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H Nishijo

Publications and source records attributed to H Nishijo.

At least 37 records · Page 2Linked to original sources

Generators of visual evoked potentials investigated by dipole tracing in the human occipital cortex.

Current source generators (dipoles) of the human visual evoked potentials to pattern-onset stimuli were investigated with the dipole tracing method, using a realistic four-layer head model of scalp-skull-fluid-brain, which can equate the surface potential distributions on a scalp to one or two corresponding equivalent dipoles. Three healthy adult human subjects were used, and 29 electrodes were set on a scalp of each subject. Visual stimulus of a checkerboard pattern was presented for 250 ms in each of eight different visual fields (central and peripheral parts of each of four quadrant fields). The visual evoked potentials consisting of initial positive-late negative waves (CI and CII components designated by Jeffreys and Axford) were recorded mainly on the occipital region contralateral to stimulated visual fields. The initial positive wave (CI) of visual evoked potentials were divided into two components: early component of the CI (e-CI--an early small positive deflection with approximate peak latency of 70-90 ms) and late component of the CI (l-CI--a late large positive deflection with approximate peak latency of 100-120 ms). The dipole with a fit exceeding 98% dipolarity with our model at the shortest latencies was defined as an "earliest dipole" of the evoked potentials, produced by the primary responses in the occipital cortex to an afferent volley from the lateral geniculate body. These earliest dipoles, for eight different visual field stimulations, were estimated at the approximate peak of the e-CI. Estimated dipoles were superimposed on a three-dimensional magnetic resonance image of each subject's brain. Earliest dipoles for right upper and right lower quadrant-field stimulations were located at the left calcarine cortices below and above the calcarine fissure, respectively; earliest dipoles for left upper and left lower quadrant-field stimulations were located at the right calcarine cortices below and above the calcarine fissure, respectively. Furthermore, earliest dipoles for central and peripheral quadrant-field stimulations were located posteriorly and anteriorly in the calcarine cortex, respectively. The results from these non-invasive analyses of visual evoked potentials indicated topographic localization of the dipoles around the calcarine fissure based on the loci of the visual fields. This was comparable to the retinotopy of the human occipital lobe based on clinicopathological studies.

Adult↗

Gustatory and multimodal neuronal responses in the amygdala during licking and discrimination of sensory stimuli in awake rats.

The amygdala (AM) receives information from various sensory modalities via the neocortex and directly from the thalamus and brain stem and plays an important role in ingestive behaviors. In the present study, neuronal activity was recorded in the AM and amygdalostriatal transition area of rats during discrimination of conditioned sensory stimuli and ingestion of sapid solutions. Of the 420 responsive neurons, 227 responded exclusively to one sensory modality, 120 responded to two or more modalities, and the remaining 73 could not be classified. Among the responsive neurons, 108 responded to oral-sensory stimulation (oral-sensory neurons). In detailed analyses of 84 of these oral-sensory neurons, 24 were classified as taste responsive and were located mainly in the central nucleus of the AM. The other 60 oral-sensory neurons were classified as nontaste oral-sensory neurons and were distributed widely throughout the AM. Both the taste and nontaste oral-sensory neurons also responded to other sensory stimuli. Of the 24 taste neurons, 21 were tested at least with four standard taste solutions. On the basis of the magnitudes of their responses to these sapid stimuli, the taste neurons were classified as follows: seven sucrose-best, four NaCl-best, three citric acid-best, and six quinine HCl-best. The remaining cell responded significantly only to lysine HCl and monosodium glutamate. Multivariate analyses of these 21 taste neurons suggested that, in the AM, taste quality was processed based on palatability. Taken with previous lesion studies, the present results suggest that the AM plays a role in the evaluation of taste palatability and in the association of taste stimuli with other sensory stimuli.

Acoustic Stimulation↗

Three-dimensional localization of dipoles for potentials evoked by posterior tibial nerve stimulation in the monkey.

Somatosensory evoked potentials (SEPs) elicited by right posterior tibial nerve stimulation were simultaneously recorded from 21-27 epidural electrodes in three monkeys. N23-P40 was recorded anterior to the left central sulcus, and P23-N40 was recorded on the parietal midline and the middle portion of the right hemisphere. These potentials were thought to be the primary cortical responses elicited by posterior tibial nerve stimulation in the monkey, since a topographical map made of them corresponded to the paradoxical lateralization of the primary cortical components in human posterior tibial nerve SEPs. Current source generators (dipoles) of these potentials were 3-dimensionally identified dipoles located in the left side of the mesial wall of the anterior parietal cortex, and oriented obliquely toward the right hemisphere by a dipole tracing (DT) method in which the 3-dimensional localization of dipoles in the brain were estimated and superimposed on magnetic resonance imaging (MRI) images.

