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H Onoe

Publications and source records attributed to H Onoe.

At least 37 records · Page 2Linked to original sources

Regional activation of human cerebral cortex upon an adaptation in mirror drawing.

To elucidate cerebral regions involved in adaptation to mirror drawing, changes in regional cerebral blood flow were measured using positron emission tomography at different levels of adaptation. A significant signal in subtraction images was localized in left Brodmann's area 45 (ventral sub-region of Broca's area) in the initial phase of the mirror drawing. This activity decreased as adaptation proceeded, and a small cluster in area 19 of the medial extrastriate cortex became significantly active. An after-effect of ca. 30 min of mirror-drawing was also detected in the right area 21 of the temporal association cortex. The results first demonstrated visuo-cortical regions where neurons might change their activity to evoke plastic response to the inverted vision.

Adaptation, Psychological↗

Receptor imaging technique with 11C-labeled receptor ligands in living brain slices: its application to time-resolved imaging and saturation analysis of benzodiazepine receptor using [11C]Ro15-1788.

Recently we developed a novel imaging technique using positron emitter-labeled compounds as probes and a storage phosphor screen as a detector. This approach makes it possible to follow a variety of biochemical processes with spatial information in living brain slices. Further technical development is reported here in terms of time-resolved imaging and receptor characterization in a real equilibrium state. The method was validated by use of [11C]Ro15-1788, a benzodiazepine receptor antagonist. Fresh brain slices were incubated with [11C]Ro15-1788 in oxygenated Krebs-Ringer solution at 37 degrees C, in a specially designed chamber. By placing the chamber on a storage phosphor screen, we could obtain two-dimensional images of radioactivity in the slices. Time-resolved imaging was made at 5 min intervals, revealing that it took 60 min to reach equilibrium binding. The dissociation process was observed by adding an excess amount of unlabeled Ro15-1788 to the chamber, 25 min was required for the full dissociation. In the equilibrium state, i.e. in the presence of free radio-ligand, Scatchard plot analysis was performed on the cerebral cortex (Kd = 7.4 nM, Bmax = 146 fmol/mg tissue) and striatum (Kd = 7.5 nM, Bmax = 107 fmol/mg tissue), suggesting the presence of a single component of binding site in these two regions. The present method, for the first time, made it possible to study a ligand-receptor interaction in living brain slices with temporal and spatial resolutions. This technique should prove useful for studies of receptor function under physiological conditions.

Animals↗

Kainate receptors: a novel mechanism in paradoxical (REM) sleep generation.

Application of kainate to the peri-locus coeruleus alpha (peri-LC alpha) resulted in a marked increase in paradoxical sleep (PS). This effect was completely blocked by specific non-NMDA receptor antagonists, but not by selective NMDA receptor antagonists. Kainate was 10 times more potent than AMPA, and their site of action was confined to the peri-LC alpha. This study is the first to show that excitatory amino acids play an important role in PS generation via the activation of kainate receptors which are located in the peri-LC alpha of the mediodorsal pontine tegmentum.

Animals↗

Difference in response of D2 receptor binding between 11C-N-methylspiperone and 11C-raclopride against anesthetics in rhesus monkey brain.

The effects of anesthesia on dopamine D2 receptor binding in the rhesus monkey brain were examined using positron emission tomography. The bindings of 11C-N-methylspiperone (NMSP) and 11C-raclopride (RAC) were measured under controlled ketamine or isoflurane anesthesia. The binding of 11C-NMSP was significantly lower in the striatum anesthetized with isoflurane than with ketamine. There was a smaller change in the binding of 11C-RAC than of 11C-NMSP. These findings suggest that changes in 11C-NMSP or 11C-RAC binding induced by anesthetics were not due solely to changes in the competition of endogenous dopamine.

Anesthetics↗

In vitro positron emission tomography (PET): use of positron emission tracers in functional imaging in living brain slices.

Positron-emitting radionuclides have short half-lives and high radiation energies compared with radioisotopes generally used in biomedical research. We examined the possibility of applying positron emitter-labeled compounds to functional imaging in brain slices kept viable in an oxygenated buffer solution. Brain slices (300 microns thick) containing the striatum were incubated with positron emitter-labeled tracers for 30-45 min. The slices were then rinsed and placed on the bottom of a Plexiglas chamber filled with oxygenated Krebs-Ringer solution. The bottom of the chamber consisted of a thin polypropylene film to allow good penetration of beta+ particles from the brain slices. The chamber was placed on a storage phosphor screen, which has a higher sensitivity and a wider dynamic range than X-ray films. After an exposure period of 15-60 min, the screen was scanned by the analyzer and radioactivity images of brain slices were obtained within 20 min. We succeeded in obtaining quantitative images of (1) [18F]fluorodeoxyglucose uptake, (2) dopamine D2 receptor binding, (3) dopa-decarboxylase activity, and (4) release of [11C]dopamine preloaded as L-[11C]DOPA in the brain slice preparation. These results demonstrate that positron emitter-labeled tracers in combination with storage phosphor screens are useful for functional imaging of living brain slices as a novel neuroscience technique.

