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Changes in estrogenic regulation of estrogen receptor alpha mRNA and progesterone receptor mRNA in the female rat hypothalamus during aging: an in situ hybridization study.

We examined two molecular responses to estrogen, reduction in estrogen receptor alpha (ER alpha) mRNA and increase in progesterone receptor (PR) mRNA, in the hypothalamus of 3- (young) and 10-month-old (middle-aged) cycling, and 15-month-old (old) acyclic, Fischer 344 female rats. The rats were ovariectomized and then given silastic capsules containing 5% 17beta-estradiol. or empty implants, and killed 4 days after implantation. By means of in situ hybridization, we found that, in young rats, estrogen reduced ER alpha mRNA in both the ventromedial hypothalamus (VMH) and arcuate nucleus (ARC) but not in the preoptic area (POA). In contrast, the effect of estrogen on ER alpha mRNA in the VMH and ARC of middle-aged and old rats was not statistically significant. On the other hand in all regions the induction of PR mRNA by estrogen was at least as strong in middle-aged and old as in young rats. The present study revealed that the induction of PR mRNA by estrogen in the hypothalamus was not impaired with age but ER alpha mRNA in the VMH and ARC was significantly impaired with age, but not in the POA.

Aging↗

Effects of anterolateral and posterolateral cuts around the medial hypothalamus on the immunoreactive ACTH and beta-endorphin levels in selected brain regions of the rat.

To evaluate the relative weight of the ACTH-ergic and beta-endorphin-ergic pathway(s) leaving the medial hypothalamus (MH) in anterior or posterior directions immunoreactive ACTH and beta-endorphin (ir-ACTH and ir-betaE) were quantified in selected brain regions of the rat 7-8 days after placing anterolateral (ALC) or posterolateral (PLC) cut around the MH. Retrograde accumulation of both peptides was observed in the MH after ALC, but not after PLC. ALC resulted in dramatic decrease in ir-ACTH/ir-betaE concentrations in all extra-MH brain regions tested (extra-MH hypothalamus, septum, thalamus, hippocampus, amygdala, and medulla oblongata). In contrast, ir-ACTH and ir-betaE levels decreased only in the thalamus and in the medulla oblongata after PLC. The present data indicate (a) ACTH- and betaE-like substances synthesized in the arcuate region of the hypothalamus are axonally transported to extrahypothalamic brain regions by neuronal pathways leaving the MH primarily anterolateral, anterodorsal, or anteromedial direction (even the fibers of certain posteromedial or posterolateral projections leave the MH some anterior directions); (b) the posterior ACTH-/betaE-ergic projections seem to be of minor importance except for the thalamus and the medulla oblongata where it contributes to about one-third of the peptide content. Our biochemical study provide quantitative complementary data to the detailed immunohistochemical picture of the ACTH/betaE-ergic projections in the rat brain described by Khachaturian et al.

Adrenocorticotropic Hormone↗

Lifespan changes in the human hypothalamus.

The various cell groups in the human hypothalamus show different patterns of aging, which are the basis for changes in biological rhythms, hormone production, autonomic functions, and behavior. The suprachiasmatic nucleus (SCN), the clock of the brain, exhibits circadian and seasonal rhythms in vasopressin synthesis that are disrupted later in life. Furthermore, the age-related sexual differences in the number of vasoactive intestinal polypeptide neurons in this nucleus reinforces the idea that the SCN is not only involved in the timing of circadian rhythms but also in the temporal organization of reproductive functions. The sexually dimorphic nucleus of the preoptic are (SDN-POA), or intermediate nucleus, is twice as large in men as in women, a difference that arises between the ages of two to four years and puberty. During aging a dramatic, sex-dependent decrease in cell number occurs, leading to values which are only 10-15% of the cell number found in early childhood. The vasopressin and oxytocin producing cells in the supraoptic nucleus (SON) and paraventricular nucleus (PVN) are examples of neuron populations that seem to stay perfectly intact in old age. Parvocellular corticotropin-releasing hormone-containing neurons are found throughout the PVN and are even activated in the course of aging, as indicated by their increase in number and by their coexpression with vasopressin. Part of the arcuate nucleus of the hypothalamus (ARH), or tubero-infundibular nucleus, contains hypertrophic neurons in postmenopausal women. These hypertrophied neurons contain neurokinin-B, substance P, and estrogen receptors and probably act on LHRH neurons as interneurons. The tuberal lateral nucleus (NTL), involved in feeding behavior and energy metabolism, does not show any neuronal loss in senescence. These findings indicate that each cell group of the human hypothalamus has its own sex-specific pattern of aging. In fact, some hypothalamic nuclei show a dramatic functional decline with aging, whereas others seem to become more active later in life.

