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Atrial natriuretic hormone, vessel dilator, long-acting natriuretic hormone, and kaliuretic hormone decrease the circulating concentrations of total and tree T4 and free T3 with reciprocal increase in TSH.

The present investigation was designed to determine whether atrial natriuretic peptides (ANPs) consisting of amino acids 1-30 [i.e. long-acting natriuretic hormone (LANH)], 31-67 (vessel dilator), 79-98 (kaliuretic hormone), and 99-126 (atrial natriuretic hormone [ANH]) of the 126-amino acid ANH prohormone decrease the circulating concentrations of total and free T4 and/or free T3 in healthy humans (n = 30). Vessel dilator, kaliuretic hormone, LANH, and ANH decreased the circulating concentrations of total T4 by 61%, 58%, 47%, and 55% and of free T4 by 60%, 67%, 79%, and 79%, whereas free T3 decreased 72%, 67%, 71%, and 67% (P < 0.05 for each), respectively, when infused at 100 ng/kg BW x min for 60 min. Vessel dilator, kaliuretic hormone, LANH, and ANH simultaneously increased circulating TSH concentrations 4- to 12.5-fold (P < 0.004). The decreases in T4 and T3 with reciprocal increases in TSH lasted 2-3 h after cessation of the respective ANP infusions. The reciprocal increase in TSH with the decreases in T4 and T3 suggests that their modulation of T4 and T3 concentrations occurs in the thyroid rather than in the pituitary or hypothalamus, because TSH would be decreased in the circulation if their inhibitory effects were in either the hypothalamus or pituitary.

Adult↗

[Thyroid hormone metabolism in nonthyroidal illness. I. Changes in thyroid hormone metabolism in dogs with experimental myocardial infarction and effect of thyroid hormone administration on their hemodynamics].

To asses the changes in thyroid hormone metabolism after the onset of acute myocardial infarction (AMI), serum T4 and T3 levels were serially measured for 24 hours after the coronary artery ligation in dogs. The effect of thyroid hormone administration on hemodynamics in these dogs were also studied to clarify the possible usefulness of thyroid hormone therapy in nonthyroidal illness (NTI). Dogs were anesthetized with ketamine using "Micro-Mini" drip administration. Coronary artery ligation was performed in 8 dogs (MI group) Open chest operation was performed in 8 dogs, but their coronary arteries were not ligated and were used as control (cont. group). Blood samples were drawn before and 1, 3, 6, 12, 18 and 24 hours after coronary artery ligation, and serum levels of T4 and T3 were measured using the TDX T4 system and a commercial RIA kit, respectively. Various hemodynamic parameters (heat rate, mean blood pressure, max dp/dt, left ventricular end-diastolic pressure, cardiac output) were measured at the same time mentioned above. All the hemodynamic parameters remained within normal range for 24 hours in the control group. Serum T4 and T3 levels, however, showed slight, but significant decreases due to general anesthesia and open chest operation in the control group. On the other hand, hemodynamic parameters were maintained in the normal ranges only for 12 hours, and gradually deteriorated in the MI group. Moreover, it was remarkable that both T4 and T3 levels were decreased immediately after the ligation in this group, T4 being less than 0.1 micrograms/dl and T3 less than 10 ng/dl. They continued to show the low values thereafter. When T4 (30 micrograms/24 hours), and T3(7, 14 or 21 micrograms/24 hours) were continuously infused intravenously for 24 hours after the coronary artery ligation in 10 dogs, serum T4 levels were maintained in the normal range of the dog (1.5-3.6 micrograms/dl) and the serum T3 levels were increased to the low normal range. However, there were no significant differences in hemodynamic indices between the thyroid hormone treated groups and the non-treated group. These data show that T4 and T3 concentrations decrease prior to the deterioration of cardiac function. Moreover, the present findings also suggest that administration of thyroid hormone has no benefit in patients with NTI associated with low T4 and T3 levels.

Animals↗

Response to thyroid stimulating hormone in 1-week-old rat thyroid gland after pretreatment with the same hormone in newborn conditions (hormonal imprinting).

