PubMed Health⌕ Search

Biomedical subjects

A Kjaer

Publications and source records attributed to A Kjaer.

At least 55 records · Page 3Linked to original sources

Interactions of histaminergic and serotonergic neurons in the hypothalamic regulation of prolactin and ACTH secretion.

Serotonergic and histaminergic neuronal systems are both involved in mediation of the stress-induced release of the pituitary hormones prolactin (PRL) and ACTH. We investigated the possibility of an interaction between serotonin (5-HT) and histamine (HA) in regulation of PRL and ACTH secretion in conscious male rats. Animals were pretreated systemically with antagonists to 5-HT1, 5-HT2 or 5-HT3 receptors prior to intracerebroventricular (icv) administration of HA. The 5-HT1 + 2 receptor antagonist methysergide prevented and the 5-HT2 receptor antagonist LY 53857 attenuated the HA-induced PRL release while the 5-HT3 receptor antagonist ondansetron had no effect on this response. None of the three 5-HT receptor antagonists affected the ACTH response to HA. Specific blockade of HA synthesis by alpha-fluoromethylhistidine or blockade of postsynaptic HA receptors by icv infusion of the H1 receptor antagonist mepyramine or the H2 receptor antagonist cimetidine inhibited the PRL response to 5-HT or to the 5-HT precursor 5-hydroxytryptophan (5- HTP) given in combination with the 5-HT reuptake inhibitor fluoxetine (Flx). Blockade of the histaminergic system had no effect on the ACTH response to serotonergic stimulation. The H3 receptors are inhibitory HA receptors. Systemic pretreatment with the H3 receptor agonist R(alpha)methylhistamine, or the H3 receptor antagonist thioperamide had no effect on the hormone response to activation of the serotonergic system by 5-HTP plus Flx. We conclude that the serotonergic and histaminergic neuronal systems interact in their stimulation of PRL secretion, but not in their stimulation of ACTH secretion. This interaction involves serotonergic 5-HT1 and 5-HT2 receptors and histaminergic H1 and H2 receptors. Furthermore, the previously observed inhibitory effect of the H3 receptor agonist R(alpha)methylhistamine on stress-induced PRL and ACTH release seems not to be exerted by activation of presynaptic H3 receptors located on serotonergic neurons but rather on histaminergic neurons.

5-Hydroxytryptophan↗

Neurohypophysial peptides. Histaminergic regulation and function in adenohypophysial secretion.

Stress stimulates the secretion of the pro-opiomelanocortin (POMC) derived peptides ACTH and beta-endorphin (beta-END) as well as prolactin (PRL) from the adenohypophysis. The regulation of adenohypophysial hormone secretion is complex and includes a variety of neuropeptides and neuroamines. Histamine (HA) seems to participate as a neurotransmitter in the central regulation of adenohypophysial secretion and is involved in stress-induced release of these hormones. However, the effect of HA on POMC and PRL secretion is indirect and may involve activation of hypothalamic neurons subsequently releasing hypophysiotropic factors that in turn regulate adenohypophysial hormone secretion. In addition to the major hypothalamic factors regulating POMC and PRL secretion, corticotropin-releasing hormone and dopamine, the neurohypophysial peptides arginine-vasopressin (AVP) and oxytocin (OT) may serve such a regulatory role in adenohypophysial hormone secretion. We investigated this hypothesis at two different levels by a series of experiments presented in this review. The experiments aimed at studying: 1) the possible role of HA as a neuroendocrine regulator of AVP and OT secretion and neuronal activation, and 2) the possible involvement of AVP and OT in physiological regulation of POMC derived peptide and PRL secretion. In the first part of the study we found HA to be an important regulator of vasopressinergic and oxytocinergic neuronal activity and of AVP and OT secretion. The effect of HA is mediated via activation of both HA H1- and H2-receptors. The regulatory role of HA on the neuronal AVP and OT system is of physiological relevance since it is important for the adequate AVP and OT response to physiological stimuli such as dehydration and suckling. In the second part of the study we found that secretion of POMC derived peptides and PRL in response to stress and HA is transmitted via AVP but not via OT. The effect of AVP in HA- and stress-induced POMC and PRL secretion is both mediating and permissive and the AVP-receptors involved differ with respect to these two actions as well as with type of adenohypophysial hormone secreted.