Arcuate Nucleus of Hypothalamus↗

Differential regulation of leptin receptor but not orexin in the hypothalamus of the lactating rat.

During lactation, hypothalamic levels of neuropeptide Y (NPY) and agouti related protein (AGRP) mRNA are increased, while pro-opiomelanocortin (POMC) mRNA is decreased. Serum leptin levels are also decreased during lactation. These changes may underlie the large increases of both food and water intake that occur in concert with milk production. However, additional hypothalamic substances, such as the novel peptide, orexin, may be involved. In addition, in the presence of chronically suppressed levels of serum leptin, there may be a change in leptin receptor expression in the hypothalamus. The objectives of the present study were to determine if orexin and leptin receptor mRNA levels were changed during lactation. Rats were studied on dioestrus of the oestrous cycle or on day 10 postpartum (the lactating animals were suckling eight pups). Orexin mRNA levels in the lateral hypothalamus did not differ between dioestrus and lactation. There was a significant increase in leptin receptor mRNA levels in the supraoptic nucleus during lactation compared to dioestrus. Furthermore, leptin receptor protein, as determined by immunocytochemistry, was colocalized in virtually all vasopressin and oxytocin cells in the supraoptic nucleus. Lactating animals exhibited a decrease in leptin receptor mRNA in the ventromedial hypothalamic nucleus whereas no change was apparent in other hypothalamic areas compared to the dioestrus animals. These results demonstrate that changes in orexin do not appear to contribute to the increase in food intake during lactation. It is likely that the increases in NPY and ARGP, coupled with the decrease in POMC, are primarily responsible for sustaining the chronic hyperphagia of lactation. The changes observed in leptin receptor expression in the hypothalamus, along with the suppression of serum leptin levels, also suggest that the leptin signalling system may play a significant role in the regulation of food and water intake during lactation.

Agouti-Related Protein↗

The neuroendocrine control of gonadotrophin release in the Japanese quail. III. The role of the tuberal and anterior hypothalamus in the control of ovarian development and ovulation.

Reproduction in the Japanese quail (Coturnix coturnix japonica), as in many other species, is controlled by the length of the daily photoperiod. The present experiments have investigated the neuroendocrine regulation of both the photoperiodically induced 'tonic' gonadotrophin secretion, which causes the development and maintenance of the ovary, and the 'cyclic' surge release of luteinizing hormone (LH), which stimulates ovulation. Areas within the anterior and tuberal hypothalamus were destroyed by means of electrolytic lesions while a small knife was used to isolate, to various degrees, the tuberal hypothalamus. Information was obtained on the regulation of 'tonic' and 'cyclic' secretion of gonadotrophin by using immature and mature laying females, respectively. The results indicate that the neuroendocrine regulation of photoperiodically induced gonadotrophin secretion in immature quail appears to be controlled by two discrete hypothalamic centres, the infundibular nuclear complex (i.n.c.) and the preoptic region (po.r.). The supraoptic region (so.r.) appears to have no influence on photoperiodically induced ovarian development. Deafferentation reveals that afferents from the anterior hypothalamus enter the tuberal region in a diffuse manner from both anterior and lateral directions. As in the developing animals, destruction of either the i.n.c. or the po.r. in mature birds results in a complete block to 'tonic' gonadotrophin release and to regression of the ovaries. When the supraoptic region is destroyed, the 'cyclic' ovulatory surge of LH is blocked and a polyfollicular syndrome ensues in which the ovaries, still under the influence of 'tonic' gonadotrophin release, grow to a very large size, but no ovulation takes place. An intramuscular injection of progesterone stimulates a release of LH in both untreated mature females and in sham-operated females, but not in so.r.-lesioned birds. Priming these lesioned females with oestrogen and progesterone restores, in some birds, the ability to respond positively to progesterone stimulation.

Animals↗

Morphological evidence for a galanin-opiate interaction in the rat mediobasal hypothalamus.

