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Dynamics of local blood flow in different regions of the hypothalamus in the sleep-wakefulness cycle.

In chronic experiments on cats, using the recording of local blood flow in different regions of the hypothalamus in the sleep-wakefulness cycle, it was found that during paradoxical sleep, the level of local blood flow in the posterior hypothalamus increased significantly, while at the same time in the anterior hypothalamus and in the preoptic region a sharp reduction takes place in local blood flow. In deep slow wave sleep the opposite pattern is observed: the level of local blood flow increases in the anterior hypothalamus and in the preoptic region, and decreases in the posterior hypothalamus. The conclusion is drawn that in one and the same sleep phase the diverse directionality of the changes in the level of local blood flow in the different regions of the hypothalamus must be associated with functional shifts in these structures, and the functional state of each of them in different phases of the sleep-wakefulness cycle is evaluated on the basis of this.

Animals↗

[The predominantly unilateral influence of the posterior hypothalamus on the neocortex].

High-frequency electrical stimulation of the-posterior hypothalamus applied 10-20 days after the sectioning of the brain stem at the level of the anterior frontal margins of the anterior coliculus results in the preferential activation of the ipsilateral neocortex. When unilateral lesions are placed in the posterior hypothalamus, the predominance of synchronous activity in the ipsilateral neocortex is observed. In the premesencephalic preparations, weak single electrical stimulation of the posterior hypothalamus provokes spindles in the ipsilateral portions of the frontal cortex. At more intensive single stimulation of the posterior hypothalamus there occurs diffuse appearance of spindles in different neocortical areas. Besides the preferential unilateral effect, the influence of the posterior hypothalamus is more prominent in the frontal than in the occipital regions of the cortex. It is suggested that the posterior hypothalamus exerts its influence on the neocortex through the thalamic nuclei.

Animals↗

Selective impairment of insulin signalling in the hypothalamus of obese Zucker rats.

AIM/HYPOTHESIS: By acting in the brain, insulin suppresses food intake. However, little is known with regard to insulin signalling in the hypothalamus in insulin-resistant states. METHODS: Western blotting, immunohistochemistry and polymerase chain reaction assays were combined to compare in vivo hypothalamic insulin signalling through the PI3-kinase and MAP kinase pathways between lean and obese Zucker rats. RESULTS: Intracerebroventricular insulin infusion reduced food intake in lean rats to a greater extent than that observed in obese rats, and pre-treatment with PI3-kinase inhibitors prevented insulin-induced anorexia. The relative abundance of IRS-2 was considerably higher than that of IRS-1 in hypothalamus of both lean and obese rats. Insulin-stimulated phosphorylation of IR, IRS-1/2, the associations of PI 3-kinase to IRS-1/2 and phosphorylation of Akt in hypothalamus were decreased in obese rats compared to lean rats. These effects seem to be mediated by increased phosphoserine content of IR, IRS-1/2 and decreased protein levels of IRS-1/2 in obese rats. In contrast, insulin stimulated the phosphorylation of MAP kinase equally in lean and obese rats. CONCLUSION/INTERPRETATION: This study provides direct measurements of insulin signalling in hypothalamus, and documents selective resistance to insulin signalling in hypothalamus of Zucker rats. These findings provide support for the hypothesis that insulin could have anti-obesity actions mediated by the PI3-kinase pathway, and that impaired insulin signalling in hypothalamus could play a role in the development of obesity in this animal model of insulin-resistance.

Animals↗

Spike activity of neurons in the amygdala and hypothalamus in bilateral leads in food motivation.

Measurements of mean spike frequencies and plotting of autocorrelation histograms were performed to study the nature of the spike activity of individual neurons in the lateral hypothalamus and central nucleus of the amygdala from bilateral leads in rabbits in calm waking, after 24-h food deprivation, and after satiation. The nature of neuron spike activity changed in different ways in the hypothalamus and amygdala on transfer from hunger to satiation: 1) the mean spike frequency changed in more hypothalamic (85%) than amygdalar (56%) cells; 2) as compared with calm waking and satiation, hunger was associated with a decrease in the number of neurons with periodic discharges in the delta frequency range in the hypothalamus, while the amygdala showed an increase in periodic discharges in the beta-2 frequency range; 3) in hunger, the hypothalamus showed a decrease in the number of neurons with burst and periodic discharges, while the amygdala showed increases in the number with equiprobabilistic discharge activity. Assessed in terms of autocorrelation histogram shape, greater changes in the nature of neuron spike activity associated with changes in state occurred on the left side than on the right in both the hypothalamus and amygdala. The maximal differences in neuron spike activity on the right and left sides in the hypothalamus were seen in hunger; the greatest differences in the amygdala were seen in satiation.