Compared with control animals without hormone action, newborn rats treated with thyroid stimulating hormone (TSH) developed more exocytotic vesicles and enlarged endoplasmic reticulum filled with products in the thyroid gland up to the first postnatal week. A single administration of the hormone in newborn rats (imprinting) resulted in a long-lasting effect on the functioning of the cells of the thyroid gland. Single hormone action in postnatal 1-week-old animals provoked the discharge of products from the cells into the follicles of the thyroid gland with a concurrent endocytosis within 5 min after treatment. A similar but more vigorous effect was demonstrable in animals treated with TSH in newborn (hormonal imprinting) and postnatal 1-week-old conditions. Such events were accompanied by the death of certain cells while others developed myelin-like structures and showed signs of folliculogenesis in the cytoplasm.

Animals↗

Pituitary pigmentary hormones. Relationship of melanocyte-stimulating hormone to lipotropic hormone.

Pituitary control of pigmentation has known for more than 60 years. Since 1969, beta-melanocyte-stimulating hormone (beta-MSH) has been accepted as the main pituitary pigmentary hormone in man. Its "constant companionship" with adrenocorticotrophic hormone (ACTH) has also been repeatedly demonstrated. Current investigations challenge both of these concepts. Human beta-MSH immunoreactivity has been shown to be actually due to beta-lipotropic hormone (beta-LPH), a larger molecule that within itself contains the entire amino acid sequence of beta-MSH. Human beta-MSH does not exist in vivo; it is merely an extraction artifact formed by enzymatic degradation of beta-LPH. It would appear likely that beta-LPH, not beta-MSH, is the constant companion of ACTH.

Adrenocorticotropic Hormone↗

A comparison of the luteinizing hormone-releasing activities of synthetic chicken luteinizing hormone-releasing hormone (LH-RH), synthetic porcine LH-RH, and buserelin, an LH-RH analogue, in the domestic fowl.

The luteinizing hormone-releasing activities of synthetic chicken luteinizing hormone-releasing hormone (chLH-RH), synthetic porcine LH-RH (pLH-RH), and an analogue of LH-RH (buserelin, D-Ser-(But)6-des-Gly10-LH-RH ethylamide) were compared in the domestic fowl. In adult cockerels, intravenous injections of 0.5 or 1 microgram chLH-RH/kg released the same amount of LH as the same doses of pLH-RH; subcutaneous injections of 0.5 or 1 microgram buserelin/kg were about twice as effective as the same doses of pLH-RH. In laying hens, injections of 1, 10, 20, and 50 micrograms buserelin induced more sustained releases of LH than the corresponding doses of pLH-RH. Daily injections of 1 or 10 micrograms buserelin/bird or of 10 micrograms pLH-RH/bird for 12 days synchronized the timing of most ovipositions showing that the injections of releasing hormone could induce preovulatory surges of LH. In contrast with mammals, daily injections of buserelin in laying hens did not reduce pituitary responsiveness to the analogue. It is concluded that the structural difference between mammalian and chicken LH-RH does not affect their LH-releasing activities in the domestic fowl. Although the LH-releasing activity of buserelin in the hen is greater than that of pLH-RH, the difference in activity is not as great as that observed in most mammals. This view is strengthened by the finding that chronic treatment with buserelin, which exerts an antagonistic effect on ovulation in mammals, does not do so in the domestic hen.

Animals↗

Absence of an effect of naloxone, an opioid antagonist, on luteinizing hormone release in vivo and luteinizing hormone-releasing hormone I release in vitro in intact, castrated, and food restricted cockerels.