It is well established that hypothalamic galanin- and beta-endorphin-containing circuits play important roles in the neuroendocrine regulation of pituitary hormone secretion and sexual behaviors, as well as in feeding. Recent experimental evidence suggests that an opiate-galanin interaction may be involved in these neuroendocrine responses. In particular, galanin and beta-endorphin have been shown to stimulate prolactin release from the pituitary, and concurrently, evoke feeding in the rat. The present study was designed to elucidate the morphological component underlying these responses in the hypothalamus. Sections of the mediobasal hypothalamus of colchicine-pretreated female rats were double immunostained for galanin and beta-endorphin. A dark blue nickel ammonium sulfate-intensified diaminobenzidine reaction was used to visualize galanin profiles, while beta-endorphin neurons were labeled with a light brown diaminobenzidine reaction. Light microscopy revealed putative connections between galanin boutons and beta-endorphin cells. Electron microscopic examination showed that galanin boutons form axo-somatic and axo-dendritic synaptic connections with beta-endorphin neurons. The vast majority (89.6%) of the beta-endorphin-immunoreactive neurons were found to be contacted by galanin-immunopositive fibers in the hypothalamus. To determine the origin of the galanin fibers innervating this region, the arcuate nuclei of additional rats were isolated unilaterally using a Halász-knife. After a ten day survival period, immunostaining was carried out for galanin. The relative surface occupied by galanin immunoreactive profiles on the ipsi- and contralateral sides were compared using an image analyzer. This analysis revealed that deafferentation of the arcuate nucleus did not decrease the density of galanin immunoreactive profiles on the isolated side of the arcuate nucleus compared to the control side, thus, indicating that the galanin boutons contacting beta-endorphin cells are most probably of local origin. These studies support the proposal that galanin-evoked prolactin secretion and feeding behavior may, in part, be mediated by enhanced beta-endorphin release and raises the possibility that a hypothalamic galanin-beta-endorphin axis may operate in the control of other pituitary hormones.

Animals↗

THE EFFECT OF INTRA(CEREBRO)VENTRICULAR RESERPINE ON THE ACETYLCHOLINE CONTENT OF THE HEART, ILEUM AND HYPOTHALAMUS OF THE DOG.

The effect of injection of reserpine into the cerebral ventricles on the acetylcholine contents of the sino-atrial node, ileum and hypothalamus of the dog was studied in ten dogs. Another group of five dogs served as a control. The effect of intravenous administration of reserpine, in the same dose as given intracerebroventricularly, was also studied on the acetylcholine content of these tissues in five dogs. General sedation, bradycardia, miosis, salivation, emesis and purgation were looked for. Tissues were removed 1 hr after administration of reserpine for estimation of acetylcholine content, which was increased in all the tissues studied. The increase in the peripheral tissues was greater than in the hypothalamus. The increase in the acetylcholine content was not quantitatively related to the other effects of reserpine. The increase in the acetylcholine content of the sino-atrial node and the ileum and also the peripheral effects observed on intracerebroventricular administration of reserpine can be attributed to its central action. With the same dose of reserpine given intravenously the acetylcholine content of the sino-atrial node was significantly increased, while that of the hypothalamus and ileum was not.

Acetylcholine↗

Relationship between feeding and satiation centers of the hypothalamus.

Electrodes were implanted in the hypothalamus of five goats in which an alimentary instrumental conditioned reflex had been previously established. Electrical stimulation of the ventromedial hypothalamus inhibited the conditioned movements and food intake in hungry goats. This also occurred in those satiated goats in which eating and conditioned movements were elicited by stimulation of the lateral hypothalamic area. Withdrawal of the stimulation of the medial hypothalamus evoked a short aftereffect in the form of a recovery or increase in the trained movements and food intake.

Conditioning, Operant↗

Feeding suppression elicited by electrical and chemical stimulations of monkey hypothalamus.

The effects of electrical (ES) and chemical stimulations of the hypothalamus were investigated in monkeys during bar-press feeding. ES elicited both prolonged and nonprolonged types of suppression of bar-press feeding in hungry animals. Prolonged type suppression persisted for greater than 1 min beyond one or more post-ES trials and was found after ES of the dorsomedial hypothalamus (DMH), the ventromedial hypothalamus (VMH), and the ventromedial part of the lateral hypothalamic area (LHA). Non-prolonged type suppression was observed only during ES at some sites of both in hypothalamic and extrahypothalamic areas. A microinjection of glutamate into the VMH and the DMH, but not into the LHA, was able to reproduce the ES-induced prolonged type suppression. In contrast, the ES of the LHA, but not the VMH and DMH, in a satiated state provoked feeding. The results, together with the previous findings, suggest that the neuronal inhibitory mechanism of feeding exists in the VMH and DMH, while both the neuronal facilitatory and axonal inhibitory mechanisms in the LHA are involved in the feeding regulation, and these mechanisms of the LHA are affected by the hunger/satiety state.

