PubMed HealthSearch

Biomedical subjects

S Aou

Publications and source records attributed to S Aou.

At least 19 recordsLinked to original sources

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

Responses of lateral hypothalamic glucose-sensitive and glucose-insensitive neurons to chemical stimuli in behaving rhesus monkeys.

1. Extracellular single neuron activity was recorded in the lateral hypothalamic area (LHA) of awake, behaving monkeys, with particular regard to the feeding-related functional characteristics of glucose-sensitive (GS) versus glucose-insensitive (GIS) neurons. Firing rate changes were recorded by means of carbon fiber, multibarreled glass microelectrodes during 1) microelectrophoretic application of various chemicals, 2) gustatory and olfactory stimulation, and 3) a high fixed-ratio schedule (FR) bar press feeding task. 2. In 336 neurons examined, 91 (27%) were suppressed by electrophoretically administered glucose, and so they were designated as GS cells. The 245 neurons (73%) in which the firing rates did not change during glucose applications were pronounced GIS. The 179 GS and GIS cells tested exhibited different responses to the catecholamines (CAs), noradrenaline (NA) and dopamine (DA), both of which are intimately involved in the control of feeding. More GS neurons responded to NA than did GIS cells; the predominant effect of both CAs on GS neurons was inhibition. 3. The taste responsiveness of 111 LHA neurons was examined. Fifty-seven cells (52%) showed responses to gustatory stimulation. Of 50 GS neurons tested, 33 (66%) exhibited firing rate changes to tastes. On the contrary, only 24 (39%) of the 61 GIS neurons examined responded to gustatory stimuli. Activity changes of GS neurons commonly occurred to two or more tastants, in distinction to the relative gustatory specificity shown by GIS cells. 4. Two hundred fifty-six (84%) of the 303 neurons tested responded during one or more phases of the bar press feeding task. Most activity changes occurred during the bar press (BP) and reward (RW) periods, however numerous phasic responses to cue light (CL) and cue tone (CT) were also observed. A higher proportion of the GS neurons showed task-related activity changes than did the GIS cells (77, 95% and 179, 81%, respectively). GS neurons responded more during the BP phase and to the food reward; GIS cells were more responsive during the CL that enabled acquisition and the CT that signaled reward. Thus GS neurons were responsive during the acquisition and consumption of reward, whereas GIS cells responded to external cues signaling both of these events. The gustatory neurons displayed specific task-related activity changes only in the CL (GIS cells) and BP phases (GS neurons), that is, in phases most intimately involved in sensory-motor integration. 5. Two-thirds of the 30 GS neurons tested were responsive to both gustatory and olfactory stimulation as opposed to only one-third of GIS cells.(ABSTRACT TRUNCATED AT 400 WORDS)

Action Potentials

Changes in the activity of units of the cat motor cortex with rapid conditioning and extinction of a compound eye blink movement.

Patterns of spike activity were measured in the pericruciate cortex of conscious cats before and after development of a Pavlovian conditioned eye blink response. Unit activity was tested with presentations of a click conditioned stimulus (CS) and a hiss discriminative stimulus (DS) of similar intensity to the click. Unit discharge in response to the CS increased after conditioning, but not after backward conditioning when conditioned reflexes (CRs) were not performed. Rates of spontaneous, baseline discharge were not increased after conditioning with respect to rates of discharge measured in the naive state. It appeared that an increase in the ratio of CS-elicited discharge to background activity, together with an increase in the number of units responding to the CS after conditioning, supported discrimination of the CS from the DS and performance of the conditioned blink response. This is the first detailed characterization of patterns of a rapidly conditioned Pavlovian response. Activation of units by the CS preceded the onset of the CR, supporting the hypothesis that the activity played a role in initiating the conditioned eye blink movement. Extinction with retention of performance of the CR was associated with perseverance of the increased unit discharge in response to the CS. Extinction with substantially reduced performance of the CR was associated with diminution of the unit response to the CS below levels found with conditioning. Averages of patterns of spike activity elicited by the CS after conditioning showed components of discharge with onsets of 8-40 msec (alpha 1), 40-72 msec (alpha 2), 72-112 msec (beta), and greater than 112 msec (gamma), corresponding to each of four separate excitatory EMG components of the compound blink CR. Each component increased in magnitude after conditioning, relative to levels found in the naive state. The finding that long- as well as short-latency components of unit activation increased after conditioning supported the hypothesis that generation of both long- and short-latency blink CRs in normal animals may depend significantly on neural circuitry and mechanisms within the motor cortex.