Adrenocorticotropic Hormone↗

Stress-induced secretion of pro-opiomelanocortin-derived peptides in rats: relative importance of the anterior and intermediate pituitary lobes.

Stress stimulates secretion of the pro-opiomelanocortin (POMC)-derived peptides adrenocorticotropic hormone (ACTH), beta-endorphin (beta-END) and alpha-melanocyte-stimulating hormone (alpha-MSH) from the anterior lobe (AL) and intermediate lobe (IL) of the pituitary gland. The secretion of POMC-derived peptides from the AL and IL is differentially regulated and the relative contribution of the lobes may vary with the stimulus. We investigated (1) the relative importance of the AL and IL as source of POMC-derived peptides released in response to restraint and ether stress by selectively inhibiting the corticotropes of the AL by dexamethasone (DEX) or selectively inhibiting the melanotropes of the IL by bromocriptine (BR), and (2) whether beta-adrenergic blockade by propranolol could be used to discriminate between the stress-induced effect on POMC secretion from the AL and IL as has previously been suggested. Selective inhibition of AL secretion by DEX totally blocked the ACTH response to restraint and ether stress, but only partially inhibited the beta-END response. The alpha-MSH response to both stressors was not affected by DEX. Conversely, selective inhibition of IL secretion by BR totally blocked the alpha-MSH response to both stressors, partially inhibited the beta-END response but did not influence the ACTH response. In response to restraint stress, beta-END was secreted equally from the AL and IL, whereas the IL was the most important source of beta-END in response to ether stress. Blockade of beta-adrenergic receptors with propranolol inhibited the beta-END- and alpha-MSH responses to restraint stress whereas the ACTH response was unaffected.(ABSTRACT TRUNCATED AT 250 WORDS)

Adrenocorticotropic Hormone↗

Involvement of oxytocin in histamine- and stress-induced ACTH and prolactin secretion.

The neurohypophysial peptide oxytocin (OT) is released in response to different stressors and has been suggested as a 'stress hormone'. In addition, we have recently shown that centrally administered histamine (HA), which is a mediator of stress-induced release of ACTH and prolactin (PRL), stimulates OT secretion. The aim of the present investigation was to further characterize the HA-induced OT secretion with respect to the type of postsynaptic receptor involved and to investigate the possible role of OT in HA- and stress-induced ACTH and PRL secretion. We studied (1) the effect of HA, HA agonists and HA antagonists on OT secretion in normal male rats, (2) the secretion of OT in response to HA stimulation and to restraint stress, endotoxin stress [lipopolysaccharide (LPS) administration] and insulin/hypoglycemia stress and compared the OT response to that of arginine vasopressin (AVP), (3) the OT response to restraint stress or HA in normal and AVP-deficient Brattleboro rats (DI) suffering from diabetes insipidus and (4) the effect of inhibiting the oxytocinergic system by immunoneutralization or receptor blockade on HA- and stress-induced ACTH and PRL release in normal as well as in DI rats. HA, an H1 and an H2 receptor agonist, stimulated the OT secretion dose-dependently. The HA-induced release of OT was inhibited by pretreatment with an H1 or an H2 receptor antagonist. Restraint stress and HA but not LPS or insulin stress induced an increase in peripheral OT levels, whereas only LPS stress and HA caused an increase in circulating AVP levels. Neither an OT antiserum nor an OT antagonist inhibited the HA- or restraint-stress-induced ACTH or PRL release in normal rats. AVP-deficient DI rats showed, in comparison with their nondeficit counterparts, an increased basal level of OT and no increase in OT levels following restraint stress, whereas the OT response to HA was similar in the two rat types. In AVP-deficient rats immunoneutralization of OT had no inhibitory effect on the HA- and restraint-stress-induced ACTH and PRL response. The ACTH and PRL response to restraint stress and the ACTH response to HA was impaired in DI rats compared to their healthy controls. We conclude (1) that HA stimulates OT secretion via activation of postsynaptic H1 and H2 receptors, and (2) that, in contrast to AVP, OT does not seem to be involved in HA- and restraint-stress-induced ACTH and PRL secretion.