Action Potentials↗

A [14C]2-deoxyglucose analysis of the functional neural pathways of the limbic forebrain in the rat. IV. A pathway from the prefrontal cortical-medial thalamic system to the hypothalamus.

The present study utilized the [14C]2-deoxyglucose (2-DG) cell labeling procedure to characterize a functional pathway from the prefrontal cortex (Pfc) and mediodorsal thalamic nucleus (MD) to the hypothalamus. Rats were injected with 2-DG prior to a 45 min experimental paradigm consisting of alternating 30 s on-off periods of electrical brain stimulation. Standard procedures were utilized for the removal and processing of brain tissue for X-ray autoradiography. In the first phase of this study, stimulation applied to the prefrontal cortex generally yielded a pattern of 2-DG distribution consistent with the findings of classical anatomical studies. Stimulation of the dorsomedial and ventromedial prefrontal cortex or the infralimbic cortex produced the most effective activation of the diencephalon. This activation was primarily limited to MD, with no involvement of any region of the hypothalamus. In the second phase of this study, brain regions activated following stimulation of sites along the rostro-caudal axis of MD were examined. Stimulation of MD resulted in the activation of the nucleus reuniens and other midline and non-specific thalamic nuclei. Stimulation of this nucleus also activated the ventromedial thalamic nucleus, medial aspects of the nucleus accumbens and the medial and sulcal prefrontal cortices. Again, in each of these cases, labeling within any region of the hypothalamus could not be detected. Since MD stimulation activated the midline thalamus, and the nucleus reuniens in particular, the last phase of this experiment involved stimulation of the nucleus reuniens in order to determine the source of medial thalamic inputs to the hypothalamus. Stimulation of the nucleus reuniens activated fibers which were distributed to both the medial and lateral hypothalamus. In addition, stimulation also activated the descending periventricular system, which could be followed to the level of the midbrain central gray and such limbic structures as the hippocampal formation, septal area, amygdala and prefrontal cortex. These findings indicate that Pfc-MD activation of the hypothalamus is achieved indirectly via interneurons within the nucleus reuniens.

Animals↗

Melanin-concentrating hormone (MCH) is colocalized with alpha-melanocyte-stimulating hormone (alpha-MSH) in the rat but not in the human hypothalamus.

Melanin-concentrating hormone (MCH)-containing neurons have recently been localized in the dorsolateral region of the rat hypothalamus, an area where the second alpha-MSH system is found which contains only alpha-MSH and none of the pro-opiomelanocortin (POMC)-related peptides. In order to study the morphological relationships between the MCH and alpha-MSH neuronal systems, we have studied the immunocytochemical localization of both MCH and alpha-MSH in the rat hypothalamus. The same study was also performed in the human hypothalamus where there is only one alpha-MSH system which contains alpha-MSH as well as the other POMC-related peptides (first alpha-MSH system). In the rat dorsolateral hypothalamus, we could demonstrate that most neuronal cell bodies stained for MCH also contained immunoreactive alpha-MSH. In the human hypothalamus, neuronal cell bodies stained for MCH were observed only in the periventricular area whereas cell bodies containing alpha-MSH were exclusively located in the infundibular (arcuate) nucleus. In the rat, immunoelectron microscopy showed labelling for MCH in the dense core vesicles of positive neurons and double-staining techniques clearly demonstrated that both immunoreactive MCH and alpha-MSH could be consistently detected in the same dense core vesicles. These ultrastructural studies then suggest that these two peptides should be released simultaneously from neurons located in the rat dorsolateral hypothalamus.

Animals↗

Maternal thermal stimulation changes metabolic activity in fetal hypothalamus.

