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Role of the medial septum and hippocampal theta rhythm in exploration-related synaptic efficacy changes in rat fascia dentata.

Animals transferred from their home cages to a different environment exhibited an increase in exploratory behavior which was accompanied by a substantial increase in perforant path-evoked population excitatory postsynaptic potentials and decreases in both the areas and the onset latencies of population spikes. As reported previously, these changes substantially outlasted the exploratory behaviors that induced them. Electrolytic lesions of the medial septum severely attenuated the theta rhythm of the hippocampal EEG, but had no significant effect on the exploration related changes in the synaptic and postsynaptic components of the evoked response. In urethane-anesthetized animals, long trains of hippocampal theta produced by sensory stimulation failed to affect the amplitude of evoked responses. These results show that the information critical for the exploration-related alterations in dentate evoked responses does not originate in or pass through the medial septum, and that the changes are not linked to hippocampal EEG states.

Animals↗

Electric organ discharges and electric images during electrolocation.

Weakly electric fish use active electrolocation - the generation and detection of electric currents - to explore their surroundings. Although electrosensory systems include some of the most extensively understood circuits in the vertebrate central nervous system, relatively little is known quantitatively about how fish electrolocate objects. We believe a prerequisite to understanding electrolocation and its underlying neural substrates is to quantify and visualize the peripheral electrosensory information measured by the electroreceptors. We have therefore focused on reconstructing both the electric organ discharges (EODs) and the electric images resulting from nearby objects and the fish's exploratory behaviors. Here, we review results from a combination of techniques, including field measurements, numerical and semi-analytical simulations, and video imaging of behaviors. EOD maps are presented and interpreted for six gymnotiform species. They reveal diverse electric field patterns that have significant implications for both the electrosensory and electromotor systems. Our simulations generated predictions of the electric images from nearby objects as well as sequences of electric images during exploratory behaviors. These methods are leading to the identification of image features and computational algorithms that could reliably encode electrosensory information and may help guide electrophysiological experiments exploring the neural basis of electrolocation.

Animals↗

The functional anatomy of limbic status epilepticus in the rat. I. Patterns of 14C-2-deoxyglucose uptake and Fos immunocytochemistry.

Limbic status epilepticus was induced in awake, unrestrained rats by electrically stimulating the olfactory cortex or the basal amygdaloid nucleus for about 40 min. One of four stable forms of status was induced, which were distinguished on the basis of their behavioral and EEG manifestations, and their distinct patterns of 14C-2-deoxyglucose uptake and Fos-like immunoreactivity. Type I status was characterized by sporadic EEG discharges and the activation of the amygdalohippocampal area, but had no overt behavioral manifestation. Type II status involved incessant exploratory behaviors, single EEG discharges, and the additional activation of the basal amygdaloid nucleus, some of its efferent projections, and parts of the olfactory cortex. Type III status included all of these same patterns, plus the episodic development of ictal EEG activity associated with facial and forelimb clonus, and the concurrent recruitment of the entire amygdala, ventral hippocampal formation, prefrontal, insular, and olfactory cortices, and related subcortical structures. Type IV status was characterized by generalized clonus, unremitting ictal EEG discharges, and the additional activation of most of the dorsolateral neocortex, neostriatum, and thalamus. In each case of status type I, II, or III, the same anatomical structures that displayed high levels of 14C-2-deoxyglucose uptake also contained many cells that were immunoreactive for Fos, with the exception of the parataenial and mediodorsal thalamic nuclei and the substantia nigra pars reticularis. Thus, the overall patterns of 14C-2-deoxyglucose uptake and Fos-like immunoreactivity from the same animals displayed a remarkable degree of correspondence. The major results indicate that different levels of status are related to the activation of discrete epileptogenic foci, and the capacity of such foci to interact with a distinct set of interconnected anatomical structures. It is suggested that the behavioral manifestations of limbic status epilepticus may be explained by influences of limbic structures in the ventral forebrain upon lower motor elements in the brainstem and spinal cord, without the participation of the "pyramidal" motor system.

Amygdala↗

Movements of exploration intact in rats with hippocampal lesions.