Animals↗

Relationship between change of movement direction and activity of hippocampal place cells.

Hippocampal neurons which increase their activity when the rat passes through a certain position in the environment are called place cells. This paper describes the relationship between their temporal firing patterns and the behavior of the rat with the aim of characterizing the information they encode. The place field was identified in a circular open field during locomotion rewarded by intracranial self-stimulation of lateral hypothalamus. Detailed analysis of temporal firing patterns shows a correlation between changes in the orientation of movement trajectory and occurrence of the last firing of the burst trains emitted during passage of the animal through the place field. This suggests that some hippocampal neurons may encode the spatial information about the orientation changes in the place field.

Animals↗

Single neuron responses in the monkey anterior cingulate cortex during visual discrimination.

Single neuron activity was recorded from the monkey anterior cingulate cortex during operant behavior based on discrimination of rewarding, aversive, and neutral objects. Of 550 neurons recorded, 116 responded during the task; 36, during visual discrimination; 40, during bar pressing for operant responding. Of these, 26 vision-related neurons responded differentially to rewarding, aversive and neutral objects, and 11 bar press-related neurons differentiated bar pressing to avoid shock from bar pressing to obtain reward. Responses of these neurons depended on associative meaning (aversive or rewarding) of the objects since these neuronal responses were modulated by the reversal learning. The results provide neuronal bases for involvement of the anterior cingulate cortex in emotional and motivational processes.

Animals↗

The relationship between monkey hippocampus place-related neural activity and action in space.

To solve complex spatial problems like visual scanning and spatial navigation, animals must explore and actively sense an array of environmental stimuli. Recent studies have led to an agreement that the hippocampal formation (HF) is essential to the internal representation of spatial relation in animals. In the present study, neural activity was recorded from the HF of three monkeys, which steered a cab to various locations by pressing the appropriate bars (spatial moving task). Place-related activity of most HF neurons persisted even if the direction the monkey faced was rotated during the task. However, when the experimenter, rather than the monkey, controlled the device, the place-related neural activity of most HF neurons turned out to be obscure. The results suggest that the HF represents space effectively in situations in which the animal acts in space.

Animals↗

Septal neuronal responses related to spatial representation in monkeys.

Neuronal activity in the monkey septal nuclei was recorded during performance of a place-dependent go/no-go task in which reward contingencies of the objects were variable with reference to the spatial location of a monkey's cab in one of four places in an experimental room. Of 430 septal neurons recorded, 58 responded differentially to views outside the cab at the four locations of the monkey (place-differential neurons). To investigate the possibility that an ensemble of place-differential neurons represents a space by encoding different scenes (views), responses of the 58 place-differential neurons were analyzed by multidimensional scaling (MDS). The MDS transformed relationships among the four places, expressed as correlation coefficients between all possible pairs of two places based on the 58 place-differential responses, into geometrical relationships in a two-dimensional virtual space. The four places distributed at relative positions in a two-dimensional virtual space derived from the MDS were similar to those in the real experimental room. Furthermore, these correlation coefficients derived from 58 place-differential responses significantly and negatively correlated to behavioral performance in the discrimination of the four places. The results suggest that the ensemble of place-differential responses in the septal nuclei may predict behavioral performance to discriminate places and may represent a space based on the scenes viewed from different locations.

Acoustic Stimulation↗

Motivation-related neuronal activity in the object discrimination task in monkey septal nuclei.

Septal nuclei are suggested to work as an interface between the hippocampal formation, involved in higher cognitive functions, and the hypothalamus, involved in motivational behaviors such as feeding, drinking, and intracranial self-stimulation. In the present study, to elucidate a role of the septal nuclei in motivational behaviors, single neuron activity was recorded from water- and food-deprived monkeys during discrimination of objects associated with juice, and during ingestion of juice. Of 349 neurons recorded from two monkeys, 67 responded in the ingestion phase of the object discrimination task. Of these 67 neurons, 31 were further tested with the noncontingent liquid (juice or water) test in which liquid was provided until the animals became satiated. These 31 septal neurons were classified into two groups: type I neurons (n = 10) responded to juice ingestion with inhibition, and type II neurons (n = 21) responded with excitation. The spontaneous firing rates of the type I neurons were higher in the deprived condition and decreased as the animal became satiated by intake of liquid. Nine type II neurons responded to the sight of a white object associated with juice as well as ingestion of juice. The response magnitudes of the type II neurons to both the sight of the white object and ingestion of juice also decreased by satiation. However, spontaneous firing rates of the type II neurons did not change. These activity changes of both type I and II neurons were well correlated with changes in motivational state of the monkey estimated by the behavioral test. The results suggest that the activity of type I neurons reflects thirst or hunger drive levels, and that responses of type II neurons are related to reward perception. These type I and II neurons were located mainly in the anterior part of the septal nuclei. Results of the present study suggest, along with previous lesion and anatomical studies, that the septal nuclei exert a powerful influence on the motivational/drive systems through the projection to the hypothalamus.