To study whether the central nervous system in the perinatal fetal rat can operate during maternal cooling and warming, we examined the 2-deoxy-D-[14C]glucose ([14C]DG) uptake in the fetal brain. Full-term pregnant rats were placed at three different ambient temperatures of 35-37 degrees C, 24-25 degrees C and 0-10 degrees C. Saline containing 20 microCi/100 g of [14C]DG was injected into the superior caval vein in the pregnant rats. Forty-five min after the injection, the mother rats were decapitated and the fetal brains were taken out for autoradiography. The [14C]DG uptake was significantly influenced by maternal thermal stimulation in the hypothalamus and not in other brain regions examined such as the cerebral cortex, the basal ganglia and the limbic nuclei. Glucose utilization in the fetal anterior hypothalamus, paraventricular hypothalamus and dorsomedial hypothalamus significantly increased when the mother rat was exposed to heat compared to when the mother rat was in the thermoneutral condition. During maternal cooling, glucose utilization in the ventromedial hypothalamus and dorsomedial hypothalamus significantly decreased. There was no area activated by cooling and/or inhibited by warming. Compared to a similar study in adult rats (Am. J. Physiol., 248 (1985) R84-92), the present results suggest that although the perinatal fetal brain does not respond to thermal stimulation in terms of glucose utilization as fully as the adults, a few hypothalamic nuclei have already acquired thermal responses, which might be a possible neuronal basis for the thermoregulatory responses just after birth in rats.

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Characterization of the effects of acute ethanol administration on the release of beta-endorphin peptides by the rat hypothalamus.

In the present studies the direct effect of ethanol on the release of beta-endorphin by the rat hypothalamus was investigated. When various concentrations of ethanol (10-120 mM) were added into the incubation medium, it was noticed that though low concentrations of ethanol (10, 20 and 30 mM) induced a pronounced increase in the release of beta-endorphin-like peptides from the hypothalamus, high concentrations of ethanol (40, 60 and 120 mM) induced a less pronounced increase. Exposure of hypothalamus to depolarizing concentrations of potassium chloride (following washing of the ethanol), provoked a significant release of beta-endorphin-like peptides, regardless of the ethanol concentration the tissues were exposed prior to the stimulation with the potassium chloride. Chromatographic analysis of the incubation media with Sephadex-G-75 revealed that the hypothalamus released mainly beta-endorphin-sized peptides. Analysis of the beta-endorphin-sized peptides with reverse-phase high performance liquid chromatography indicated the presence of beta-endorphin-(1-31) as well as non-acetyl and acetyl beta-endorphin-(1-27). Thus ethanol exerts a biphasic effect on the release of beta-endorphin-like peptides by the rat hypothalamus, with low concentrations inducing a dose-dependent increase, reaching maximum at 20 mM ethanol, and with higher concentrations of ethanol inducing a less pronounced increase in the release of beta-endorphin-like peptides, leading to an inverted U-shaped dose response relationship of ethanol and release of beta-endorphin-like peptides from the rat hypothalamus.

Animals↗

Cholecystokinin acts through catecholaminergic mechanisms in the hypothalamus to influence ingestive behaviour in the rat.

Administration of cholecystokinin (CCK) (0.2 - 0.6 micrograms in a volume of 2 microliter) into the lateral cerebral ventricle caused a decrease in intake of food but a relative increase in intake of water (or water-to-food ratio) in rats. To determine whether the anorexic actions of CCK were mediated through the hypothalamic nuclei, rats were infused with CCK (0.02 - 0.12 microgram in a volume of 0.5 microliter) through previously implanted hypothalamic cannulae. Administration of CCK into the lateral hypothalamus, but not the anterior hypothalamus or ventromedial hypothalamus, caused decreased intake of food and a relative increased intake of water. In addition, the responses induced by injection of CCK into the hypothalamus were completely abolished by selective depletion of catecholamines in the hypothalamus (eg. noradrenaline and dopamine) with intra-hypothalamic injection of 6-hydroxydopamine. Intraperitoneal administration of 0.12 microgram of CCK had no effect on the intake of food and water in rats. The data indicate that CCK acts through catecholaminergic mechanisms in the hypothalamus to influence feeding behaviour.

Animals↗

Injection of L-allylglycine into the posterior hypothalamus in rats causes decreases in local GABA which correlate with increases in heart rate.