Prompted by the theoretical prediction that damage to the hippocampus should abolish exploratory behavior, the present study examined exploratory movements in control rats and rats with hippocampal lesions produced with the neurotoxin N-methyl d-aspartate (NMDA). In four daily 30-min sessions, control and hippocampal rats were exposed to an open circular table under room lighting. Both control and hippocampal rats spent a majority of time near, and organized trips away from, a portion of the table (home base) near a large cue placed proximal to the table. On Day 1, control and HPC rats made equal numbers of head orientations and a comparable number of trips, featuring equal travel distance and numbers of stops. By Day 4, dwell times near the home base increased and other movements decreased in the control rats but the activity profile of Day 1 persisted in the hippocampal rats. The high degree of similarity in behavior between hippocampal and control rats on Day 1 and the persistence of this behavior in hippocampal rats on Day 4 suggests that the hippocampus is not necessary for the display of normal exploratory movements per se. The absence of habituation of exploration in hippocampal rats is discussed in relation to contemporary theories of hippocampal function.

Animals↗

Mesolimbicocortical dopamine terminal fields are necessary for normal locomotor and investigatory exploration in rats.

Rats explore a novel open field or novel object less after denervation of mesolimbicocortical dopaminergic terminal fields produced by bilateral 6-hydroxydopamine (6-OHDA) microinjections into the anterolateral hypothalamus after pretreatment with desmethylimipramine (DMI). These behavioral deficits were correlated with complete or nearly complete loss of fluorescent dopaminergic (DA) terminals in the nucleus accumbens, olfactory tubercle, dorsal bed nucleus of the stria terminalis, lateral septal nucleus and the deep layers of the frontal and piriform cortices. There were also fewer A10, medial A9, and A8 DA fluorescent cells after the 6-OHDA-DMI injections; this suggests retrograde degeneration of the cells of origin of the mesolimbicocortical DA system. When the DMI pretreatment was omitted, identical bilateral 6-OHDA microinjections also produced severe loss of norepinephrine (NE) fibers in the neocortex, hippocampus, lateral hypothalamus and ventral bed nucleus of the stria terminalis. The addition of this noradrenergic damage did not change the exploratory deficits observed after mesolimbicocortical DA denervation alone. Systemic administration of the DA agonist apomorphine, but not the adrenergic agonist clonidine, to the 6-OHDA-DMI rats repaired the deficits in exploration of a novel open field or novel object. The increased locomotion in a novel open field and investigation of a novel object produced by apomorphine in 6-OHDA-DMI rats were blocked by the DA antagonist, pimozide. This is evidence that apomorphine restored exploratory responses by stimulating dopaminergic receptors. The exploratory responses produced by apomorphine were also blocked by testing rats in a familiar open field or with a familiar novel object. This is evidence that apomorphine facilitates exploratory responding to novel stimuli by 6-OHDA-DMI rats, but that the same dose of apomorphine does not increase activity when 6-OHDA-DMI rats are confronted by familiar stimuli. We conclude: (1) that mesolimbicocortical dopaminergic terminals are necessary for normal exploratory behavior in rats; and (2) that DA released by these terminals may facilitate optimal sensorimotor integration in these terminal fields during spontaneous exploratory behavior.

Animals↗

Axon-sparing lesions of the medial nucleus of the amygdala decrease affiliative behaviors in the prairie vole (Microtus ochrogaster): behavioral and anatomical specificity.

The neural basis of affiliative behavior was examined in the prairie vole, a rodent that exhibits high levels of social contact and paternal behavior. In the first study, the axon-sparing excitotoxin N-methyl-D,L-aspartic acid (NMA) produced lesions in the basolateral nucleus of the amygdala or the corticomedial amygdala. Males with corticomedial lesions showed significantly less contact with a familiar adult female and a pup when compared with males with lesions of the basolateral nucleus or controls. This behavioral change was not associated with changes in exploratory behavior, motor function, performance in an olfactory task, fearfulness, physical well-being, or body temperature. In a second study, NMA lesions restricted to the medial nucleus also decreased paternal behavior. Neurons in the medial nucleus of the amygdala appear to be essential for the normal expression of paternal care in this species.

Amygdala↗

Human ethology: eating, security, and curiosity.

This study replicated an earlier one on selection of seats and looking up in a college eating environment. Both studies showed that solitary individuals chose wall tables more often than center tables. Opposite findings held here for looking up, with almost twice as much occurring at wall tables whether by solitary individuals or groups. The difference between these studies may reflect environmental variables. Sitting at wall tables may enhance security and promote looking-up as an indication of exploratory behavior or alternatively and more simply an exploratory need may determine the selection of wall tables.

Arousal↗

Preliminary report of a simple animal behavior model for the anxiolytic effects of benzodiazepines.