Adrenocorticotropic Hormone↗

Effect of histamine on gene expression and release of proopiomelanocortin-derived peptides from the anterior and intermediate pituitary lobes in conscious male rats.

Via activation of H1 or H2 receptors histamine (HA) stimulates the secretion of proopiomelanocortin (POMC)-derived peptides from the anterior (AL) and intermediate (IL) pituitary lobes of male rats. During selective inhibition of the AL or IL by pretreatment with dexamethasone (Dx) or bromocriptine (Br), respectively, we studied the effect of equipotent doses of intracerebroventricularly infused HA, the H1-receptor agonist 2-thiazolylethylamine (2TEA) or the H2-receptor agonist 4-methy1HA (4MeHA) on the release of ACTH, beta-endorphin (beta-END) immunoreactivity (ir) and alpha-melanocyte-stimulating hormone (alpha-MSH) in conscious male rats. Dx blocked the ACTH responses whereas Br prevented the alpha-MSH responses. Dx and Br equally inhibited the response of beta-ENDir to HA and 4MeHA (80 and 70%, respectively). In contrast, the beta-ENDir response to 2TEA was totally blocked by Dx but only inhibited 50% by Br. The inhibitory effect of Dx on the beta-ENDir response to 2TEA was significantly stronger than the effect on the responses to HA and 4MeHA. POMC mRNA in the AL but not in the IL was increased almost 45% by HA and 2TEA and 20% by 4MeHA. Since all three histaminergic compounds in the doses used stimulated the release of beta-ENDir equipotently, the results indicate that H1-receptor activation predominantly affects the release and synthesis of beta-ENDir from the AL while H2-receptor activation affects the release of beta-ENDir equally from the two lobes and only to some extent increases the synthesis in the AL.(ABSTRACT TRUNCATED AT 250 WORDS)

Adrenocorticotropic Hormone↗

Dehydration stimulates hypothalamic gene expression of histamine synthesis enzyme: importance for neuroendocrine regulation of vasopressin and oxytocin secretion.

Dehydration associated with hyperosmolality and decreased extracellular volume stimulates arginine vasopressin (AVP) and oxytocin (OT) secretion from magnocellular neurons of the hypothalamus. The effects of hyperosmolality and decreased extracellular volume on the magnocellular neurons are mainly indirect and seem to be mediated centrally via several neurotransmitters and neuropeptides. Because histamine (HA), which serves as a central neurotransmitter, releases AVP and OT from the neurohypophysis when administered centrally, we investigated the possible role of HA in dehydration-induced AVP and OT secretion. To do this, we studied 1) the effect of dehydration on messenger RNA (mRNA) expression of the HA synthesis enzyme, histidine decarboxylase (HDC), in the tuberomammillary nucleus of the hypothalamus; and 2) the effect of HA synthesis inhibition during dehydration on AVP and OT mRNA expression in the supraoptic nucleus of the hypothalamus as well as on plasma AVP and OT levels. Forty-eight hours of dehydration increased the mRNA level of HDC in the tuberomammillary nuclei, whereas 24 h of dehydration had no effect. Pretreatment with the HA synthesis inhibitor alpha-fluoromethylhistidine (alpha FMH) increased the expression of HDC mRNA in 24-h dehydrated rats, but had no effect in euhydrated rats. In rats dehydrated for 48 h, the already increased level of HDC mRNA was not increased further by alpha FMH. Twenty-four and 48 h of dehydration increased AVP and OT mRNA levels in the supraoptic nucleus. This effect was inhibited by alpha FMH pretreatment. Dehydration increased the plasma levels of AVP and OT to an extent which depended on the duration of dehydration. Pretreatment with alpha FMH inhibited the hormone responses to 24 h of dehydration, but did not affect the responses to 48 h of dehydration. Twenty-four and 48 h of dehydration had no significant effect on the contents of AVP and OT in the neurohypophysis, whereas pretreatment with alpha FMH combined with 48 h of dehydration led to depletion of AVP stores in the neurohypophysis. Based on the present findings, we conclude that hypothalamic histaminergic neurons are involved in the regulation of dehydration-induced stimulation of magnocellular AVP and OT neurons.