Injection of the GABA antagonist, bicuculline methiodide into the posterior hypothalamus of rats has been shown to cause marked increases in heart rate and lesser elevations in blood pressure. Allylglycine is a potent inhibitor of the synthetic enzyme for GABA, glutamic acid decarboxylase, only after in vivo biotransformation into its active form, 2-keto-4-pentenoic acid, through a stereospecific amino acid oxidase. The posterior hypothalamus is thought to contain substantial activity only of L-amino acid oxidase. In this study, the stereoisomers of allylglycine were injected into the posterior hypothalamus at a site also shown to be reactive to bicuculline. Injection of L-allylglycine but not D-allylglycine caused substantial increases in heart rate but only slight increases in blood pressure. Injection of the GABA agonist muscimol prior to treatment with L-allylglycine prevented these cardiovascular changes. In another series of experiments, levels of GABA in the posterior hypothalamus and adjacent areas were measured 90 min after unilateral injection of L-allylglycine (12.5 or 25 micrograms), D-allylglycine (25 micrograms) or saline into the posterior hypothalamus. Only L-allylglycine caused increases in heart rate and blood pressure and decreases in levels of GABA. Quantitatively, the increases in heart rate at sacrifice were strongly correlated with the decreases in levels of GABA in the injected posterior hypothalamus (r = -0.94; P less than 0.002) but not in other regions.(ABSTRACT TRUNCATED AT 250 WORDS)

Allylglycine↗

Meal-stimulated increased concentrations of CCK in the hypothalamus of Zucker obese and lean rats.

CCK is a putative satiety peptide found to be active when administered peripherally and centrally. Concentrations of CCK have been measured in the brains of fed and fasted animals, but as yet no clear correlation with feeding has been found. In the present experiment rats were sacrificed after a 6-hr fast or 5 min after a meal. Areas of the hypothalamus were removed from these rats and assayed for CCK content. The relationship between obesity and CCK content in specific areas of the brain was also investigated by using Zucker obese and lean rats. In fed rats the CCK concentrations were higher than in fasted rats in the ventromedial hypothalamus (VMH) (56 vs. 42 pg/mg tissue, p less than 0.005), lateral hypothalamus (38 vs. 27 pg/mg, p less than 0.01) and supraoptic nucleus (48 vs. 39 pg/mg, p less than 0.01). In obese rats the concentrations were higher than in lean rats in the VMH (56 vs. 41 pg/mg, p less than 0.003), dorsal medial hypothalamus (37 vs. 30 pg/mg, p less than 0.04) and anterior hypothalamus (61 vs. 37 pg/mg, p less than 0.001). Average concentrations of CCK in all hypothalamic areas were higher in females than males (50 vs. 40 pg/mg, p less than 0.001). Thus, CCK concentrations in specific areas of the hypothalamus increased with feeding, supporting the potential role of CCK in the central nervous system as a satiety peptide. Further, although the concentrations of CCK in obese rats were higher than those in lean rats, the changes in CCK concentration with feeding were the same, showing that obesity is not a consequence of decreased concentrations or concentration changes of CCK in brain.

Animals↗

Intermale social aggression: reinstatement in castrated rats by implants of testosterone propionate in the medial hypothalamus.

Male hooded rats were castrated, subcutaneously implanted with testosterone-filled silastic tubes, and individually housed with an intact adult female rat. An unfamiliar male intruder was introduced into each colony on a weekly basis and the aggressive behavior of the resident male was recorded. When the intermale social aggressive behavior of the resident male toward the intruder reached a high level in terms of a composite aggression score, the subcutaneous testosterone tubes were removed. Weekly tests of aggression toward unfamiliar intruders continued until the aggression of the resident male dropped to a low level for two successive weeks in terms of our composite aggression score. Bilateral implants of pellets of testosterone propionate were then made into the medial hypothalamus or adjacent tissue. A control group was implanted with cholesterol pellets into the medial hypothalamus. During four weekly tests following the implant, rats with testosterone propionate implants in the medial hypothalamus showed increases in lateral attacks, lateral attack duration, bites, and piloerection. The increase in aggression was not consistently displayed by animals with testosterone propionate implants dorsal or anterior to the medial hypothalamus or by animals with cholesterol implants in the medial hypothalamus. These results suggest that the medial hypothalamus or closely adjacent tissue contains testosterone-sensitive neural circuitry modulating intermale social aggression.

Aggression↗

The effect of age on the monoamines of the hypothalamus.