A simple system is described to analyze the possibility that increased exploratory behavior is an index for the anxiolytic effects of benzodiazepines in laboratory rodents. Mice were allowed free run in a two-chambered arena, where two-thirds of the area was illuminated and one-third was darkened. The two chambers were separated by a black partition equipped with photocells across the opening, and the entire cage rested on an Animex activity monitor. Transitions across the partition between the light and dark chambers, and total Animex locomotor activity, were increased by clonazepam and chlordiazepoxide, in dose-dependent ranges consistent with previously reported behavior models. The increased exploratory activity with benzodiazepines does not appear to be a non-specific increase in general motor activity, as locomotion in clonazepam and chlordiazepoxide treated mice placed in a bare, undifferentiated cage was not significantly different from vehicle treated mice.

Animals↗

Attunement, calibration, and exploration in fast haptic perceptual learning.

Often, a relatively small number of trials suffices to enhance one's task-specific perceptual capability. In the present experiment, fast perceptual learning was investigated with respect to the perception of the heights or widths of wielded nonvisible rectangular objects. In that haptic perceptual task, inertial differences (mass and moments of inertia) are the basis for perceived size differences. The authors hypothesized that rapid improvement might occur in attunement (attending to the task-relevant inertial variable), calibration (scaling spatial extent to the task-relevant inertial variable), and exploratory behavior (wielding so as to differentiate the task-relevant inertial variable). Twenty-four students performed 25 trials with a set of practice objects; those trials were followed and preceded by 18 trials with a set of test objects. Practice, with knowledge of results (KR), improved both attunement, as measured by regression of perceived spatial extent on the inertial variables, and calibration, as measured by constant and variable error. Of the preceding measures, only variable error improved with practice in the absence of KR. In both KR conditions, however, exploratory behavior decreased in duration and complexity, as measured by recurrence quantification analysis. The present results suggest that the mechanisms involved in fast perceptual learning are more varied and complex than are those encompassed by current accounts.

Adult↗

Exploration, emotionality, and hippocampal mossy fibers in nonaggressive AB/Gat and congenic highly aggressive mice.

AB/Gat mice and congenic mice bred for high aggressiveness (CS/ag) were tested for exploratory behavior in novel situations and anxiety-related behavior, using an open-field test and the elevated plus-maze test. Subsequently, the size of hippocampal mossy fiber terminal fields was evaluated. Considerably higher exploratory activity was found in nonaggressive mice, whereas aggressive mice exhibited more anxiety-related behavior. Larger intra- and infrapyramidal mossy fiber terminal fields (IIP-MF) and a larger hilus were found in the highly aggressive strain. Within the nonaggressive AB/Gat strain, larger IIP-MF were correlated with higher exploratory behavior and lower anxiety in the plus-maze test. Within the aggressive strain, no individual correlations between hippocampal morphometry and behavior were found. The results corroborate the "ecotype hypothesis," which suggests that mice of subpopulations with highly aggressive males tend to display reduced exploratory behavior. The findings support the view that genetic factors involved in aggressive behavior also affect hippocampal connectivity. However, our results do not support the hypothesis that a higher level of aggressiveness is necessarily related to smaller IIP-MF.

Aggression↗

The behavioral teratogenicity of alcohol is not affected by pretreatment with aspirin.

Prenatal alcohol exposure is associated with a variety of developmental abnormalities, including neuroanatomical, physical, and behavioral features. Several mechanisms for alcohol's teratogenic effects have been proposed. This study addresses the role of prostaglandins in the abnormal development that often occurs after maternal alcohol consumption. On gestation days 8 to 18, pregnant Sprague-Dawley rats were prenatally treated with 6 g/kg alcohol following pretreatment with 150 mg/kg aspirin. Behavioral testing of offspring included measures of open-field activity, exploratory behavior, passive avoidance, active avoidance, and acoustic startle response. In most cases, pretreatment with aspirin did not affect performance in alcohol-exposed or control rats.

Animals↗

Progressive augmentation of locomotor activity in mice by long-term treatment with thyrotropin releasing hormone.

The effect of daily administration of thyrotropin releasing hormone (TRH) on exploratory behavior (ambulation) was investigated in mice. TRH administered subcutaneously (2.5 and 10 mg/kg) exerted a biphasic action on locomotion, that is, an increase followed by a subsequent decrease. This TRH-induced hyperlocomotion was inhibited by a small dose of apomorphine (0.25 mg/kg, s.c.), a dopamine receptor agonist, but was conversely increased by a small dose of haloperidol (0.02 mg/kg, s.c.). Following administration of TRH (2.5 mg/kg, s.c.) for 21 successive days, the stimulatory effect on locomotion progressively increased whereas the inhibitory effect decreased, the hyperlocomotion continuing at a later period. At this time, the stimulatory effect of apomorphine (1 mg/kg, s.c.) on locomotion tended to decrease but that of methamphetamine (0.5 mg/kg, s.c.), a catecholamine releaser, was potentiated. The present results suggest that the long-term, daily administration of TRH enhances exploratory behavior of mice, presumably by increasing the synthesis and release of dopamine.