Animals↗

Beta-adrenergic receptors are involved in histamine-induced secretion of proopiomelanocortin-derived peptides and prolactin in rats.

The neurotransmitter histamine (HA) is involved in central regulation of secretion of prolactin (PRL) and the proopiomelanocortin (POMC)-derived peptides adrenocorticotropin (ACTH), beta-endorphin (beta-END) and alpha-melanocyte-stimulating hormone (alpha-MSH). The effect of HA on POMC-derived peptides and PRL release is, at least in part, indirect and may involve activation of catecholaminergic systems. Therefore, we investigated the effect of beta-adrenergic receptor blockade on HA or HA agonist-induced release of ACTH, beta-END, alpha-MSH and PRL. Central administration of HA, the H1-receptor agonist 2-thiazolylethylamine (2-TEA) or the H2-receptor agonist 4-methylhistamine (4-MeHA) stimulated the secretion of ACTH, beta-END, alpha-MSH and PRL. Pretreatment with the beta-adrenergic antagonist propranolol inhibited secretion of the POMC peptides in response to HA, 2-TEA or 4-MeHA. Propranonol only inhibited the PRL response to HA or 2-TEA, but had no effect on the PRL response to 4-MeHA. Administration of the beta-receptor agonist isoproterenol stimulated ACTH, beta-END, alpha-MSH and PRL two to five-fold. This effect was totally blocked by pretreatment with propranolol. We conclude that HA-induced secretion of POMC-derived peptides from the anterior and intermediate lobe of the pituitary gland and of PRL from the anterior lobe is, at least in part, mediated via catecholamines. beta-Adrenergic receptors are involved in the mediation of the POMC response to H1- as well as H2-receptor activation, whereas beta-receptors are involved only in the mediation of the PRL response to H1-receptor activation.

Adrenergic beta-Antagonists↗

Role of hypothalamic histaminergic neurons in mediation of ACTH and beta-endorphin responses to LPS endotoxin in vivo.

The involvement of hypothalamic histaminergic neurons in the mediation of the ACTH and beta-endorphin (beta-END) response to lipopolysaccharide (LPS) endotoxin was investigated in conscious male rats. LPS stimulated the release of ACTH and beta-END dose-dependently and increased the hypothalamic concentration of the histamine (HA) metabolite tele-methylhistamine significantly and that of HA slightly, indicating an increased turnover of neuronal HA. Pretreatment with the HA synthesis inhibitor alpha-fluoromethyl-histidine administered intracerebroventricularly (i.c.v.) or intraperitoneally (i.p.) inhibited the ACTH and beta-END response to LPS about 60%, whereas i.p. administration of the H3 receptor agonist R(alpha)methylHA, which inhibits HA synthesis and release, decreased the response about 50%. Pretreatment with the H1 receptor antagonist mepyramine (67 micrograms x 2 i.c.v.) inhibited the hormone response to LPS about 50%, while pretreatment with equimolar doses of the H2 receptor antagonists cimetidine (67 micrograms x 2 i.c.v.) or ranitidine (83 micrograms x 2 i.c.v.) had no effect on the LPS-induced release of ACTH and beta-END. When the H1 receptor antagonists mepyramine and cetirizine were administered i.p. in doses (10 mg/kg) which penetrate the blood-brain barrier the hormone response to LPS was inhibited 50% and 30%, respectively. Administered i.p. the H2 receptor antagonists had no effect on the hormone response to LPS. We conclude that hypothalamic histaminergic neurons in rats are involved in the mediation of the ACTH and beta-END response to LPS stimulation via activation of central postsynaptic H1 receptors.