The possibility that the tonic secretion of luteinizing hormone (LH) and chicken luteinizing hormone-releasing hormone I (LHRH-I) is regulated by an inhibitory action of endogenous opioid peptides was investigated in cockerels using the opiate receptor antagonist, naloxone. Baseline concentrations of plasma LH in the experimental cockerels were increased by surgical castration or reduced by limiting food intake. Baseline and K(+)-induced releases of LHRH-I from perifused mediobasal-preoptic hypothalami from castrated cockerels were higher than those from hypothalami from intact cockerels. Similarly, baseline and K(+)-induced releases of LHRH-I from perifused mediobasal hypothalami from fully fed cockerels were higher than those from the hypothalami from fasting cockerels. Intravenous injections of 0.1, 1, or 10 mg naloxone/kg body weight failed to increase the concentration of plasma LH in castrated, intact, fully fed, or fasted cockerels. Perifusion of mediobasal-preoptic hypothalami from castrated or intact cockerels with 200 microM naloxone or mediobasal hypothalami from fully fed or fasted cockerels with 10 microM naloxone failed to stimulate the release of LHRH-I. These observations suggest in the cockerel that endogenous opioid peptides may not play an obligatory role in the inhibitory control of the tonic secretion of luteinizing hormone.

Animals↗

Comparison of mammalian luteinizing hormone releasing hormone (LH-RH), and of an analog (ICI 118630), on luteinizing hormone and ovarian steroid (progesterone, oestradiol) secretions in laying hens. (Gallus domesticus).

This experiment was conducted to compare the luteinizing hormone (LH), progesterone (P4) and oestradiol (E2) release in response to injections of various doses of synthetic mammalian luteinizing hormone-releasing hormone (LH-RH) and of an LH-RH agonist, ICI 118630, administered to laying hens 4 to 9 hours after a mid-sequence ovulation. Plasma LH increased significantly within 10 minutes of injection of either compound whereas any increases in plasma steroid concentrations were discerned later, at approximately minutes post-injection. No dose-response relationship was found for either compound with respect to LH release, but ICI 118630 appeared more potent than LH-RH. This analog also produced a greater mean incremental rise in plasma progesterone, but not oestradiol, than LH-RH, and this was found in animals injected at a time when the largest ovarian follicle was not mature. These result suggest that ICI 118630 is a more potent releasing hormone in the hen at the level of the pituitary, and that it may have a stimulating effect on ovarian progesterone secretion.

Animals↗

Detection of epitopes on follicle-stimulating hormone and FSH-antiserum-induced suppression of bioactivity of follicle-stimulating hormone and luteinizing hormone.

There are currently two major approaches to hormonal male contraception. One relies on testosterone (analogs) either alone or in combination with gonadotropin releasing hormone (GnRH) (analogs or immunizations), the other on immunizations against follicle-stimulating hormone (FSH). Theoretically, the latter method will suppress spermatogenesis whilst not interfering with libido. An absolute requirement is, however, that an anti-FSH vaccine does not include anti-luteinizing hormone (LH) antibodies (LH being responsible for the induction of testosterone which is necessary to maintain libido). In this report we show that when whole FSH is used for vaccination, in most cases in addition to biological activity against FSH, anti-LH activity is also induced. By systematic analysis of the antisera raised with FSH using systematic epitope scanning (PEPSCAN) we found differences between the FSH-specific and FSH-nonspecific sera. Only the FSH-specific antiserum contained antibodies that recognized amino acid sequence 37-55 on the beta-subunit in a linear manner. Because antibodies against this epitope have not been found in the cross-reactive sera this epitope forms a prime candidate for an anti-FSH contraceptive vaccine.

Amino Acid Sequence↗

A study on the effects of interaction between naloxone and 2-Br-alpha-ergocryptine or clonidine on luteinizing hormone, follicle-stimulating hormone, prolactin and thyroid-stimulating hormone levels in normal man serum.

The effects of 2-Br-alpha-ergocryptine (2.5 mg/osM), clonidine (50 microgram, intramuscularly) and naloxone (0.4 mg, intramuscularly) as well as the interaction between naloxone and 2-Br-alpha-ergocryptine or clonidine on luteinizing hormone (LH) follicle-stimulating hormone (FSH), prolactin (PL) and thyroid-stimulating hormone (TSH) serum levels in normal man have been studied. 2-Br-alpha-ergocryptine and clonidine clearly reduce and naloxone tends to reduce PL serum levels. TSH levels are lowered by naloxone as well by clonidine plus naloxone. The results obtained point also to a possible different pattern of LH and FSH secretion after naloxone, that is after opiate receptor blockade. The clonidine effects on PL secretion are discussed in the frame of a possible adrenergic control of the release of this hormone.