Animals↗

Effects of repeated cold stress on feeding, avoidance behavior, and pain-related nerve fiber activity.

The specific alternation of rhythm in temperature (SART), which is defined as rapid and frequent changes in the environmental temperature several times within the course of a day, produces abnormalities in behavior such as hyperphagia and in sensory sensation such as hyperalgesia. As the first step toward understanding the mechanisms of these abnormalities, we studied the effects or SART stress on ingestive behavior. During the light and dark phases, the animals' food intake increased, but their body weight gain decreased. In addition, diurnal variation in body weight also decreased. Next, we examined the behavioral and electrophysiological effects of SART stress on avoidance behavior by studying the rat's avoidance of a noxious stimulus in the form of a footshock. The rats demonstrated hyperreactivity; the delay in escaping the footshock was decreased by SART stress. The excitability of C-fiber activity, which responds to mechanical and thermal stimuli to a single saphenous nerve, was not changed by SART stress. This suggests that the hyperreactivity in footshock avoidance and the hyperalgesia in pain response induced by SART stress are based on excessive emotionality.

Animals↗

Task-dependent representations in rat hippocampal place neurons.

It is suggested that the hippocampal formation is essential to spatial representations by flexible encoding of diverse information during navigation, which includes not only externally generated sensory information such as visual and auditory sensation but also ideothetic information concerning locomotion (i.e., internally generated information such as proprioceptive and vestibular sensation) as well as information concerning reward. In the present study, we investigated how various types of information are represented in the hippocampal formation, by recording hippocampal complex-spike cells from rats that performed three types of place learning tasks in a circular open field with the use of intracranial self-stimulation as reward. The intracranial self-stimulation reward was delivered in the following three contexts: if the rat 1) entered an experimenter-determined reward place within the open field, and this place was randomly varied in sequential trials; 2) entered two specific places, one within and one outside the place field (an area identified by change in activity of a place neuron); or 3) entered an experimenter-specified place outside the place field. Because the behavioral trails during navigation were more constant in the second task than in the first task, ideothetic information concerning locomotion was more relevant to acquiring reward in the second task than in the first task. Of 43 complex-spike cells recorded, 37 displayed place fields under the first task. Of these 37 place neurons, 34 also had significant reward correlates only inside the place field. Although reward and place correlates of the place neuron activity did not change between the first and second tasks, neuronal correlates to behavioral variables for locomotion such as movement speed, direction, and turning angle significantly increased in the second task. Furthermore, 6 of 31 place neurons tested with the third task, in which the reward place was located outside the original place field, shifted place fields. The results indicated that neuronal correlates of most place neurons flexibly increased their sensitivity to relevant information in a given context and environment, and some place neurons changed the place field per se with place reward association. These results suggest two strategies for how hippocampal neurons incorporate an incredible variety of perceptions into a unified representation of the environment: through flexible use of information and the creation of new representations.

Analysis of Variance↗

Parabrachial neural coding of taste stimuli in awake rats.