Measurement of dopamine (DA), 3,4-dihydroxyphenylacetic acid (DOPAC) homovanillic acid (HVA), 3-methoxytyramine (3-MT), noradrenaline (NA), 3-methoxy-4-hydroxyphenyl glycol (MHPG) and serotonin (5-HT) and its main metabolite, 5-hydroxyindol-3-acetic acid (5-HIAA) was assessed in hypothalamus and median eminence of aged rats. Age-related changes were not observed in the concentration of NA and its metabolites in median eminence. In contrast, there was a significant NA decrease in aged hypothalamus compared with 12 months (no differences were found compared with 3 months). No significant differences were found in DA concentration and its metabolites in hypothalamus but DA decreased significantly in aged median eminence compared with 12 months. The ratio 5-HIAA/5-HT, indicative of 5-HT turnover, appeared to increase in the hypothalamus and median eminence of the aged rat. Morphological dissimilarities between hypothalamus of young and aged rats were demonstrated using serotonin-immunocytochemistry. A degeneration of the serotoninergic system, denoted by the appearance of enlarged or swollen varicosities, was observed in the hypothalamus of the aged rat. These aberrant serotoninergic fibers may reflect the local degeneration of serotoninergic hypothalamic afferents during ageing. Such differential age-dependent alterations of the serotoninergic system might be responsible for at least some of the functional deficits in aged animals.

Aging↗

Is taurine a hypothalamic neurotransmitter?: A model of the differential uptake and compartmentalization of taurine by neuronal and glial cell particles from the rat hypothalamus.

Although taurine has been postulated to be a neurotransmitter or neuromodulator in the mammalian CNS, little is known concerning its role in brain function. Evidence suggesting that taurine may influence endocrine and homeostatic mechanisms via the hypothalamus resulted in our investigations into its function in this brain region. The main objectives of the research were to characterize the specific binding, uptake, and release of taurine in the hypothalamus. A specific aim was to examine the proposed neurotransmitter role for taurine in the hypothalamus. This was accomplished by comparing the characteristics and properties of the binding, uptake, and release of taurine with those for the classical neurotransmitters which satisfy the criteria for a neurotransmitter. On such a comparative basis, the characteristics of taurine uptake satisfy the neurotransmitter criterion of inactivation of taurine in the hypothalamus. However, the observed characteristics of taurine binding and release in the hypothalamus do not satisfy the respective neurotransmitter criteria of specific receptors and Ca2+-dependent evoked release. Therefore, solely on the basis of the experimental observations reported herein, we must conclude that taurine apparently does not function as a neurotransmitter in the hypothalamus. Two uptake systems were found in the P2 fraction, a high affinity uptake system and a low affinity uptake system. Uptake systems for taurine have previously been reported in glial and nerve cell homogenates, and therefore, because of the known contamination of crude synaptosomal preparations with glial particles, we sought to determine the cellular origin of the two taurine uptake systems in our crude preparation. Using a variety of diverse biochemical techniques such as hypo-osmotic shock, release experiments and Arrhenius plots, we determined that physical changes of the media or depolarizing stimuli which would influence neuronal and glial cell particles differently, also had differing effects on high and low affinity taurine uptake or its release from the respective uptake compartments. We conclude that the high affinity taurine uptake system/compartment is located on/in neuronal membranes/particles/particles and that the low affinity taurine uptake system/compartment is located on/in neuronal membranes/particles and that model for the differential cellular transport and compartmentalization of taurine into neuronal and glial cells has important implications concerning its possible role in the CNS.

Animals↗

Prenatal and postnatal ontogenesis of neurotransmitter-synthetizing enzymes and [125I]tetanus toxin binding capacity in the mouse hypothalamus.

In order to estimate the early neuronal maturation in the hypothalamus, we followed the development of 3 neurotransmitter-synthetizing enzymes (TH, GAD, ChAT) and a neuronal cell surface marker (tetanus toxin) in the hypothalamus as compared to cerebral hemispheres. This showed that TH, ChAT and GAD activities were present in both structures on the fourteenth fetal day. Yet, before birth, whereas GAD and ChAT activities remained low and followed a similar development in the 2 structures, TH activity was important and higher in hypothalamus than in brain hemispheres. After birth the activities of the 3 enzymes increased rapidly between day 5 and day 20, but their evolution in the hypothalamus always preceded that in the cerebral hemispheres. Tetanus toxin binding capacity was present on the thirteenth fetal day in the 2 structures, but during fetal life in the hypothalamus, the level of toxin binding was always higher than in the cerebral hemispheres. After birth, the toxin binding increased between day 2 and day 10 and reached adult level at the same time in both structures, around day 15. We conclude that neuronal maturation proceeds earlier in the hypothalamus than in brain hemispheres, and that the differentiation of a neuronal surface marker appears concomitantly with that of specific intraneuronal enzymes.