Adult↗

Agmatine, a novel hypothalamic amine, stimulates pituitary luteinizing hormone release in vivo and hypothalamic luteinizing hormone-releasing hormone release in vitro.

Agmatine, a clonidine displacing substance and imidazoline receptor agonist, was recently isolated from bovine brain and shown to be present in the rat hypothalamus. Since clonidine can stimulate the release of pituitary luteinizing hormone (LH), we tested the hypothesis that agmatine may similarly act in the rat to stimulate the hypothalamic luteinizing hormone-releasing hormone (LHRH)-pituitary LH axis. Administration of agmatine intracerebroventricularly rapidly augmented the release of LH in a dose-related fashion in ovariectomized, ovarian steroid-primed rats. Additionally, agmatine enhanced the in vitro efflux of LH releasing hormone from the median eminence-arcuate nucleus of the hypothalami of rats similarly pretreated with steroids. These studies imply that the endogenous imidazoline receptor agonist, agmatine, may serve as an excitatory neurotransmitter/neuromodulator in the hypothalamic control of LH release and we suggest that the previously reported excitatory effects of clonidine on LH release may be attributed to stimulation by clonidine of imidazoline receptors.

Agmatine↗

Temporal relations between plasma concentrations of luteinizing hormone, follicle-stimulating hormone, estradiol-17beta, progesterone, prolactin, and alpha-melanocyte-stimulating hormone during the follicular, ovulatory, and early luteal phase in the bitch.

Compared with other domestic animals, relatively little is known about the changes in, and temporal relations between, reproductive hormones around the time of ovulation in the domestic bitch. Therefore, plasma concentrations of luteinizing hormone (LH), follicle-stimulating hormone (FSH), estradiol-17beta, progesterone, prolactin (PRL), and alpha-melanocyte-stimulating hormone (alpha-MSH) were determined one to six times daily from the start of the follicular phase until 5 days after the estimated day of ovulation in six Beagle bitches. In all bitches, the pre-ovulatory LH surge was accompanied by a pre-ovulatory FSH surge. A pre-ovulatory PRL or alpha-MSH surge was not observed. The pre-ovulatory FSH and LH surges started concomitantly in four bitches, but in two bitches the FSH surge started 12 h earlier than the LH surge. The FSH surge (110+/-8 h) lasted significantly longer than the LH surge (36+/-5 h). In contrast with the pre-ovulatory FSH surge, the pre-ovulatory LH surge was bifurcated in four of six bitches. The mean plasma LH concentrations before (1.9+/-0.4 microg/L) and after (1.9+/-0.3 microg/L) the LH surge were similar, but the mean plasma FSH concentration before the FSH surge (1.6+/-0.3 U/L) was significantly lower than that after the FSH surge (3.1+/-0.2 U/L). In most bitches the highest plasma estradiol-17beta concentration coincided with or followed the start of the pre-ovulatory LH surge. In five of the six bitches the plasma progesterone concentration started to rise just before or concurrently with the start of the LH surge. In conclusion, the results of this study provide evidence for the differential regulation of the secretion of LH and FSH in the bitch. In addition, the interrelationship of the plasma profiles of estradiol-17beta and LH suggests a positive feedback effect of estradiol-17beta on LH surge release. The start of the pre-ovulatory LH surge is associated with an increase in the plasma progesterone concentration in this species.

Animals↗

Circadian secretory pattern of growth hormone, insulin-like growth factor type I, cortisol, adrenocorticotropic hormone, thyroid-stimulating hormone, and prolactin during HIV infection.