Animals↗

Prostacyclin receptor in the brain and central terminals of the primary sensory neurons: an autoradiographic study using a stable prostacyclin analogue [3H]iloprost.

Presence and localization of the prostacyclin receptor in the rat brain and spinal cord were examined by in vitro autoradiography using [3H]iloprost, a highly specific and stable agonist for this receptor. Density of specific binding sites for iloprost was generally high in four regions of the lower brain stem, that is, the medial and commissural subnuclei of the nucleus tractus solitarius, the area postrema, superficial layers of the spinal trigeminal nucleus caudalis and dorsal horn. Moderate density was found in the thalamus, cerebral cortex, hippocampus, striatum and dorsal cochlear nucleus. The distribution pattern was distinct from those of other prostanoid binding sites previously studied except that prostaglandin E2 binding sites were also abundant in the nucleus tractus solitarius, spinal trigeminal nucleus caudalis and dorsal horn. Even in these regions, binding sites for iloprost had several features clearly different from those for prostaglandin E2. First, within the medial and commissural subnuclei of the nucleus tractus solitarius, iloprost binding sites were distributed preferentially in the dorsal part, while those for prostaglandin E2 were located more ventrolaterally. Second, on postnatal day 0, iloprost binding sites have already been expressed in large amounts in the nucleus tractus solitarius, spinal trigeminal nucleus caudalis and dorsal horn of rats, while prostaglandin E2 binding sites are negligible at this stage. Thirdly, the binding of 10 nM [3H]iloprost in these three regions was almost completely displaced by 10 microM unlabelled iloprost but only slightly by 10 microM unlabelled prostaglandin E2. Unilateral nodose ganglionectomy or dorsal rhizotomy decreased the density of iloprost binding sites in the nucleus tractus solitarius or dorsal horn, respectively, with a greater decrease in the operated side. Ligation of the vagus either central or peripheral to the nodose ganglion resulted in an accumulation of iloprost binding sites proximal to the ligation. These results suggest that specific binding sites for iloprost, presumably prostacyclin receptor, are present in the nervous system and, in particular, that the iloprost binding sites in the nucleus tractus solitarius, dorsal horn and possibly in the superficial layers of the spinal trigeminal nucleus caudalis are produced in their sensory ganglia and transported to central terminals of the primary sensory afferents as well as to their peripheral terminals.

Animals↗

Brain activation study by use of positron emission tomography in unanesthetized monkeys.

A system for the measurement of brain activity in conscious monkeys by positron emission tomography (PET) was established in the present study. The signal/noise ratio was maximal around 40 s for data acquisition in the PET scan with 15O-labeled water. When the monkey was stimulated by vibration and subtraction images of the data sets from regional cerebral blood flow (rCBF) changes in paired stimulation and control were superimposed on magnetic resonance images obtained from the same specimens, a somatotopic map corresponding to the sites stimulated was clearly demonstrated. Visual stimulation with a photic stimulator activated the corresponding regions of the primary visual cortex. Comparison of the activated sites and extents under the conscious state with those under anesthesia assured that the study is controllable; there was little unpredictable activation due to unlimited subject movement or to psychological effects.

Animals↗

Ketamine increases the striatal N-[11C]methylspiperone binding in vivo: positron emission tomography study using conscious rhesus monkey.

A system for positron emission tomography study of conscious monkeys was newly developed. By use of this system in combination with a microdialysis technique, the effect of ketamine on the binding and release of dopamine was investigated. The administration of ketamine (5 mg/kg) caused sedation accompanied by psychotic symptoms such as nystagmus and stereotyped movements of extremities. During this psychotomimetic period produced by ketamine, a significant increase in the accumulation of the dopamine D2 receptor ligand N-[11C]methylspiperone was observed in the striatum compared with the level in the conscious state, while no significant change was observed in the frontal cortex and cerebellum. In contrast to the use of ketamine as the anesthetic, pentobarbital (25 mg/kg), which produced deeper anesthesia but no psychotic symptoms, caused a decrease in the accumulation of N-[11C]methylspiperone in the striatum. Kinetic analysis, conducted by a graphical method, revealed that the value of the association constant (K3) for N-[11C]methylspiperone binding in the striatum was increased to approximately 130% by ketamine and decreased to approximately 70% by pentobarbital compared with the control values. Furthermore, the release of dopamine from the striatum measured by microdialysis was not affected by ketamine anesthesia. These results indicate that ketamine facilitates striatal dopaminergic neurotransmission through increasing the binding activity of dopamine D2 receptors in the striatum, and suggest that these changes may be related to the psychotomimetic behavioral symptoms of this drug.