Adrenocorticotropic Hormone↗

Histamine stimulates c-fos expression in hypothalamic vasopressin-, oxytocin-, and corticotropin-releasing hormone-containing neurons.

The stimulatory action of centrally administered histamine (HA) on secretion of the anterior pituitary hormones ACTH, beta-endorphin, and PRL is indirect, and previous studies have suggested that hypothalamic neurons containing CRH, arginine vasopressin (AVP), and oxytocin (OT) are involved in this response. We studied the effect of HA on neuronal activation in the hypothalamus by investigating the expression of c-fos, which is a protooncogene activated early when neurons are stimulated. The expression of c-fos was evaluated by detection of c-fos immunoreactivity (c-fos-IR) using immunohistochemistry and by measurement of c-fos mRNA using in situ hybridization techniques. In addition, the identity of the HA-stimulated neurons was investigated by dual antigen immunohistochemistry visualizing AVP-, OT-, or CRH-IR in the neurons showing increased c-fos expression. HA (270 nmol) infused intracerebroventricularly increased c-fos-IR in the hypothalamus, especially in the periventricular hypothalamic areas and certain hypothalamic nuclei, including the paraventricular nucleus (PVN) and supraoptic nucleus (SON). c-fos-immunoreactive nuclei were observed throughout the SON, whereas in the PVN, c-fos-IR was particularly pronounced in the subnuclei known to contain AVP, OT, and CRH neurons. Double labeling experiments confirmed that c-fos was expressed in AVP-, OT-, and CRH-immunoreactive as well as other neurons. In addition, HA intracerebroventricularly induced a moderate expression of c-fos-IR in the arcuate nucleus. In situ hybridization showed increased levels of c-fos mRNA in both the PVN and SON after HA infusion. We conclude that HA-induced secretion of ACTH, beta-endorphin, and PRL may be mediated via activation of hypothalamic AVP, OT, and CRH neurons.

Animals↗

Dehydration-induced release of vasopressin involves activation of hypothalamic histaminergic neurons.

The hypothalamic neurotransmitter histamine (HA) induces arginine vasopressin (AVP) release when administered centrally. We studied and characterized this effect of HA with respect to receptor involvement. In addition, we studied the possible role of hypothalamic histaminergic neurons in the mediation of a physiological stimulus (dehydration) for AVP secretion. Intracerebroventricular administration of HA, the H1-receptor agonists 2(3-bromophenyl)HA and 2-thiazolylethylamine, or the H2-receptor agonists amthamine or 4-methyl-HA stimulated AVP secretion. The stimulatory action of HA on AVP was inhibited by pretreatment with the H1-receptor antagonist mepyramine or the H2-receptor antagonist cimetidine. Twenty-four hours of dehydration elevated the plasma osmolality from 298 +/- 3 to 310 +/- 3 mmol/liter and increased the plasma AVP concentration 4-fold. The hypothalamic content of HA and its metabolite tele-methyl-HA was elevated in response to dehydration, indicating an increased synthesis and release of hypothalamic HA. Dehydration-induced AVP secretion was lowered when neuronal HA synthesis was inhibited by the administration of (S) alpha-fluoromethylhistidine or when the animals were pretreated with the H3-receptor agonist R(alpha)methylhistamine, which inhibits the release and synthesis of HA, the H1-receptor antagonists mepyramine and cetirizine, or the H2-receptor antagonists cimetidine and ranitidine. We conclude that HA, via activation of both H1- and H2-receptors, stimulates AVP release and that HA is a physiological regulator of AVP secretion.

Animals↗

Histaminergic activation of the hypothalamic-pituitary-adrenal axis.