Animals↗

Looking for trouble: a search for developmental defects of the hypothalamus.

The hypothalamus is a critical integrator of several homeostatic processes that are required for the survival of vertebrates. Disruption of the development of the hypothalamus thus has the potential of perturbing important physiological processes with lifelong consequences. We review current knowledge about how cell types are specified and circuits are formed within the developing hypothalamus. We emphasize the potential clinical impact of the perturbations of these pathways using the regulation of energy balance as a model. We predict that disruption of hypothalamic development is a common, previously unsuspected cause of disorders of homeostatic processes such as obesity and high blood pressure.

Animals↗

Thyrotropin-releasing hormone-induced hyperglycemia: possible involvement of cholinergic receptors in the lateral hypothalamus.

The influence of the site of action of thyrotropin-releasing hormone (TRH) on the production of hyperglycemia was studied in rats by comparing the effectiveness of TRH administered by different routes. Administration of TRH (5 micrograms) into the lateral hypothalamus (LH) produced a hyperglycemia with a peak elevation of blood glucose of 140 mg/dl. Injection of 5 micrograms TRH into the ventromedial hypothalamus (VMH) produced a blood glucose elevation of 44 mg/dl, while injection of the same dose of TRH into the anterior hypothalamus (AH) produced a blood glucose elevation of 23 mg/dl. These findings indicate an LH site of action of TRH. Indeed, intra-LH administration of TRH (1-10 micrograms) caused dose-related increases in blood glucose. Administration of acetylcholine into the same site was also shown to induce hyperglycemia. The hyperglycemic effects of TRH and acetylcholine were antagonized by previous treatment of the LH site with atropine, a cholinergic receptor antagonist. Furthermore, the TRH-induced hyperglycemia was not observed or was greatly reduced in spinal rats or in adrenalectomized rats. The results indicate that TRH may act through the cholinergic receptor mechanisms within the LH region to induce hyperglycemia by promoting an increase in the sympathetic-adrenal medullary efferent activity.

Acetylcholine↗

Estrogen and progesterone receptor expression in neuroendocrine and related neurons of the pubertal female monkey hypothalamus.

Expression of hypothalamic estrogen receptors (ER) and progesterone receptors (PR) is barely evident in prepubertal monkeys but is prominent in adults. To investigate whether adult patterns of ER and PR expression are established in mid-pubertal female cynomolgus monkeys, we labeled neuroendocrine (NEU) neurons by microinjection of retrograde tracer into the median eminence, and then identified ER and PR by specific immunostaining in separate sets of hypothalamic sections. ER and PR appeared in the cytoplasm and nuclei of cells identified exclusively as neurons, and retrograde tracer remained clearly visible in the cytoplasm of NEU neurons after immunostaining. Numbers of NEU and related neurons expressing ER or PR were quantified in principal hypothalamic regions. In the supraoptic nucleus, almost all neurons analyzed (n = 580) contained ER (94%) with many also NEU (73% ER + NEU), while lesser amounts of the neurons examined (n = 214) expressed PR (75%) and were NEU (53% PR + NEU). In the paraventricular nucleus, most of the neurons analyzed (n = 302) contained ER (90% ER; 54% ER + NEU), but few of the neurons studied (n = 269) contained PR (34% PR; 19% PR + NEU). In the periventricular zone, nearly all neurons examined (n = 795) contained ER (95% ER; 48% ER + NEU), but fewer of those studied (n = 298) exhibited PR (79% PR; 47% PR + NEU). In the arcuate-periventricular zone, all neurons examined (n = 542) contained ER (100%) but few were NEU (4% ER + NEU), while nearly all neurons studied (n = 418) contained PR (95%), some of which were NEU (21% PR + NEU). Neurons expressing ER were also prevalent in areas without NEU labeling, including the diagonal band of Broca, medial preoptic area, and mammillary bodies, but were less common in the septum and dorsomedial hypothalamus. Likewise, neuronal PR expression was seen frequently in the mammillary bodies, but occurred less often in the diagonal band of Broca, medial preoptic area, and dorsomedial hypothalamus. Neurons in the suprachiasmatic nucleus and lateral hypothalamic area lacked retrograde labeling. These results identify the principal sites and subsets of NEU and related neurons which express ER and PR in the mid-pubertal female monkey hypothalamus. They appear to correlate well with known populations of steroid-sensitive NEU neurons present in these areas in adults. The data also suggest that functional patterns of ER and PR expression arise upon reactivation of the hypothalamic-pituitary-gonadal axis at puberty. The degrees of receptor expression and of nuclear translocation most likely reflect peripubertal changes in the levels of gonadal steroids. Taken together, these results provide important insights into the mechanisms and development of neuroendocrine control during the pubertal period in primates.