The circadian rhythms of plasma growth hormone (GH), insulin-like growth factor type I (IGF-I), cortisol, adrenocorticotropic hormone (ACTH), thyroid-stimulating hormone (TSH), and prolactin (PRL) were evaluated in 13 HIV-seropositive patients (8 males and 5 females; mean age [+/-SD], 30 +/- 5 years), classified as CDC C2. Sixteen clinically healthy subjects (9 males and 7 females; mean age [+/-SD], 32 +/- 8 years) were chosen as control group. Samples were taken every 4 hr from 04:00 to 20:00 and every 2 hr from 20:00 to 04:00. Plasma GH was evaluated by IRMA procedure, plasma IGF-I by RIA (after separation of soluble IGF-I from IGF-I-binding proteins, using acid-ethanol extraction), plasma cortisol by a solid-phase RIA, plasma ACTH by double-antibody RIA, and serum TSH and serum PRL by a solid-phase two-site fluoroimmunometric assay. Rhythmometric data were analyzed by single and population mean cosinor analysis; the comparison of the parameters of the rhythm between patients and controls was carried out by the mesor test and the amplitude-acrophase Hotelling test. Alterations of the circadian pattern of GH, IGF-I, cortisol, ACTH, TSH, and PRL were demonstrated in HIV-seropositive patients. In fact, the circadian profiles of these hormones were clearly flattened and no statistically significant 24-hr rhythm was detectable (with the exception of cortisol). These results are consistent with the hypothesis that alterations of the circadian temporal structure may already be present in HIV-seropositive patients without wasting and infectious complications.

Adrenocorticotropic Hormone↗

Serum and pituitary luteinizing hormone and serum androgens during luteinizing hormone releasing hormone self-priming in immature and pubertal male rats.

Pubertal and young adult male rats release more luteinizing hormone (LH) in response to luteinizing hormone releasing hormone (LHRH) if they are pretreated with LHRH than if they are pretreated with saline. Immature male rats do not show this self-priming effect. To examine some of the possible causes of this difference, immature or pubertal male rats were anesthetized with ketamine HCl and received 3 i.v. injections of 10 ng/100 BW LHRH or saline at 30-min intervals (Times 0, 30 and 60 min) and they were decapitated at Times 0, 15, 30, 45, 60, 75 and 90 min. Serum and pituitary LH and serum testosterone and androstenedione were determined by radioimmunoassay. A self-priming effect was apparent in pubertal rats. LH levels in response to the third LHRH injection were significantly higher compared to the response to the first injection. No self-priming effect was evident in immature rats. No changes in pituitary LH that could account for this difference were apparent. Serum testosterone levels in response to the LHRH priming were relatively higher in immature rats than in pubertal animals at 30, 45 and 60 min. Serum androstenedione levels were relatively higher in pubertal rats at 45 min. These data indicate that LHRH self-priming effect can be demonstrated in male rats using serum collected from decapitated animals for hormone analysis. They also suggest that a different relative response of serum androgens may be one cause of the appearance of LHRH self-priming during the sexual maturation of the male rat.

Androstenedione↗

Effects of carbamazepine on pituitary responsiveness to luteinizing hormone-releasing hormone, thyrotropin-releasing hormone, and metoclopramide in epileptic patients.

Pituitary responsiveness to luteinizing hormone-releasing hormone (LH-RH), thyrotropin-releasing hormone (TRH), and metoclopramide (MC) was studied in 40 epileptic patients (24 men and 16 women) receiving carbamazepine (CBZ) treatment and in 29 (20 men and 9 women) untreated epileptic patients. Mean basal concentration of serum LH was significantly lower in the CBZ-treated female patients than in untreated female patients. The response of LH to LH-RH was also blunted in CBZ-treated female patients. No differences were found in basal or stimulated LH levels between the two groups of male patients. Nevertheless, the mean basal concentration of serum prolactin (PRL) was lower and the response of PRL to TRH was higher in male patients treated with CBZ. No differences were found in serum levels of follicle-stimulating hormone (FSH) or in responses of FSH to LH-RH between the CBZ-treated and untreated patients. These results indicate that CBZ has effects on pituitary responsiveness.

Carbamazepine↗

Ligand-dependent, Pit-1/growth hormone factor-1 (GHF-1)-independent transcriptional stimulation of rat growth hormone gene expression by thyroid hormone receptors in vitro.