Animals

Increases in excitability of neurons of the motor cortex of cats after rapid acquisition of eye blink conditioning.

Measurements were made of resting potentials, input resistance, and excitability to intracellularly applied, depolarizing current pulses in neurons of the pericruciate cortex of conscious cats before and after acquisition of a rapidly conditioned eye blink reflex (CR). Neuronal excitability increased after conditioning, and an increased input resistance was found to be correlated with the increased level of excitability. No associated changes were found in resting potentials as a consequence of conditioning. When cells were divided into groups according to the latency of spike activity elicited by a click conditioned stimulus (CS) in relation to four separate excitatory EMG components of the compound blink CR, excitability increases were found in cells with increased spike activity at alpha 1 (8-40 msec), alpha 2 (40-72 msec), beta (72-112 msec), and gamma (112-160 msec) latencies after delivery of the CS. Also, the proportion of cells with high excitability (less than 0.7 nA required for spike elicitation) was increased at each latency period after conditioning. Increases in later components of spike discharge could also be found in the cells with increases in earlier components of discharge and increased excitability. The findings suggested that excitability increases facilitated a responsiveness to the CS that supported production of long- as well as short-latency components of the blink CR. Many of the changes in neuronal properties found after rapid eye blink conditioning, such as the increases in excitability and resistance and in the proportion of CS-excitable cells, resembled changes found earlier after acquisition of a slowly developing Pavlovian blink CR, using the same click CS and tap unconditioned stimulus without addition of a hypothalamic stimulus. The possibility should be considered that the (10-100 times) more rapidly acquired form of eye blink conditioning does not represent a different form of conditioning, but instead a change in the rate of conditioning supported by the more rapid production of increases in neural excitability.

Animals

Taste and olfactory modulation of feeding related neurons in behaving monkey.

Single neuron activity in the monkey lateral hypothalamus (LHA) was recorded by multibarreled electrode during a bar press feeding task. Activity of glucose-sensitive (GS) neurons decreased during bar press (BP) and reward (RW) periods. The inhibition was caused by activation of beta-adrenoceptors and opioid receptors respectively. Glucose-insensitive (GIS) neurons were excited during BP and RW, and at cue light (CL). Excitation at CL and BP was caused by activation of dopaminergic receptors. Among GS neurons, 66% responded to taste and 88% to odor. These responses were 39% and 52% in GIS neurons. GS neurons responded predominantly to two or more taste and odor stimuli while GIS neurons responded to only one stimulant. GS neurons have dense mutual connections with the prefrontal area, and GIS neurons are connected with the motor area. Gustatory and olfactory stimulation elicited responses in 67% of GS neurons and in only 21% of GIS neurons. Data suggest that GS and GIS neurons may have different functions in feeding: GS neurons process endogenous chemical information and integrated chemical sensations, and GIS neurons process external information processing, motor control and discriminative chemical sensations.

Animals

Electrical stimulation of male monkey's midbrain elicits components of sexual behavior.

We electrically stimulated the midbrain of male rhesus monkeys seated in a restraint chair facing the female partners and examined whether sexual behavior could be induced. When the midbrain was stimulated (0.2 ms, 50-500 microA and 50 Hz for 2.5 s), the male monkey touched and held the waist of his partner (latency; 0.9 +/- 0.4 s, mean +/- SD, n = 225), and then mounted her when she responded with presenting her hip toward him. However, this mounting, unlike when the hypothalamus was stimulated, did not lead to thrusting or ejaculation even if the stimulation continued. The sites in the midbrain where the stimulation elicited touching and mounting were the ventral tegmental area, the substantia nigra, the nucleus reticularis mesencephali and the nucleus reticularis pontis oralis et caudalis. Touching and mounting were not elicited when the partner was put away from the male or replaced by submissive male monkeys or humans. The findings suggest that the stimulation-evoked touching and mounting are components of copulatory behavior and that the midbrain structures may be involved in the sexual behavior of male monkeys.