Parabrachial neural coding of taste stimuli in awake rats. J. Neurophysiol. 78: 2254-2268, 1997. In awake, behaving rats, the activity of 74 single neurons in the pontine parabrachial nucleus (PBN) was recorded in response to sapid stimulation by 15 chemicals. Of these, 44 taste cells were tested with all 15 stimuli. Based on their responsiveness to 4 standard stimuli, these neurons were categorized as follows: 23 NaCl-best, 15 sucrose-best, 5 citric acid-best, and 1 quinine HCl-best. Several forms of multivariate analyses indicated that the taste responses matched both the behavioral responses to and, less well, the chemical structure of, the sapid stimuli. A hierarchical cluster analysis of the neurons substantially confirmed the best-stimulus categorization, but separated the NaCl-best cells into those that responded more to Na+-containing salts and those that responded more to Cl--containing salts. The cells that responded best to the Na+ moiety actually were somewhat more correlated with the sucrose-best cells than with those that responded to the Cl--containing stimuli. Citric acid-best neurons and the lone quinine-best unit formed a single cluster of neurons that responded well to acids, as well as to NH4Cl and, to a lesser extent, NaNO3. A factor analysis of the neuronal response profiles revealed that three factors accounted for 78.8% of the variance in the sample. Similar analyses of the stimuli suggested that PBN neurons respond to four or five sets of stimuli related by their chemical makeup or by human psychophysical reports. The capacity of rats to make these discriminations has been documented by other behavioral studies in which rodents generalize across sapid chemicals within each of 5 stimulus categories. Furthermore, a simulation analysis of the neural data replicated behavioral results that used amiloride, a Na+ channel blocker, in which rats generalized NaCl to non-Na+, Cl- salts. Thus, using a variety of analyses, in awake rats, the activity of PBN taste neurons tracks their behavioral responses to a variety of chemical stimuli.

Amiloride↗

Emotional and behavioral correlates of mediodorsal thalamic neurons during associative learning in rats.

Neuronal activity was recorded from the mediodorsal thalamic nucleus (MD) of behaving rats that were trained to lick a protruding spout just after a conditioned stimulus to obtain reward or to avoid shock. Conditioned stimuli included both elemental (auditory or visual stimuli) and configural (simultaneous presentation of auditory and visual stimuli predicting reward outcome opposite that predicted by each stimulus presented alone) stimuli. Of 122 MD neurons responding during the task, the activity of 13 increased just before licking only during the task, but not before spontaneous licking during the intertrial interval (conditioned behavior related). These conditioned behavior-related neurons were located mainly in the lateral MD, which has intimate anatomical connections with motor-related areas such as anterior cingulate and striatum. The activity of the other 109 neurons was related to conditioned stimulation (conditioned stimulus related). Most of these neurons responded differentially to both elemental and configural stimuli in terms of reward contingency, and also changed their responses during extinction and relearning trials. Conditioned stimulus-related neurons with latencies < 300 msec were located mainly in the rostromedial MD, which receives afferents from the basolateral nucleus of the amygdala in which sensory information from various sources converge. Furthermore, most differential neurons that were tested responded during the delay period in a reward task in which a delay was imposed between the conditioned stimulus and reward delivery. The present results, along with previous anatomical studies, suggest the existence of two limbic circuits: anterior cingulate-striatum-lateral MD (motor) and amygdala-medial MD-orbital prefrontal cortex (short-term memory/emotion).

Acoustic Stimulation↗

Increased histidine preference during specific alteration of rhythm of environmental temperature stress in rats.

It has been reported that specific alteration of rhythm of environmental temperature (SART) stress induces various physiological changes. In this study, changes in taste preference during SART stress were investigated in rats. Rats were given free access to six amino acid solutions, saline, and water in a choice paradigm. During SART stress, daily food intake increased significantly by 50% whereas the rate of body weight gain decreased significantly to one third that observed during the prestress baseline period. In addition, consumption of histidine solution increased significantly, whereas intakes of water, monosodium glutamate, saline, glycine, arginine, lysine, and threonine were unaffected. Results suggest that a specific preference for histidine emerges during SART stress, which may be related to the stress-induced changes in the histamine turnover in the brain and peripheral tissues.

Acclimatization↗

Reciprocal IL-1 beta gene expression in medial and lateral hypothalamic areas in SART-stressed mice.

Specific alteration of rhythm of temperature (SART) stress has been found to induce thymic atrophy via activation of the hypothalamus-pituitary-adrenal (HPA) axis. We demonstrate here that SART stress induces increment of IL-1 beta mRNA levels in the medial hypothalamic area (MHA) and decrement of IL-1 beta mRNA levels in the lateral hypothalamic area (LHA). The altered levels of IL-1 beta expression in these loci return to those of non-stressed mice upon cessation of the stress. These data imply that the reciprocal wave of SART stress-induced IL-1 beta gene expression in MHA and LHA may contribute to activation of the HPA axis and the resulting immunological dysfunction.

Animals↗

Amygdala role in conditioned associative learning.