The expression of the rat growth hormone (rGH) gene in the anterior pituitary gland is modulated by Pit-1/GHF-1, a pituitary-specific transcription factor, and by other more widely distributed factors, such as the thyroid hormone receptors (TRs), Sp1, and the glucocorticoid receptor. Thyroid hormone (T3)-mediated transcriptional stimulation of rGH gene expression has been extensively studied in vivo and in vitro including the measurements of (i) rGH mRNA by blot hybridization, (ii) transcriptional rate of rGH gene by nuclear run-on, and (iii) reporter gene expression in which a chimeric plasmid containing 5'-flanking sequences of the rGH gene linked to a reporter gene has been transfected either stably or transiently into pituitary and/or nonpituitary cells. From these studies, it has been suggested that the Pit-1/GHF-1 binding site is necessary for full T3 action. We developed a cell-free in vitro transcription system to examine further the roles of the TRs and Pit-1/GHF-1 in rGH gene activation. Using GH3 nuclear extract as a source of TRs and Pit-1/GHF-1, this in vitro transcription assay showed that T3 stimulation of rGH promoter activity is dependent on the addition of T3 to the GH3 nuclear extract. This transcriptional stimulation was augmented with increasing concentrations of ligand and was T3, but not T4 or reverse T3, specific. T3-mediated stimulation of rGH promoter activity was completely abolished by preincubation of the nuclear extract with rGH-thyroid hormone response element (-200 to -160) but not with Pit-1/GHF-1 (-137 to -65) oligonucleotides. Further, neither deletion of both Pit-1/GHF-1 binding sites nor mutation of the proximal Pit-1/GHF-1 binding site from the rGH promoter abrogated the T3 effect. These results provide evidence that T3-stimulated rGH promoter activity is independent of Pit-1/GHF-1 and raise the possibility that the stimulation of rGH gene expression by T3 might involve direct interaction of TRs with the general transcriptional apparatus.

Animals↗

Effects of luteinizing-hormone-releasing hormone, alpha-melanocyte-stimulating hormone, naloxone, dexamethasone and indomethacin on interleukin-2-induced corticotropin-releasing factor release.

Our previous studies have shown that the microinjection of interleukin (IL)-2 into the third ventricle of conscious rats evokes the release of adrenocorticotropin hormone (ACTH) and that its incubation with hemipituitaries in vitro was also effective in releasing ACTH. In the present experiments, we evaluated the effect of IL-2 on the release of corticotropin-releasing factor (CRF) from medial basal hypothalami (MBHs) incubated in vitro and studied the effect of other agents, whose release is altered in stress, on CRF release. IL-2 significantly stimulated CRF release at concentrations of 10(-13) and 10(-14) M, whereas increasing the concentration to 10(-12) to 10(-10) M did not produce significant release of CRF. A high concentration of potassium (55 mM) in the medium also significantly stimulated CRF release and this stimulation was not modified by IL-2. Since high-potassium-induced release of CRF is probably due to opening of voltage-dependent calcium channels, it is likely that IL-2 is releasing CRF by this mechanism. Since the release of luteinizing-hormone-releasing hormone (LHRH) is modified by stress, we evaluated the action of LHRH on CRF release and the release induced by IL-2. Although LHRH failed to alter basal CRF release, except for a slight decrease at 10(-7) M, it completely blocked IL-2-induced CRF release at this concentration. To examine a possible role for opioid peptides in CRF release, the opiate receptor blocker, naloxone (NAL), was tested. At concentrations of 5 x 10(-6) and 10(-5) M, it produced a marked increase in CRF release; however, the simultaneous exposure of MBHs to each of these concentrations of NAL plus IL-2 caused a dose-dependent decrease in IL-2-induced CRF release, suggesting that beta-endorphin or other opioid peptides may play a role in IL-2-induced CRF release. As has been previously shown for IL-1 and IL-6, IL-2-induced CRF release was blocked by alpha-melanocyte-stimulating hormone (alpha-MSH), which at high concentrations also reduced basal CRF release. As in the case of IL-1 and IL-2, dexamethasone (DEX), the highly active synthetic glucocorticoid, although not altering basal CRF release, completely blocked the response to IL-2. The inhibitor of cyclooxygenase, indomethacin (IND), also blocked IL-2-induced CRF release just as it has previously been shown to block IL-1- and IL-6-induced CRF release. The results are consistent with the hypothesis that IL-2 acts on its recently discovered receptors to induce an increase in intracellular calcium. In other experiments, we have shown that this activates nitric oxide (NO) synthase leading to production of NO by a NOergic neuron. NO diffuses to the CRF neuron and activates cyclo-oxygenase leading to generation of prostaglandin E2, which activates adenylate cyclase and increases cyclic AMP release, which then causes extrusion of CRF secretory granules. DEX presumably acts on its receptors on the CRF neuron to inhibit the increase in intracellular calcium and thereby blocks activation of phospholipase A2 necessary for activation of the arachidonic acid cascade. alpha-MSH and LHRH may similarly act on their receptors on these cells to, in some manner, block the pathway. On the other hand, beta-endorphin and/or other opioid peptides inhibit the pathway. Further experiments will be necessary to elucidate the exact points in the pathway at which these compounds are effective.