Animals

The effects of interleukin-1 beta on the activity of adrenal, splenic and renal sympathetic nerves in the rat.

The effects of intravenous (i.v.) administration of recombinant human interleukin-1 beta (rhIL-1 beta) on the activity of adrenal, splenic and renal sympathetic nerves were observed in urethane-anesthetized rats. An i.v. injection of IL-1 beta in doses of 10 pg-20 ng per animal (300-400 g, b.w.) resulted in a dose-dependent increase in the activity of the adrenal and splenic nerves, which lasted for more than 2-6 h. On the other hand, the activity of renal nerves showed a transient increase which was followed by a long-lasting suppression after injection of rhIL-1 beta (100 pg, i.v.). An i.v. injection of cyclooxygenase inhibitors (6 mg ibuprofen or 20 mg sodium salicylate) suppressed almost completely the rhIL-1 beta (100 pg)-induced activity in adrenal and splenic nerves. Although rhIL-1 beta (100 pg, i.v.) produced a fall in arterial blood pressure, baroreceptor denervation did not affect the excitatory responses of the adrenal and splenic nerves to rhIL-1 beta. The results suggest the regional differentiation of activity in the visceral sympathetic nerves in response to rhIL-1 beta. The rhIL-1 beta-induced activation of splenic sympathetic nerves implicates their involvement in the modulation of immunity by brain.

Adrenal Glands

A method for gustatory stimulus delivery in awake rhesus monkeys.

A novel taste stimulus delivery technique along with a simple electronic onset marking system, designed for complex, neurophysiological-behavioral experiments in awake monkeys, are described. Intraoral implantation of a polyethylene tubing fistula enabled us to perform repeated, well-standardized application of various taste solutions to broad areas of gustatory receptors on the tongue, palate, pharynx and epiglottis while activity of single neurons was extracellularly recorded in behaving rhesus monkeys. By introducing an electronic marking onset and duration of the stimulation could be determined.

Administration, Oral

Complex attributes of lateral hypothalamic neurons in the regulation of feeding of alert rhesus monkeys.

To elucidate the roles of glucose-sensitive (GS) and glucose-insensitive (GIS) cells of the lateral hypothalamic area (LHA), single neuron activity was recorded during 1) microelectrophoretic administration of chemicals, 2) a conditioned bar press feeding task, 3) gustatory, 4) olfactory, and 5) electrical brain stimulation. GS and GIS neurons showed different firing rate changes during phases of the task, and the responses were highly influenced by the palatability of the food and the motivational (hunger or satiety) state of the animal. The two groups of cells also differed in their responsiveness to gustatory and olfactory stimuli: GS neurons were more likely to respond to tastes and odors than GIS cells. Taste- and odor-responsive GS neurons were primarily suppressed by electrophoretically applied noradrenaline and were localized ventromedially within the LHA. The chemosensitive GIS cells, being organized along a dorsolateral axis, were especially excited by dopamine. The two sets of neurons had distinct connections with associative (orbitofrontal, prefrontal) cortical areas. GS and GIS cells, thus, appear to have differential and complex attributes in the control of feeding.

Animals

Influence of acetylcholine on neuronal activity of monkey amygdala during bar press feeding behavior.

Single neuron activity in the monkey amygdala was investigated during cue signalled conditioned bar press feeding behavior and the effects of electrophoretically applied acetylcholine (ACh) and atropine were analyzed. ACh increased the firing rate of one third of the neurons tested; these excitatory responses were inhibited by the muscarinic receptor antagonist atropine. No characteristic location of ACh-sensitive neurons was found, cells were diffusely distributed throughout the amygdala. Activity of ACh-sensitive neurons did not correlate with any particular event during the bar press feeding task. However, continuous application of ACh at low current intensity during the task significantly enhanced the task-related excitatory firing patterns, or markedly attenuated the inhibitory responses. Continuous application of atropine elicited or enhanced inhibitory response patterns. These results suggest that the cholinergic system of the monkey amygdala facilitates neuronal excitation but attenuates inhibition related to various phases of feeding behavior, such as to cue recognition, food aquisition and rewarding process.