Animals↗

Effects of age on some behavioral characteristics of novel auditory stimuli in the rat.

Low intensity novel auditory stimuli have two behavioral characteristics. First, such stimuli elicit exploratory behavior directed at the sound source. Second, novel stimuli gain control of responding in a discriminative task more rapidly than familiar stimuli. Experiments were carried out to investigate these two characteristics of novel stimuli. In the first experiment 3, 12 and 30 month old rats were given three sessions, 24 hours apart, of exposure to an initially novel low intensity series of noise pulses; the number of exploratory responses of the sounding speaker per session was counted. In the second experiment, 12 and 30 month old rats were trained in a sound location discrimination in which the stimuli were made familiar prior to discrimination training. Age had no effect on the amount, habituation and retention of habituation of exploration of the sounding speaker. In the second experiment, the 12 month and 30 month old animals acquired the discrimination at the same rate; again no age effect was found.

Aging↗

Contribution of single-unit spike waveform changes to temperature-induced alterations in hippocampal population spikes.

Brain temperature changes accompany exploratory behavior and profoundly affect field potential amplitudes recorded in hippocampus. The waveform alterations in fascia dentata include a reduction in population spike area, which might be explained by fewer granule cells firing in response to a given stimulus or by an alteration in the size or shape of the individual action potentials. This study was designed to assess these alternate possibilities. In experiment 1, changes in the shape and firing rates of single cells recorded in the fascia dentata of awake rats were compared with changes in the population spike before and after a bout of activity. Single-unit amplitudes were significantly reduced following exploration, and there was a small (< 3%) change in unit spike-width. These changes, however, were insufficient to account, in a linear fashion, for the entire decline in the population spike. In experiment 2, radiant heat was used to manipulate brain temperature in anesthetized rats. As in the first experiment, the magnitude of change in the extracellular units was much smaller than the change in population spike amplitude. The spontaneous firing rates of the cells were also modified by brain temperature changes. In experiment 3, the polysynaptic, contralateral commissural response (which covaries with changes in the ipsilateral population spike at a fixed temperature) was measured as a function of either exploratory behavior or radiant heat. The relationship between the ipsilateral population spike and corresponding polysynaptic commissural response was altered following exploration and passive warming in a manner consistent with a reduction in net granule cell output, reduced transmission efficacy through the polysynaptic circuit, or a combination of these. Taken together these data suggest that at least two factors contribute to temperature-dependent changes in the perforant path-evoked population spikes recorded in the fascia dentata: changes in the size of individual action potentials and alterations in discharge of action potentials in response to a given stimulus.

Action Potentials↗

Similarities and differences in the innervation of mystacial vibrissal follicle-sinus complexes in the rat and cat: a confocal microscopic study.

Our confocal three-dimensional analyses revealed substantial differences in the innervation to vibrissal follicle-sinus complexes (FSCs) in the rat and cat. This is the first study using anti-protein gene product 9.5 (PGP9.5) immunolabeling and confocal microscopy on thick sections to examine systematically the terminal arborizations of the various FSC endings and to compare them between two species, the rat and the cat, that have similar-appearing FSCs but different exploratory behaviors, such as existence or absence of whisking. At least eight distinct endings were clearly discriminated three dimensionally in this study: 1) Merkel endings at the rete ridge collar, 2) circumferentially oriented lanceolate endings, 3) Merkel endings at the level of the ring sinus, 4) longitudinally oriented lanceolate endings, 5) club-like ringwulst endings, 6) reticular endings, 7) spiny endings, and 8) encapsulated endings. Of particular contrast, each nerve fiber that innervates Merkel cells at the level of the ring sinus in the rat usually terminates as a single, relatively small cluster of endings, whereas in the cat they terminate en passant as several large clusters of endings. Also, individual arbors of reticular endings in the rat ramify parallel to the vibrissae and distribute over wide, overlapping territories, whereas those in the cat ramify perpendicular and terminate in tightly circumscribed territories. Otherwise, the inner conical body of rat FSCs contains en passant, circumferentially oriented lanceolate endings that are lacking in the cat, whereas the cavernous sinus of the cat has en passant corpuscular endings that are lacking in the rat. Surprisingly, the one type of innervation that is the most similar in both species is a major set of simple, club-like endings, located at the attachment of the ringwulst, that had not previously been recognized as a morphologically unique type of innervation. Although the basic structure of the FSCs is similar in the rat and cat, the numerous differences in innervation suggest that these species would have different tactile capabilities and perceptions possibly related to their different vibrissa-related exploratory behaviors.