Animals↗

Luteinizing hormone-releasing hormone and thyrotropin-releasing hormone induction of female sexual receptivity in the lizard, Anolis carolinensis.

Both luteinizing hormone-releasing hormone (LHRH) and thyrotropin-releasing hormone (TRH) induce sexual receptivity in ovariectomized, estrogen-primed female lizards (Anolis carolinensis). Ovariectomized females pretreated with three daily injections of a subthreshold dose (0.2 micrograms) of estradiol benzoate were administered either 500, 1,000 or 1,500 ng of LHRH, or 1,000 ng of TRH 48 h following the last estrogen pretreatment injection. Hormone-treated females exhibited significantly higher sexual receptivity scores than controls when tested 2, 4, 6 and 24 h post-injection. Female sexual receptivity scores in females that were administered 500 ng of LHRH or 1,000 ng of deamido TRH were, however, no different than control scores at these test times. The observed ability of LHRH to increase female sexual receptivity is consistent with previous results in birds and mammals. The ability of TRH to increase female sexual receptivity is a novel finding that may underscore differences in neuroendocrine regulation of vertebrate estrous behavior.

Animals↗

The actions of prostaglandin E2, naloxone and testosterone on starvation-induced suppression of luteinizing hormone-releasing hormone and luteinizing-hormone secretion. In vitro and in vivo studies.

In man and other mammals, starvation is accompanied by a severe suppression of luteinizing hormone-releasing hormone (LHRH) and luteinizing-hormone (LH) secretion, which is caused by unknown alterations in hypothalamic functions. Prostaglandin E2 (PGE2), endorphins and testosterone (T) are know to be strongly involved in the regulation of LHRH release. The present study examined whether the influence of these substances on LHRH and LH secretion was affected by starvation. In vitro experiments checked the release of PGE2 and LHRH from median eminences (ME) of fed male rats and ones starved for 5 days. Stimulation with potassium (80 mM) induced an equally strong release of PGE2 and LHRH from the MEs of both fed and starved rats. When PGE2 (10(4) M) was added to the superfusion medium, the potassium-stimulated release of LHRH was significantly enhanced in both groups of animals. The results clearly showed that in the terminal region of the hypothalamic LHRH system the release of this hormone and the action of PGE2 were not altered by starvation. In vivo experiments tested whether the effects of LHRH, PGE2, naloxone (NAL), or T on LH secretion were different in intact or castrated male rats fed or starved for 3 and 5 days. LHRH (250 ng/kg) stimulated the same amount of LH secretion in fed and starved rats. The starvation-induced LH suppression was not due to a dysfunction at the pituitary level. The stimulatory action of PGE2 (1 mg/kg) on LH was gradually reduced throughout the starvation period. NAL (5 mg/kg) had little, respectively, no effect on LH release on the 3rd or 5th day of starvation.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