hematopoietic growth factors. The present study was performed to analyze the acute endocrine effects of erythropoietin-alpha (EPO) on the main endocrine secretions. The study was carried out in 10 advanced solid tumor patients. EPO was injected subcutaneously at a dose of 10,000 U, and venous blood samples were collected before and 2, 4 and 6 h after EPO administration. No significant changes in mean serum levels of FSH, LH and TSH were seen in response to EPO. Cortisol and DHEAS concentrations increased after EPO injection, whereas those of PRL decreased, but none of these differences was statistically significant. Finally, mean serum levels of both growth hormone (GH) and somatomedin-C (IGF-1) significantly decreased after EPO administration. This preliminary study shows that EPO may inhibit GH secretion from the pituitary gland and IGF-1 production. Since GH would stimulate EPO release, the results of this study may suggest the existence of feedback mechanism operating between GH secretion and EPO production, with inhibitory effect of EPO on GH secretion, and stimulatory action of GH on EPO production. Therefore, this study would describe the first example of hemato-endocrine feedback mechanisms. Moreover, this study, by showing an inhibitory effect of EPO on IGF-1 secretion, would suggest a possible use of EPO in the medical oncology not only for the treatment of cancer related anemia, but also to counteract tumor growth by blocking IGF-1 production, which has been proven to be a growth factor for several tumor histotypes. Obviously, IGF-1 is not the only tumor growth factor, but it could play a fundamental role in the regulation of production and activity of several other tumor growth factors. In any case, this study describes the only acute endocrine effects of EPO. Therefore, further studies, by evaluating the endocrine effects of a chronic treatment with EPO, will be required to establish which may be its effect on IGF-1 endogenous production, and its consequence on survival time.

Aged↗

Endocrine effects of tamoxifen plus exemestane in postmenopausal women with breast cancer.

PURPOSE: In some specific circumstances, combined hormonal therapies for breast cancer seem to be more effective than single maneuvers. In two laboratory mammary cancer models, the combination of the aromatase inactivator exemestane plus tamoxifen gives a higher response rate than is found with either agent alone. To evaluate the endocrine effects of the combination of exemestane and tamoxifen, we studied 33 postmenopausal women disease-free following primary treatments for breast cancer who were taking tamoxifen for at least 3 months. DESIGN: After observation for symptoms on tamoxifen for 4 weeks, blood samples were taken and patients were begun additionally on exemestane 25 mg p.o. qd. Eight weeks later, blood samples were again taken, and exemestane was discontinued. RESULTS: A decrease in alkaline phosphatase was found with exemestane treatment (P = 0.06), whereas no change in osteocalcin level was observed. A decrease in high-density lipoprotein cholesterol level was found (P = 0.0025), whereas total cholesterol, low-density lipoprotein cholesterol and triglyceride levels showed no changes with exemestane treatment. Estradiol, estrone, and estrone sulfate levels decreased to immeasurable or very low levels with exemestane treatment (all P < 0.001). No significant changes in frequencies of common drug-associated side effects, such as vasomotor symptoms or weight change, were found. CONCLUSIONS: Based on the absence of adverse endocrine effects with the addition of exemestane to tamoxifen therapy observed in this study, further clinical evaluation of the efficacy of this combination is warranted.

Adult↗

Pharmacokinetics and systemic endocrine effects of the phyto-oestrogen 8-prenylnaringenin after single oral doses to postmenopausal women.