Amygdala role in emotion was reviewed in reference to recent amygdala lesion studies and neuronal responses in the rat amygdala to conditioned stimuli. Extensive lesion studies suggest that the amygdala is crucial in various kinds of motivated and emotional behavior, and related autonomic responses. These amygdala functions critically depend on learning and memory. Amygdala lesions, both before and after training of conditioned associative learning, impaired emotional expression without simple sensory-motor deficits. Pharmacological experiments indicated neurotransmission in the amygdala is mediated through NMDA and AMPA receptors. These results strongly suggest the amygdala involvement in acquiring and storing associative memory (i.e. stimulus-affect association), by which animals recognize and evaluate the biological significance of a stimulus. This information is then transferred to the brainstem executing system. In the neurophysiological experiments, there were topographic distributions of sensory-responsive neurons within the amygdala, which were well correlated to anatomical data. The responses of rat amygdala neurons changed plastically during learning. Furthermore, more sensory-responsive neurons were encountered in the amygdala of rats trained to associate the sensory stimuli with a reinforcement than in the amygdala of rats that were not trained. In trained rats, multimodal neurons that responded to conditioned and unconditioned stimuli were frequently found in the basolateral and central nuclei of the amygdala. The results suggest that basolateral and central nuclei are foci where various sensory modalities converge, and which might perform critical functions in acquiring and storing long-term associative memory to link between sensory information and affective significance.

Amygdala↗

Neuronal responsiveness to various sensory stimuli, and associative learning in the rat amygdala.

Neuronal activities were recorded from the amygdala and amygdalostriatal transition area of behaving rats during discrimination of conditioned auditory, visual, olfactory, and somatosensory stimuli associated with positive and/or negative reinforcements. Neurons were also tested with taste solution and various sensory stimuli that were not associated with reinforcement. Of the 1195 neurons tested, 475 responded to one or more sensory stimuli. Of these, 256 neurons responded exclusively to a unimodal sensory stimulus, 128 to multimodal sensory stimuli, and the remaining 91 could not be classified. Distribution of unimodal neurons was correlated with anatomical projections to the amygdala from sensory thalamus or sensory cortices. Multimodal neurons were located mainly in the basolateral and central nuclei of the amgydala. Response latencies of neurons in the basolateral nucleus were longer than those in other nuclei and neurons in the central nucleus had both short and long latencies. Neurons responsive to a given stimulus were more frequently encountered in the amygdalas of the trained rats than in those of the rats not trained to associate that stimulus with a reinforcement. Multimodal neurons that responded to conditioned and/or unconditioned stimuli used in the associative learned tasks were concentrated in the basolateral and central nuclei. The results indicate that some amygdalar neurons receive exclusive single sensory information, and the others receive information from two or more sensory inputs. Considering the long latencies and multimodal responsiveness, the basolateral and central nuclei of the amygdala might be foci where various kinds of sensory information converge. It is also suggested that the basolateral and central nuclei of the amygdala have critical roles in associative learning to relate sensory information to reinforcement or affective significance.

Acoustic Stimulation↗

Generators of somatosensory evoked potentials investigated by dipole tracing in the monkey.

Generators of somatosensory evoked potentials, elicited by electrical stimulation of the median nerve in anaesthetized monkeys (Macaca fuscata), were investigated by submitting a three-dimensional reconstructed brain model to dipole tracing, which can equate surface potential distributions to an approximate corresponding equivalent dipole. The following components of the somatosensory evoked potentials were simultaneously recorded from 21-27 epidural electrodes: P7 (the letter indicates positive or negative polarity; the number indicates the approximate latency of the peak in ms) was recorded widely from various locations on both the left and right hemispheres, P10 was recorded near the anterior side of the central sulcus contralateral to the stimulation side, N10 was recorded near the posterior side of the contralateral central sulcus, P12 was recorded on both sides of the contralateral central sulcus, and P18 was recorded posterior to the contralateral central sulcus. Current source generators (dipoles) of each component of somatosensory evoked potentials were localized by dipole tracing: a dipole for P7 was located in the thalamus contralateral to the stimulation side; a dipole for P10 and N10 in the posterior wall of the contralateral central sulcus (area 3b); a dipole for P12 in the contralateral post central gyrus (areas 1 and 2); and a dipole for P18 in the anterior wall of the contralateral intraparietal sulcus (area 5). The locations and latencies of dipoles that generated cortical components of somatosensory evoked potentials, estimated by dipole tracing, were confirmed by direct cortical surface recording from a 16-25 electrode array placed directly on the cortical surface; and multiple unit recording from the anterior and posterior parietal cortices. After excision of area 5, P18 and N18 were abolished, whereas P10, N10, and P12 were not affected. The results suggest that dipoles for somatosensory evoked potentials progressed from the thalamus to area 5 via the primary somatosensory area. This progress is consistent with the hierarchical sequence of somatosensory information processing.

Anesthesia↗