Centrally administered histamine (HA) stimulates the secretion of adenohypophysial POMC-derived peptides, which subsequently cause release of corticosterone. The effect of HA on POMC-derived peptide release is indirect, and it is possible that hypothalamic neurons containing corticotropin-releasing hormone (CRH), arginine vasopressin (AVP), or oxytocin (OT) are involved in the mediation of this response. We studied the effect of HA on: 1) expression of CRH, AVP, and OT messenger RNA (mRNA) at the hypothalamic level; 2) expression of c-fos and POMC mRNA at the pituitary level; and 3) peripheral plasma levels of AVP, OT, ACTH, beta-endorphin (beta-END), and corticosterone. HA (270 nmol) infused intracerebroventricularly increased the expression of CRH, AVP, and OT mRNA in the paraventricular nucleus as well as that of OT mRNA in the supraoptic nucleus of the hypothalamus. At the pituitary level the expression of mRNA for c-fos and POMC increased in the anterior but not in the intermediate lobe in response to HA. Plasma levels of AVP, OT, ACTH, beta-END, and corticosterone all increased in response to central HA administration. Circulating levels of AVP and OT peaked after 5 min, ACTH and beta-END after 15 min, whereas corticosterone levels were highest after 30 min. In concert with our earlier discoveries, the present data support the hypothesis that HA-induced secretion of ACTH and beta-END is mediated via central activation of hypothalamic neuroendocrine neurons containing CRH, AVP, and/or OT.

Animals↗

Histamine- and stress-induced prolactin secretion: importance of vasopressin V1- and V2-receptors.

We investigated the involvement of arginine vasopressin (AVP) V1- and V2-receptors in the prolactin (PRL) secretory response to histamine (HA) or restraint stress stimulation in conscious male rats by selective blockade of AVP receptors using different antagonists. Histamine (270 nmol) administered intracerebroventricularly or 5 min of restraint stress stimulated PRL secretion 10-14-fold. Pretreatment with the selective V1-receptor antagonists [1-(p-t-butyl-beta-mercapto-beta, beta-cyclopentamethylene propionic acid)-2-(O-methyl)tyrosine-8-D-arginine]vasopressin or [1-(beta-mercapto-beta, beta-cyclopentamethylene propionic acid)-2-(O-methyl)tyrosine-8-arginine]vassopressin inhibited the PRL response to HA and restraint stress in a dose-dependent manner with maximal inhibition of 60%. The effect of the two antagonists was identical when equipotent antivasopressor doses were administered. The selective V2-receptor antagonist [1-(beta-mercapto-beta, beta-cyclopentamethylene propionic acid)-2-D-isoleucine-4-isoleucine-8-arginine]vasopressin was unable to inhibit the PRL response significantly. Combined administration of the V1-receptor antagonist [1-(p-t-butyl-beta-mercapto-beta, beta-cyclopentamethylene propionic acid-2-(O-methyl)tyrosine-8-D-arginine]vasopressin and the V2-receptor antagonist inhibited the PRL response to HA to the same extent as that observed when the V1-antagonist was administered alone. None of the antagonists used had any effect on basal PRL secretion. We conclude that AVP seems to play a role in the mediation of HA- and restraint stress-induced secretion of PRL, and that the AVP receptor involved is primarily of the V1-type or similar to this.

Animals↗

Malonofungin: an antifungal aminomalonic acid from Phaeoramularia fusimaculans.

In screening for antifungal metabolites, a novel compound, malonofungin, exhibiting growth inhibitory activity against Botrytis cinerea (grey mould), has been isolated from fermentations of Phaeoramularia fusimaculans CBS 616.87. Its structure is established as (E)-(3R,4S,5S)-5-acetoxy-2-amino-2-carboxy-3,4-dihydroxy-14-oxoicos++ +-6-enoic acid, representing an addition to the rare class of naturally occurring aminomalonic acids. 1H NMR data and extensive use of CD spectroscopy have been utilized to establish the absolute stereochemistry of malonofungin. The structural and biological relationship of malonofungin to previously reported fungal metabolites is discussed.