AIMS: Pre-clinical data suggest that the racemic phyto-oestrogen 8-prenylnaringenin (8-PN) may have beneficial effects in postmenopausal women and may become an alternative to classical hormone replacement therapy (HRT) treatment regimes. The aim of this study was to investigate the pharmacokinetics, endocrine effects and tolerability of chemically synthesized 8-PN in postmenopausal women. METHODS: The study was performed using a randomized, double-blind, placebo-controlled, dose-escalation design with three groups of eight healthy postmenopausal women. In each group six subjects received 8-PN and two subjects placebo. 8-PN was given orally in doses of 50, 250 or 750 mg. Drug concentrations in serum, urine and faeces were measured up to 48 h and follicle-stimulating hormone/luteinizing hormone (LH) concentrations up to 24 h. RESULTS: All treatments were well tolerated and associated with a low incidence of (drug unrelated) adverse events. Serum concentrations of free 8-PN showed rapid drug absorption and secondary peaks suggestive of marked enterohepatic recirculation. Independent of the treatment group, approximately 30% of the dose was recovered in excreta as free compound or conjugates over the 48-h observation period. The first C(max) and AUC(0-48 h) showed dose linearity with ratios of 1 : 4.5 : 13.6 (C(max)) and 1 : 5.2 : 17.1 (AUC). The750- mg dose decreased LH concentrations by 16.7% (95% confidence interval 0.5, 30.2). CONCLUSION: Single oral doses of up to 750 mg 8-PN were well tolerated by postmenopausal women. The pharmacokinetic profile of 8-PN was characterized by rapid and probably complete enteral absorption, high metabolic stability, pronounced enterohepatic recirculation and tight dose linearity. The decrease in LH serum concentrations found after the highest dose demonstrates the ability of 8-PN to exert systemic endocrine effects in postmenopausal women.

Administration, Oral↗

[Metabolic and endocrine effects of water and/or food deprivation in rats].

Metabolic and endocrine effects of water and/or food deprivation in rats. We aim at studying the effect of water deprivation, food deprivation and their combination for three days on adrenal cortex, pituitary-thyroid axis and vasopressinergic system activity in rats. Corticosterone level was determined by fluorimetric method. The levels of free thyroxine (FT4) and thyroid stimulating hormone (TSH) were determined by immunoenzymatic assay and vasopressin (AVP) level was determined by radio-immunoassay. In all three groups, basal levels of plasma corticosterone were increased. A thyroid dysfunction was shown after water deprivation, food deprivation and their combination reflected by a significant decrease in FT4 levels. Paradoxically, a significant decrease in TSH level was observed in food-deprived rats and in rats subjected to simultaneous food and water deprivation, while a slight and not significant decrease in TSH level was shown in water-deprived rats. A significant increase in plasma AVP level was observed after water deprivation and simultaneous water and food deprivation, while no change was found after food deprivation. The data indicated that water deprivation, food deprivation and their combination stimulated the adrenal cortex, thereby suggesting a stress state. On the other hand, it seems that nutritional stress modifies the pituitary-thyroid axis through mechanisms different from those of osmotic stress. Moreover, it seems that food deprivation partially prevented the stimulatory effect of water deprivation on vasopressinergic system.

Adrenal Cortex↗

Pharmacokinetic profile and endocrine effects of posatirelin treatment in healthy elderly subjects.

The pharmacokinetics and endocrine effects of a therapeutic dose (10 mg/day) of posatirelin (L-pyro-2-aminoadipyl-L-leucyl-L-prolinamide) were investigated in healthy elderly subjects. Posatirelin was given once daily by intramuscular injection for 7 days. Pharmacokinetic parameters were estimated using a model-independent approach. The plasma concentrations of free triiodotyronine (FT3), free thyroxine (FT4), and thyroid-stimulating hormone (TSH) and the circadian rhythms of prolactin and cortisol were considered as indicator variables of endocrine response to posatirelin administration. Posatirelin was well tolerated and no significant adverse effects were observed during the study. Peak plasma concentration (Cmax), time of peak plasma concentration (tmax), area under the plasma concentration-time curve from time zero to infinity (AUC0-infinity), elimination half-life (t1/2), and total clearance (CI/F) were measured after single-dose intramuscular injection (day 1) and after multiple-dose administration (day 7). There were no significant changes in these parameters after multiple-dose administration (day 7). Posatirelin induced a progressive reduction in basal TSH levels and maximum response. There were no significant changes during treatment in the time at which basal levels of FT3 and FT4 occurred, and these levels remained within the normal range throughout the study. The circadian rhythms of cortisol and prolactin were not influenced by posatirelin treatment. The pharmacokinetics of posatirelin were not time dependent, and the drug did not accumulate after multiple-dose administration. Short-term treatment with posatirelin did not induce clinically relevant endocrine consequences in healthy elderly subjects.

Aged↗