Animals↗

Effects of glycine on serum gonadotropins and estradiol and on concentrations of free amino acids in the middle hypothalamus in female rats.

The effects of glycine on serum gonadotropins and estradiol (E2) and on concentrations of free amino acids in the middle hypothalamus have been studied in diestrus-1 rats. 20 min after intraperitoneal administration, glycine in doses of 50 and 100 mg had no significant effect on serum luteinizing hormone (LH) levels, but 200 mg significantly elevated serum LH levels. Glycine in doses of 50-200 mg had no effect on serum follicle-stimulating hormone levels at 20 min after intraperitoneal injection. 200 mg of glycine significantly elevated serum LH levels at 20 and 50 min and serum E2 levels at 50 and 80 min after intraperitoneal injection. The effects were maximal at 20 min after injection for LH and at 50 min after injection for E2. 20 min after intraperitoneal injection, 200 mg of glycine significantly increased the concentration of glycine in the middle hypothalamus, but had no effect on the concentrations of the other free acidic and neutral amino acids in the middle hypothalamus. These results suggest that glycine may play a role in the neural regulation of LH secretion.

Amino Acids↗

Immunolesion of norepinephrine and epinephrine afferents to medial hypothalamus alters basal and 2-deoxy-D-glucose-induced neuropeptide Y and agouti gene-related protein messenger ribonucleic acid expression in the arcuate nucleus.

Neuropeptide Y (NPY) and agouti gene-related protein (AGRP) are orexigenic peptides of special importance for control of food intake. In situ hybridization studies have shown that NPY and AGRP mRNAs are increased in the arcuate nucleus of the hypothalamus (ARC) by glucoprivation. Other work has shown that glucoprivation stimulates food intake by activation of hindbrain glucoreceptor cells and requires the participation of rostrally projecting norepinephrine (NE) or epinephrine (E) neurons. Here we determine the role of hindbrain catecholamine afferents in glucoprivation-induced increase in ARC NPY and AGRP gene expression. The selective NE/E immunotoxin saporin-conjugated antidopamine-beta-hydroxylase (anti-dbetah) was microinjected into the medial hypothalamus and expression of AGRP and NPY mRNA was analyzed subsequently in the ARC under basal and glucoprivic conditions using (33)P-labeled in situ hybridization. Saporin-conjugated anti-dbetah virtually eliminated dbetah-immunoreactive terminals in the ARC without causing nonspecific damage. These lesions significantly increased basal but eliminated 2-deoxy-D-glucose-induced increases in AGRP and NPY mRNA expression. Results indicate that hindbrain catecholaminergic neurons contribute to basal NPY and AGRP gene expression and mediate the responsiveness of NPY and AGRP neurons to glucose deficit. Our results also suggest that catecholamine neurons couple potent orexigenic neural circuitry within the hypothalamus with hindbrain glucose sensors that monitor brain glucose supply.

Afferent Pathways↗

Growth hormone inhibits its own secretion by acting on the hypothalamus through its receptors on neuropeptide Y neurons in the arcuate nucleus and somatostatin neurons in the periventricular nucleus.

GH secretion is regulated by hypothalamic somatostatin and GH-releasing factor. It has been postulated that GH feeds back on the hypothalamus and regulates its own secretion. We focused our attention on the action of GH in the hypothalamus in relation to GH secretion. Adult male rats were used throughout the studies, and the observation was made in conscious rats. Systemic administration of human GH induced c-fos gene expression, a marker of neuronal activity, in the hypothalamic arcuate nucleus (ARC) and the periventricular nucleus (PeV) in hypophysectomized male rats. The major cells in which c-fos gene expression was induced were neuropeptide Y (NPY) neurons in the ARC and somatostatin neurons in the PeV. GH receptor mRNA was demonstrated to be present in these neurons by in situ hybridization. The injection of a small dose of rat GH into the ARC or PeV inhibited GH secretion, whereas microinjection of IGF-I into these nuclei did not. Intracerebroventricular injection of NPY suppressed GH secretion, and this effect was abolished by anterolateral deafferentation of the medial basal hypothalamus (MBH), a procedure which disrupts the somatostatinergic input to the MBH. Taken together, these findings suggest that GH acts on NPY neurons in the ARC and somatostatin neurons in the PeV through GH receptor, and the activation of these neurons augments somatostatin release and inhibits GH secretion.