Animals↗

Distribution of cholinergic neurons and fibers in the hypothalamus of the rat using choline acetyltransferase as a marker.

The distribution of choline-acetyltransferase-like immunoreactive structures in the rat hypothalamus and preoptic area was examined by using avidin-biotin immunocytochemistry. We found that the hypothalamus is richly innervated by the cholinergic neuron system. Sites containing cholinergic neurons of varying density were: medial and lateral preoptic areas, septohypothalamic nucleus, median preoptic area, lateral hypothalamus including the perifornical area, anterior hypothalamic nucleus, arcuate nucleus, dorsomedial hypothalamic nucleus, posterior hypothalamic nucleus, dorsal and ventral premammillary nuclei, neuropil mediodorsal to the anterior hypothalamic nucleus, neuropil ventral to the anterior hypothalamic nucleus and ventromedial hypothalamic nucleus, neuropil between lateral hypothalamus and ventromedial hypothalamus, and neuropil between dorsal premammillary nucleus and posterior hypothalamic nucleus. There were also many varicose and non-varicose fibers in the preoptic area and hypothalamus. Two kinds of varicose fibers, one with strong immunoreactivity and the other with weak immunoreactivity, were seen. Non-varicose fibers were also detected in the optic chiasma and habenulo-interpeduncular tract. These fibers were passing fibers.

Animals↗

Increased endogenous noradrenaline and neuropeptide Y release from the hypothalamus of streptozotocin diabetic rats.

Noradrenaline and neuropeptide Y (NPY) in the hypothalamus regulate a number of important endocrine and autonomic functions. Alterations in brain neurotransmitter content have been described in type 1 diabetes but there is little understanding of whether these changes affect neurotransmitter release. This study examined for the first time, region-specific co-release of NPY and noradrenaline from the hypothalamus of male Sprague-Dawley rats treated intravenously with 48 mg/kg streptozotocin (STZ) or vehicle. Five weeks later, the release of endogenous noradrenaline and NPY was monitored by in vitro superfusion of ventral and dorsal hypothalamus slices under basal and potassium-stimulated conditions. STZ-diabetes induced significant increases in basal noradrenaline and NPY overflow from the ventral hypothalamus (P<0.05); only NPY overflow was increased in the dorsal hypothalamus (P<0.05). Noradrenaline overflow increased similarly to potassium depolarisation in vehicle and STZ-diabetic rats, whereas diabetic rats showed a significantly increased NPY overflow response to potassium depolarisation compared to vehicle rats. These region-specific increases in endogenous noradrenaline and NPY overflow from the hypothalamus in diabetes suggest increased neuronal activity at rest and enhanced responses under some conditions. Increased hypothalamic NPY and noradrenaline overflow most likely contributes to diabetic hyperphagia.

Animals↗

Decreased [3H] YM-09151-2 binding to dopamine D2 receptors in the hypothalamus, brainstem and pancreatic islets of streptozotocin-induced diabetic rats.

In the present study dopamine was measured in the hypothalamus, brainstem, pancreatic islets and plasma, using HPLC. Dopamine D2 receptor changes in the hypothalamus, brainstem and pancreatic islets were studied using [3H] YM-09151-2 in streptozotocin-induced diabetic and insulin-treated diabetic rats. There was a significant decrease in dopamine content in the hypothalamus (P<0.001), brainstem (P<0.001), pancreatic islets (P<0.001) and plasma (P<0.001) in diabetic rats when compared to control. Scatchard analysis of [3H] YM-09151-2 in the hypothalamus of diabetic rats showed a significant decrease in Bmax (P<0.001) and Kd, showing an increased affinity of D2 receptors when compared to control. Insulin treatment did not completely reverse the changes that occurred during diabetes. There was a significant decrease in Bmax (P<0.01) with decreased affinity in the brainstem of diabetic rats. The islet membrane preparation of diabetic rats showed a significant decrease (P<0.001) in the binding of [3H] YM-09151-2 with decreased Kd (P<0.001) compared to control. The increase in affinity of D2 receptors in hypothalamus and pancreatic islets and the decreased affinity in brainstem were confirmed by competition analysis. Thus our results suggest that the decreased dopamine D2 receptor function in the hypothalamus, brainstem and pancreas affects insulin secretion in diabetic rats, which has immense clinical relevance to the management of diabetes.

Animals↗