Acetylation↗

Copper release from copper intrauterine devices removed after up to 8 years of use.

We studied the copper-releasing ability, weight and microscopic appearance of 2 copper-bearing intrauterine devices (IUDs), Copper-T Cu 200 (CuT) and Nova-T Cu 200 Ag (NovaT), after they had been in utero for up to 8 years. In addition, we studied whether IUDs removed from pregnant women showed different copper release. We found that IUD weight was a linear, negative function of duration of use, and that less than 20% of total copper would be released over a period of 8 years. The average copper-releasing ability was significantly higher for CuT than for NovaT (82.6 +/- 6.4 vs. 42.7 +/- 2.6 micrograms/day). The copper release was constant and thus unrelated to duration of use. Copper-releasing ability was similar in IUDs removed from pregnant and non-pregnant women. Fragmentation or minor defects only occurred in 3% of the IUDs and no correlation was found between deposits or corrosion and copper release rates. We conclude that CuT and NovaT both have constant copper release for at least 5-6 years and that the useful life-span probably can be prolonged to 6-8 years or more.

Copper↗

Involvement of vasopressin in histamine- and stress-induced prolactin release: permissive, mediating or potentiating role?

Arginine vasopressin (AVP) appears to be involved in the histamine (HA)- and stress-induced prolactin (PRL) release. The present investigation was performed in male rats to clarify whether the role of AVP in HA- and restraint stress-induced secretion of PRL is mediating (i.e., the effect of HA or stress is transmitted via AVP) or permissive (i.e., the presence of AVP is required to obtain a stimulatory effect of HA or stress on PRL secretion). Furthermore, we studied whether AVP possessed a potentiating effect on the HA- or stress-induced PRL release. PRL secretion was stimulated 14- to 17-fold by intracerebroventricular infusion of HA (270 nmol) or by 5 min of restraint stress. These effects were inhibited about 80% by immunoneutralization of endogenous AVP with a specific AVP antiserum (abAVP). When specific AVP V1- or V2-receptor agonists, which were not bound by the AVP antiserum, were administered intravenously together with the AVP antiserum, the PRL response to HA or restraint stress was partly (> 50%) reestablished. This effect was observed at low (1.2 or 0.1 nmol) as well as high (3.8 or 0.4 nmol) doses of agonists and when these were administered alone or in combination. In non-immunoneutralized animals, separate administration of agonists at low or high doses as well as combined administration of agonists at low doses had no or only a minor effect on PRL secretion, while combined administration of V1- and V2-agonist in high doses stimulated PRL secretion 6-fold. Taken together, these observations indicate that AVP has a permissive role.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Involvement of vasopressin V1- and V2-receptors in histamine-and stress-induced secretion of ACTH and beta-endorphin.

Arginine-vasopressin (AVP) seems to be involved in the histamine (HA)-and stress-induced release of ACTH and beta-endorphin (beta-END). We studied the effect of selective AVP V1-or V2-receptor blockade on the ACTH and beta-END response to HA or restraint stress in conscious male rats. HA (270 nmol) administered intracerebroventricularly or 5 min of restraint stress caused a 3-to 7-fold increase in the plasma levels of ACTH and beta-END immunoreactivity (beta-ENDir). Pretreatment of the animals with the nonselective V1+2-receptor antagonist [1-Pmp-2-D-Phe-4-Ile-8-Arg]vasopressin, which was administered intravenously in a low (23 nmol) or a high dose (90 nmol) inhibited the HA-or restraint stress-induced secretion of ACTH and beta-ENDir 60 and 25-70%, respectively. Pretreatment with equipotent doses of the selective V1-receptor antagonist [1-(p-tBu)Pmp-2-Tyr(O-Me)-8-D-Arg]vasopressin (25 nmol) and/or the selective V2-receptor antagonist [1-Pmp-2-D-Ile-4-Ile-8-Arg]vasopressin (7.0 nmol) attenuated the response of ACTH and beta-ENDir to HA or restraint stress by 60-80 and 40-60%, respectively. In general, these doses of antagonists had no effect on basal hormone levels. We conclude that AVP takes part in the mediation of HA- and restraint stress-induced ACTH and beta-END secretion. This effect seems to be mediated via both AVP V1- and V2-receptors or a less selective receptor with ligand specificity for both V1- and V2-receptor antagonists.