Animals↗

Anatomy of the soul as reflected in the cerebral hemispheres: neural circuits underlying voluntary control of basic motivated behaviors.

Understanding the principles of cerebral hemisphere neural network organization is essential for understanding the biological foundations of cognition and affect-thinking and feeling. A tripartite model of cerebral structure-function organization is reviewed, with attention focused on a behavior control system differentiation that mediates voluntary influences on three fundamental classes of goal-oriented behavior common to all animals. The model postulates just three cerebral divisions, one cortical and two nuclear (lateral or striatal, and medial or pallidal), that together generate a triple descending projection to the brainstem/cord motor system. This minimal circuit element is topographically organized and regionally differentiated, with the map of cortical areas serving as a basic starting point. Virtually all of the cerebral hemisphere projects on the upper brainstem behavior control column, atop the motor system hierarchy. The latter's rostral segment helps control ingestive (eating and drinking), defensive (fight or flight), and reproductive (sexual and parental) motivated behaviors, whereas its caudal segment helps control foraging or exploratory behavior to obtain or avoid specific goal objects associated with all classes of motivated behavior.

Animals↗

Behavioral effects of peripheral interleukin-1 administration in adult CD-1 mice: specific inhibition of the offensive components of intermale agonistic behavior.

Peripheral administration of interleukin-1beta (IL-1beta) in rodents reduces exploratory behavior in a novel environment while decreasing social investigation of a juvenile conspecific. In this study we wanted to test the effects of peripherally administered IL-1beta on another aspect of the mouse social repertoire, namely intraspecific fighting towards an adult male intruder. In the first experiment, sickness behavior induced by IL-1beta (1 microg/mouse) in adult CD-1 mice was assessed by direct observation of behavioral changes following placement into a novel environment. Three hours after injection, subjects were individually introduced for 20 min in a cage with clean sawdust and a number of behavioral items recorded. Blood samples were collected at the end of the testing session. Body temperature was measured right before, 1 h and 3.5 h following injection. In IL-1beta treated mice, exploration (assessed by measuring duration and frequency of Wall Rearing and Rearing behaviors) was nearly totally suppressed, while duration and frequency of behaviors such as Grooming, Bar Holding, and Digging were also markedly reduced. Administration of IL-1beta significantly elevated CORT secretion above basal levels and, as previously reported for mice, induced hypothermia (about 2 degrees C). In the second experiment, we assessed mice receiving IL-1beta (0.25; 0.5 or 1 microg/mouse or saline solution) in a social context. Three hours after injection, subjects were placed into a neutral cage for 20 min with a non-injected adult male conspecific and aggressive behavior scored. Overall, IL-1beta administration affected the social repertoire of treated mice in a dose-dependent fashion. Specifically, agonistic components of aggressive behavior were nearly totally suppressed, while the defensive elements, such as Upright Defensive posture, Upright Submissive posture, Crouching, or Flee were not affected by IL-1beta. Overall these data support the notion that sickness behavior induced by IL-1beta administration represents an organized behavioral strategy and is not an aspecific response to an illness-type of condition.

Agonistic Behavior↗

Community differences in conceptions of deviant behavior: an exploratory study of attitudes toward alcohol-related help sources.

This exploratory study examined the conceptions shared by members of geographically and socioeconomically defined communities toward help sources for alcohol problems. The larger hypothesis was that the social-psychological factors underlying the initial identification of deviance affects expectancies of and reactions to treatment facilities. Low socioeconomic status (SES) respondents were aware of fewer help sources or acquisition strategies than higher SES communities, and were more oriented toward community-based nonprofessional help sources. Low SES attitudes toward help sources were also less complex, and showed a substantial pattern of disfranchisement from traditional help sources. In contrast, higher SES respondents had a more comprehensive and positive conception of help sources, particularly higher status professional agencies, and felt familiar local help sources to be stigmatizing. Attitude factors found to be salient to these differences were respondents' familiarity and expected social embarrassment, and the extent to which a help source dealt with serious problems and exerted control over clients.

Adolescent↗