Animals↗

Induction of persistent estrus by electrolytic lesions placed neonatally in the hypothalamus of the female rat.

Electrolytic lesions were placed in the hypothalamus of two-day-old female rats. Destruction of the mediobasal part of the preoptic area resulted in persistent vaginal estrus starting on the day of vaginal opening, while lesions placed laterally in the preoptic-anterior hypothalamic area did not interfere with normal cycles. Therefore, the mediobasal hypothalamus is capable of undergoing maturation without any postnatal influence from at least the mediobasal part of the anterior hypothalamus. Destruction of the anterior wall of the third ventricle also caused persistent or prolonged vaginal estrus preceded by normal cycles. The relationship between the loci of lesions and the occurrence of sexual cyclicity was discussed.

Animals↗

Sympathetic activation of leptin via the ventromedial hypothalamus: leptin-induced increase in catecholamine secretion.

Leptin is an adipocyte-derived blood-borne satiety factor that acts directly on the hypothalamus, thereby regulating food intake and energy expenditure. We have demonstrated that the hypothalamic arcuate nucleus (Arc) is a primary site of the satiety effect of leptin (Neurosci Lett 224:149-152, 1997). To explore the hypothalamic pathway of sympathetic activation of leptin, we examined the effects of a single intravenous or intracerebroventricular injection of recombinant human leptin on catecholamine secretion in rats. We also examined the effects of direct microinjection of leptin into the ventromedial hypothalamus (VMH), Arc, paraventricular nucleus (PVN), and dorsomedial hypothalamus (DMH) in rats. To further assess whether sympathetic activation of leptin is mediated via the VMH, we also examined the effects of a single intravenous injection of leptin in VMH-lesioned rats. A single injection of leptin (0.25-1.0 mg i.v./rat or 0.5-2.0 pg i.c.v./rat) increased plasma norepinephrine (NE) and epinephrine (EPI) concentrations in a dose-dependent manner. Plasma NE and EPI concentrations were increased significantly when leptin was injected directly into the VMH but were unchanged when injected into the Arc, PVN, and DMH. Plasma NE and EPI concentrations were unchanged in VMH-lesioned rats that received a single intravenous injection of leptin. The present study provides evidence that a leptin-induced increase in catecholamine secretion is mediated primarily via the VMH and suggests the presence of distinct hypothalamic pathways mediating the satiety effect and sympathetic activation of leptin.

Animals↗

beta-Adrenoreceptors of the posterior hypothalamus.

Cats were anaesthetized with pentobarbital sodium. A push-pull cannula was inserted into the posterior hypothalamus which was superfused through the cannula and electrically stimulated with its tip. Electrical stimulation elicited a frequency-dependent pressor response and tachycardia. Superfusion with orciprenaline, isoprenaline (beta 1- and beta 2-stimulants) or tazolol (beta 1-stimulant) led to a concentration-dependent enhancement in the pressor response. Superfusion with terbutaline caused a slight and late increase in the pressor response, while salbutamol (beta 2-stimulants) was ineffective. The tachycardia elicited by the hypothalamic stimulation was slightly increased by the hypothalamic stimulation was slightly increased by orciprenaline, tazolol and terbutaline. Superfusion with atenolol (beta 1-adrenoreceptor blocking drug) or butoxamine (beta 2-adrenoreceptor blocking drug) inhibited the pressor response and the tachycardia caused by hypothalamic stimulation. Superfusion with butoxamine prior to isoprenaline reduced the enhancing effect of isoprenaline on the pressor response, while superfusion with atenolol abolished or even reversed it. It is concluded that beta 1 and beta 2-adrenoreceptors are present in the posterior hypothalamus; apparently, beta 1- rather than beta 2-adrenoreceptors are involved in the rise of blood pressure elicited by stimulation of the hypothalamus.

Adrenergic beta-Agonists↗