Animals↗

GABAergic system inducing hyperthermia in the rat preoptic area: its independence of prostaglandin E2 system.

Brain temperature of conscious freely moving rats was recorded during perfusion of the preoptic area (POA) with neuroactive compounds using the microdialysis technique. Unilateral perfusion of the POA with the sodium channel blocking agent, tetrodotoxin (1 microM), induced a pronounced hyperthermia. Of the neuroactive compounds examined, the greatest thermogenic response to local perfusion of the POA was elicited by the GABAergic agonist, muscimol. Muscimol (10, 20 and 100 microM) exhibited a dose-dependent and reversible hyperthermia. This hyperthermia was attenuated by co-perfusion with the GABAergic antagonist, bicuculline (10 microM). Muscimol-induced hyperthermia was independent of prostaglandin biosynthesis, and additive with prostaglandin E2 (10 microM)-induced hyperthermia. Prostaglandin E2-induced hyperthermia was not affected by co-perfusion with bicuculline. These data suggest the existence of two independent neurochemical systems for genesis of hyperthermia colocalized within the POA.

Analysis of Variance↗

Non-synchronous behavior of neuronal activity, oxidative metabolism and blood supply during mental tasks in man.

In near-infrared spectroscopic studies during mental tasks such as problem solving and mental arithmetic, we found that 9 of 33 healthy volunteers showed decreases in both the regional cerebral blood flow (r-CBF) and oxygen consumption rate (CMRO2) in the frontal region of the dominant hemisphere. To confirm these unexpected observations, we performed simultaneous measurements by positron emission tomography (PET) and near-infrared spectroscopy (NIRS) in two such subjects. PET images also showed that CBF decreased within the presumptive area illuminated by near-infrared light during mental task. However, CBF decreased in almost all regions while the subject gave a correct answer. Thus, the questions arose: Are mental tasks always associated with increases in r-CBF and/or CMRO2?

Adult↗

Promotion of sleep by prostaglandin D2 in rats made insomniac by pretreatment with para-chlorophenylalanine.

The correlation between the somnogenic effect of prostaglandin (PG) D2 and the serotoninergic system was examined in freely-moving rats (n = 64) by use of a continuous infusion method. Rats pretreated with para-chlorophenylalanine (PCPA: 450 mg/kg body weight, i.p.) or non-PCPA-pretreated rats received infusion of PGD2, serotonin, or its direct precursor, 5-hydroxytryptophan (5HTP), into their third cerebral ventricle at a rate of 100 pmol/0.2 microliter/min between 11:00 and 17:00 h. In the PCPA-pretreated insomniac rats, PGD2 infusion resulted in an immediate increase in slow-wave sleep (SWS) and an increase with a 2-h latency in paradoxical sleep (PS). The total amounts of SWS and PS during the PGD2-infusion period were 151% and 154% of the respective control values. These results indicate that inhibition of the biosynthesis of serotonin and 5HTP by PCPA marginally affects the sleep-promoting effect of PGD2. The transient sleep restoration produced by 5HTP infusion into PCPA-pretreated rats was hardly affected by the simultaneous infusion (200 pmol/0.2 microliter/min; 07:00-17:00 h) of diclofenac sodium, an inhibitor of cyclo-oxygenase, suggesting that PGD2 production is not critically involved in the sleep restoration by 5HTP. The sleep-promoting property of PGD2 is thus probably independent of the serotoninergic modulation of sleep-wake activity.

5-Hydroxytryptophan↗

Prostaglandin E2 excites neurons of the nucleus tractus solitarius by activating cation channels.

Nucleus tractus solitarius (NTS) has a high density of prostaglandin E2 (PGE2)-binding sites. Action of PGE2 (10(-9)-10(-6) M) was tested on neurons in a NTS slice with patch-clamp recording under synaptic blockade. PGE2 raised the firing rate in approximately half of the neurons in cell-attached patch mode. In whole-cell current clamp, PGE2 depolarized membrane potential accompanied by an increase in firing rate. In whole-cell voltage clamp (-58 mV), PGE2 induced the inward current with an increase in conductance. The current was linearly related to voltage from -100 mV to -10 mV and suppressed between -10 mV and 20 mV. The current-voltage curve remained similar under low external Cl- or high internal Cl- conditions and after external Na+ was replaced by Cs+. It is concluded that PGE2 excites NTS neurons by activating cation conductance.

Animals↗

Behavioral activation by stimulation of a GABAergic mechanism in the preoptic area of rat.