Adrenocorticotropic Hormone↗

Responses of anterior pituitary hormones and hypothalamic histamine to blockade of histamine synthesis and to selective activation or inactivation of presynaptic histamine H3 receptors in stressed rats.

The stress-induced release of anterior pituitary hormones and changes in hypothalamic content of histamine (HA) and its metabolite tele-methylHA (t-meHA) were studied in male rats during inhibition of HA synthesis or activation or blockade of HA H3 receptors. Pretreatment with the HA synthesis inhibitor alpha-fluoromethylhistidine (alpha-FMH; 200 micrograms intracerebroventricularly (icv) at -120 min) or the specific H3 receptor agonist R(alpha)methylhistamine (RmHA; 10 mg/kg intraperitoneally (ip) at -180 and -60 min) inhibited by 30-80% the responses of prolactin (PRL), corticotropin (ACTH) and beta-endorphin (beta-END) immunoreactivity to 1, 2.5 or 5 min of restraint stress (p < 0.05-0.01), but had no effect on basal secretion of the hormones. The inhibitory effect of the H3 receptor agonist RmHA (10 mg/kg x 2) on the hormone response to 5 min of restraint stress was prevented by simultaneous ip administration of the H3 receptor antagonist thioperamide. alpha-FMH reduced the hypothalamic content of HA 60% and that of t-meHA 30%, while RmHA had no effect on the HA content. Restraint stress for 5 min did not affect the HA and t-meHA contents, which may be due to the short duration of stress exposure. Pretreatment with the H3 receptor antagonist thioperamide (5 or 10 mg/kg ip at -120 min) had no effect on basal or restraint stress-induced release of PRL, ACTH or beta-END, although the compound increased the hypothalamic content of t-meHA 2-fold.(ABSTRACT TRUNCATED AT 250 WORDS)

Adrenocorticotropic Hormone↗

Impaired histamine- and stress-induced secretion of ACTH and beta-endorphin in vasopressin-deficient Brattleboro rats.

Arginine vasopressin (AVP), corticotropin-releasing hormone (CRH) and catecholamines seem to be involved in the histamine- (HA) and/or stress-induced release of the pro-opiomelanocortin-derived peptides adrenocorticotropic hormone (ACTH) and beta-endorphin (beta-END). The AVP component of the regulatory mechanism can be specifically studied in Brattleboro rats which lack AVP. These animals may therefore serve as a useful biological model for investigating the importance of AVP in the ACTH and beta-END response to HA and stress. On this background, we studied the ACTH and beta-END response to HA or restraint stress in conscious, male dizygotic AVP-deficient Brattleboro rats (DI) and compared the hypothalamic content of CRH and catecholamines in these rats with that of nondiabetic isogenic Long-Evans rats (LE). In addition, we studied the hypothalamic AVP content in LE rats after HA infusion or exposure to restraint stress. HA (270 nmol) administered intracerebroventricularly (i.c.v.) or 5 min of restraint stress caused a 6- to 7-fold increase in plasma concentrations of ACTH and beta-END in LE rats but only a 2- to 3-fold increase in DI rats (p < 0.01 vs. LE). The basal hypothalamic content of CRH and catecholamines (epinephrine, norepinephrine, and dopamine) was similar in DI and LE rats. The hypothalamic AVP content in LE rats was unaffected by central HA infusion or restraint stress and was undetectable in DI rats. We conclude that inherited lack of AVP impaired the ACTH and beta-END response to central HA administration as well as to restraint stress, suggesting that AVP is important for the mediation of these responses.

Adrenocorticotropic Hormone↗