Acetylcholine

Olfactory coding in the monkey lateral hypothalamus: behavioral and neurochemical properties of odor-responding neurons.

The activity of glucose-sensitive (GS) and glucose-insensitive (GIS) neurons was recorded in the lateral hypothalamic area (LHA) of monkeys during olfactory stimulation, a conditioned alimentary bar press task, and microelectrophoretic application of catecholamines. Olfactory stimuli evoked response of 88% of the GS neurons, and 52% of the GIS cells responded to odors. The GS neurons were more broadly tuned across odorants than the GIS cells, and their responses to various smells with distinct hedonic value were also differential. The odor-responding GS neurons were depressed during the bar press and reward periods of the task, and were mainly inhibited by dopamine. The odor-responding GIS cell activity increased in response to cue light and tone, and was facilitated by dopamine. Histological examinations disclosed topographic dissociation of the odor-responding GS and GIS cells: the former were located in more ventromedial regions than the latter. The results indicate that the GS neurons integrate multiple chemosensory inputs from both endogenous and exogenous sources in the regulation of feeding: whereas the GIS cells distinguish among fewer, more specific cues to control food acquisition behavior.

Animals

Neuron activity of the ventromedial hypothalamus and the medial preoptic area of the female monkey during sexual behavior.

To elucidate the neural mechanisms of the sexual behavior of the female monkey, single neuron activity of the ventromedial hypothalamus (VMH) and the medial preoptic area (MPOA) was recorded during sexual behavior with a male partner. Copulation was initiated when either the male's touch elicited passive presenting ('receptive presenting') or when the female's active presenting ('proceptive presenting') evoked mounting from the male. Proceptive presenting with no mating acts evoked activity changes in about 40% of cells in the VMH (mainly excitation) and MPOA (mainly inhibition). When the male's mating acts were manifested, 56% of VMH cells and 87% of MPOA cells showed firing changes during presenting, with the proportion of MPOA cells which showed excitation significantly increased. Progress of mating acts of the male partner (e.g. increases in the rate and/or number of thrusting), enhanced activity changes in about 40% of VMH and 70% of MPOA cells tested. The findings suggest that VMH and MPOA cells are involved in the control of sexual behavior in different ways: excitation of the VMH and inhibition of MPOA are related to execution of presenting, while excitation of MPOA is related to sexual intercourse with a male partner; and mating acts of a male partner modulate activity of both VMH and MPOA neurons of the female.

Animals

Proceptive presenting elicited by electrical stimulation of the female monkey hypothalamus.

Proceptive presenting by female macaque monkeys was evoked by electrical stimulation of the ventromedial hypothalamic nucleus and the medial preoptic area, under conditions of partial restraint while sitting in a primate chair. This behavior could be elicited only when a male monkey was in close proximity and not when he was removed or was replaced with a female monkey or the human experimenter. This seems to be the first report on the effects of electrical brain stimulation on proceptivity in the female monkey.

Animals

Effects of behaviorally rewarding hypothalamic electrical stimulation on intracellularly recorded neuronal activity in the motor cortex of awake monkeys.

Effects of hypothalamic stimulation (HS) were studied in intracellular recordings obtained from 125 neurons of the motor cortex (MC). HS that was effective in reinforcing bar-press behavior, i.e. satisfactory for intracranial self-stimulation (ICSS), evoked short-latency (less than 3 ms) activation of these cortical neurons more frequently (42% of cells tested) than did HS that was ineffective in reinforcing bar-press behavior (7% of cells tested). Longer latency activation (greater than 3 ms) and inhibition (of variable onset) also occurred, but their incidence was not significantly different when HS was effective or ineffective in producing ICSS. Effects of HS that was effective in producing ICSS were also examined in 23 cells in which the spikes were followed by afterhyperpolarization (AHP) of 1.4-10 mV amplitude and 1.7-54 ms duration. The amplitudes of AHPs of greater than 8 ms duration were reduced after presentations of HSs that were effective as a reinforcer for ICSS. These results suggest that: (1) MC neurons receive reward-related hypothalamic information through pathways sufficiently direct to produce short-latency activation; and (2) a modulation of spike afterhyperpolarization can be observed in conjunction with reception of this information.

Animals

Central control of sexual behavior.