The locomotor activity and grooming of conscious freely moving rats were recorded during a 60-min unilateral perfusion of the preoptic area with neuroactive compounds using the microdialysis technique. The GABA agonist, muscimol (10, 20 and 100 microM) induced a dose-dependent increase in locomotor activity and grooming which was attenuated by co-perfusion with the GABA antagonist, bicuculline (10 microM), and was blocked by systemic injection of haloperidol, a preferential dopamine D2 receptor antagonist (0.25 mg/kg). Muscimol-induced hyperactivity was associated with a simultaneous increase of striatal extracellular dopamine. These data suggest that the preoptic area is functionally linked with the extrapyramidal dopaminergic system possibly via GABAergic system.

Animals↗

Mapping of prostaglandin E2 binding sites in rat brain using quantitative autoradiography.

The density of specific prostaglandin E2 (PGE2) binding sites was quantitatively mapped in the rat brain using in vitro autoradiography. The anterior wall of the third ventricle and the nucleus solitary tract were found to have a very high density of binding sites (greater than 15 fmol/mg tissue). Two thalamic nuclei (paraventricular and anteroventral nuclei) and the dorsal parabrachial nucleus contained a high density of binding sites (10-15 fmol/mg tissue). Entorhinal cortex, ventral hippocampus, amygdala, dorsomedial hypothalamus, mammillary complex, some thalamic nuclei, central gray, superior colliculus, raphe nuclei, locus coeruleus, spinal trigeminal nucleus (caudal part) and the dorsal horn of the spinal cord (laminae 1 and 2) had each a moderate density of binding sites (5-10 fmol/mg tissue). Binding tended to occur in brain regions rich in neuronal cell bodies or neuronal cell processes (dendrites and axon terminals). PGE1, whose central actions are very similar to those of PGE2, had essentially the same pattern of binding sites as did PGE2 throughout the entire brain, suggesting there are receptors common to these two PGEs. In addition to already known functions of receptors common to these two PGEs. In addition to already known functions of PGE2 in the hypothalamus, which include fever genesis, promotion of wakefulness, cardiovascular control and LH-RH release, the unique distribution of extrahypothalamic PGE2 binding sites found in this study suggests its involvement in the processing or modulation of viscerosensory, somatosensory (nociceptive and possibly thermal) and visual inputs as well as in the central integration of autonomic and limbic functions.(ABSTRACT TRUNCATED AT 250 WORDS)

Alprostadil↗

In vitro receptor autoradiography: a map for exploring the hypothalamus.

In rabbits and guinea pigs, hypothalamic sites for prostaglandin E2 (PGE2) action were studied by means of in vitro receptor autoradiography. The density of PGE2 binding sites (probably PGE2 receptors) was the highest in the anterior wall of the third ventricle (A3V). This result is consistent in all mammalian species ever studied, suggesting a fundamental role of the A3V in the hypothalamic action of PGE2, such as fever.

Animals↗

Prostaglandin E2 exerts an awaking effect in the posterior hypothalamus at a site distinct from that mediating its febrile action in the anterior hypothalamus.

The precise sites for prostaglandin E2 (PGE2)-related activity responsible for the promotion of wakefulness and elevation of brain temperature were determined in several regions of the monkey brain. PGE2 was administered through a microdialysis probe into 11 brain loci mainly in the preoptic area/anterior hypothalamic region (POA/AH) and the tuberomammillary region in the posterior hypothalamus (TuM-PH). Administration of PGE2 into the POA/AH resulted in a marked and dose-dependent febrile response. When a low dose (15 pmol/min) of PGE2 was administered into the POA/AH, brain temperature increased significantly up to a 0.6 degrees C rise, but sleep behavior and amounts of time in wakefulness, slow wave sleep (SWS), and REM sleep during the administration period were not significantly different from those of the control monkeys. Dose of PGE2 above 150 pmol/min elevated the brain temperature and heart rate more markedly and suppressed sleep. The degree of inhibition of sleep by PGE2 was closely correlated with the changes in these autonomic responses. On the other hand, when a low dose of PGE2 was administered into the TuM-PH, the time spent awake during the administration period increased up to 3.5-fold and the amount of time spent in SWS decreased to 50% of that of the control level, with negligible changes in brain temperature and heart rate. The awaking response of PGE2 in the TuM-PH was also dose dependent, but was not correlated with the change in brain temperature. Among 11 brain regions tested, the hyperthermic effect of PGE2 was most potent in the POA, while its awaking effect was most pronounced in the TuM-PH close to the mammillary complex. These findings demonstrate that the site of action of PGE2 for the regulation of sleep-wakefulness is clearly distinct from that for the temperature regulation. PGE2 may be involved in the neurochemical mechanism of wakefulness mediated in a specific site in the PH.

Animals↗