Neuronal activity changes in the medial preoptic area (MPOA) of the male monkey were related to the commencement of sexual behavior, penile erection and the refractory period following ejaculation. Similarly, changes in the female MPOA were related to the commencement of sexual behavior and presentation. Increased neuronal activity in the dorsomedial hypothalamic nucleus (DMH) in the male monkey and in the ventromedial hypothalamic nucleus (VMH) in the female monkey was synchronized to each mating act. Stimulation study and neuronal activity recordings in the MPOA, DMH and VMH suggest involvement of MPOA neurons in sexual arousal, and of male DMH and female VMH neurons in the copulatory act. Stimulation experiment on the various parts in the hypothalamus of the female monkey also supports the conclusion.

Action Potentials

Catecholaminergic mechanisms of feeding-related lateral hypothalamic activity in the monkey.

The functional role of the catecholaminergic mechanism in the lateral hypothalamus (LHA), in feeding behavior of the monkey was investigated by single neuron activity recording and electrophoretic application of dopamine (DA), noradrenaline (NA) and their antagonists. The feeding paradigm had 4 phases: cue light (CL) signaled start of bar press; bar press (BP, 20-30 times); short cue tone (CT) triggered by last bar press signaled presentation of food; and ingestion-reward (RW). Of 312 neurons tested, 189 (61%) responded in one or more phases of the feeding task. Two types of response were observed: CL- or CT-related transient, and BP- or RW-related long-lasting responses. These feeding-related responses depended on the nature of the food and on the hunger-satiety level. DA excited or inhibited different neurons, while NA mainly inhibited firing. DA-sensitive neurons responded more often in the feeding task than insensitive neurons due mainly to differences in responsiveness to CL on (chi 2 test, P less than 0.01), at motor initiation, and during BP (P less than 0.05). Spiperone blocked the former two responses. NA-sensitive neurons responded more often in the feeding task due to responsiveness during BP and RW (P less than 0.01). Sotalol blocked some BP-related responses, and phenoxybenzamine and sotalol blocked the CT-related responses. The data suggest that dopaminergic and noradrenergic inputs in the LHA are crucial in task initiation and reward processing, respectively. Integration of these catecholaminergic and other inputs in the LHA might be important in accomplishing motivated feeding.

Animals

Pavlovian conditioning of discriminatively elicited eyeblink responses with short onset latency attributable to lengthened interstimulus intervals.

Conditioned eyeblink responses were obtained in cats by pairing click (CS) with glabella tap (US) and electrical stimulation of the hypothalamus (HS). Hiss was used as a discriminative stimulus (DS). Onset latencies of conditioned responses (CRs) of 20-56 ms were obtained by using an interstimulus interval (ISI) of 570-10 ms between CS and US-HS. Longer latency (90-320 ms) blink CRs were obtained with ISIs of 340-240 and 340-10 ms. The timing of associatively learned movements has been thought to increase with lengthening of the intervals between CS and US presentation. The production of shorter latency CRs of this type by lengthening the ISI is a novel result and one unexpected from widely held beliefs.

Acoustic Stimulation

Activity of thermosensitive neurons of monkey preoptic hypothalamus during thermoregulatory operant behavior.

Unit activities of thermosensitive (TS) and non-TS neurons in the medial preoptic area (MPO) of the monkey were investigated during a high fixed-ratio (FR 12-30) bar press behavior to seek cool air (CT) in a warm environment. The monkey performed the task when ambient temperature (Ta) was raised (35-43 degrees C) and the animal was rewarded with a fall in Ta (23-25 degrees C). The population of neurons which changed the activity at least in one phase of CT was significantly higher among TS neurons (42 of 46) than among non-TS neurons (29 of 64). The most frequently observed responses were the sustained increase or decrease in activity during the bar press period and/or the cooling period. The bar press related activity was not a pure motor coupled response, but its magnitude was greatly modified by the strength of motivation of animals to seek cool air. The cooling phase-related activity was not a thermosensory response which simply reflects the level of skin temperature or its change. It was shown that the response was dependent upon the rewarding value of the cooling air. The results suggest that TS neurons in the MPO may be involved in the control of thermoregulatory cooling behavior.

Action Potentials