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Influence of stimulation of the medial hypothalamus on the interaction of neurons of the rabbit neocortex.

The interaction of neurons of the visual and sensory motor areas of the neocortex of the rabbit before and after stimulation of some medial nuclei of the hypothalamus was investigated by plotting cross- and autocorrelation histograms. Stimulation through bipolar electrodes using bursts of biphasic pulses at a frequency of 100 Hz, current strength 50-200 microA, led to the appearance in freely behaving rabbits of the reaction of avoidance of the place of stimulation. Following stimulation, as compared with resting wakefulness, the number of pairs of neurons functioning in correlation increased to 45%; at the same time, discharges of neurons of the sensory motor area ran ahead of discharges of visual neurons in the pairs up to 120 msec; the periodicity of the coupled discharges was mainly in the theta frequency range. A conclusion regarding the reflection of defense motivation in certain indices of the interaction of the cortical cells in the presence of a tonic conditioned reflex is reached on the basis of a comparison of the interaction of neurons following stimulation of the medial hypothalamus and the midbrain reticular formation, in the intersignal periods during the development of a defense conditioned reflex as well.

Animals↗

Cholinergic synapses of the associative temporal area of the neocortex in the realization of cognitive functions.

The activity of choline acetyltransferase in the subsynaptic fractions of light and heavy synaptosomes of the associative temporal areas of the neocortex of cats with varying capacities for the formation of preverbal concepts was investigated. With respect to the majority of the subfractions, differences were detected between animals with normal and decreased intellect. Some theoretical conclusions were drawn relative to the origin of the individual subfractions; the role of cholinergic synapses of the area in question in the realization of the function of generalization and abstraction is discussed.

Acetylcholine↗

Time organization of frontal-motor cortex interneuron interactions in the cat neocortex in conditions of different levels of food motivation.

Studies were carried out in conscious cats with recording of multicellular activity in moderate hunger and after 24-h food deprivation. Cross-correlation analysis was used to assess statistical interneuron interactions between closely-located neurons in the frontal and sensorimotor regions of the neocortex (local networks), and between the cells of these regions (distributed networks). One-day food deprivation increased the number of interactions formed within both local and distributed neuron networks. Increases in intercortical connections between the frontal and motor regions was seen at all time intervals studied (0-100 msec), though the most significant changes occurred at time intervals of up to 30 msec.

Action Potentials↗

Dynamics of high-frequency (up to 200 Hz) components of brain electrical activity during learning reflect the functional mosaicism of the neocortex.

This study was undertaken with the aim of identifying frequency bands with correlated changes in the spectral power amplitudes of brain electrical activity, including high-frequency components (the 1-200 Hz band) in four dogs, using one-dimensional analysis. Factor and cluster analysis of the spectral densities of various parts of the cortex and the olfactory bulb were carried out. The ratios of factors in different parts of the brain, both in terms of the proportions of the total dispersity and in terms of weightings, provided data on regional and individual differences in electrical activity. During learning (development of a motor habit consisting of pressing a feeder pedal), the factor organization of electrical activity became more, complex, particularly in the high-frequency part of the spectrum (40-170 Hz). The changes consisted of the appearance of narrower frequency sub-bands, each of which was present at high weighting (0.7-0.9) for one of the factors. The use of high-frequency components allowed functional mosaicism of the neocortex to be detected.

Animals↗

The pattern of callosal connections in posterior neocortex of congenitally anophthalmic rats.

In an effort to assess the innate capacity of the central visual system to specify corticocortical connectivity in the absence of retinal afferents, we examined the tangential distribution of callosal cells and terminations in posterior neocortex of congenitally anophthalmic rats. Although our results indicate that the callosal pattern is clearly anomalous in these rats, all features of the normal visual callosal pattern are recognizable in mutant rats, indicating that central visual pathways can generate many aspects of normal interhemispheric connectivity in the absence of input from the periphery. On the other hand, the presence of anomalies in the pattern indicates that the eyes are necessary to fine-tune the distribution of callosal connections at some developmental stage. Moreover, the fact that abnormalities in the callosal pattern of mutant rats are the same as those previously described in rats enucleated at birth suggests that the eyes begin to exert their influence on callosal development after birth.

Agenesis of Corpus Callosum↗

Regulation of gap junction coupling in the developing neocortex.

In the developing mammalian, neocortex gap junctions represent a transient, metabolic, and electrical communication system. These gap junctions may play a crucial role during the formation and refinement of neocortical synaptic circuitries. This article focuses on two major points. First, the influence of gap junctions on electrotonic cell properties will be considered. Both the time-course and the amplitude of synaptic potentials depend, inter alia, on the integration capabilities of the postsynaptic neurons. These capabilities are, to a considerable extent, determined by the electrotonic characteristics of the postsynaptic cell. As a consequence, the efficacy of chemical synaptic inputs may be crucially affected by the presence of gap junctions. The second major topic is the regulation of gap junctional communication by neurotransmitters via second messenger pathways. The monoaminergic neuromodulators dopamine, noradrenaline, and serotonin reduce gap junction coupling via activation of two different intracellular signaling cascades--the cAMP/protein kinase A pathway and the IP3/Ca2+/protein kinase C pathway, respectively. In addition, gap junctional communication seems to be modulated by the nitric oxide (NO)/cGMP system. Since NO production can be stimulated by glutamate-induced calcium influx, the NO/cGMP-dependent modulation of gap junctions might represent a functional link between developing glutamatergic synaptic transmission and the gap junctional network. Thus, it might be of particular importance in view of a role of gap junctions during the process of circuit formation.

Animals↗

N-methyl-D-aspartate enhancement of phasic responses in primate neocortex.

In area 17 of the awake macaque, disinhibition by blockade of GABA(A) receptors results in a marked elevation in neuronal excitability, with a particular focus in the supragranular laminae. We examined the possibility that the excitatory supragranular response is N-methyl-D-aspartate (NMDA)-mediated. Laminar activity profiles consisting of flash-evoked field potential, current source density (CSD) and multiunit activity (MUA) measures were obtained during striate cortex penetrations using multicontact electrodes that incorporated single or double microinjection cannulae. Profiles were recorded before and at successive time points after bicuculline induction of disinhibition. Both the noncompetitive NMDA antagonist MK-801 and the competitive antagonist APV reversed bicuculline effects, producing a normal laminar activity profile. NMDA-mediated enhancement of excitatory responses in the supragranular laminae of neocortex is believed to play a role in normal signal processing, as well as in epileptic manifestations.

Animals↗

Local changes in GTP-binding protein immunoreactivities in human epileptogenic neocortex.

The relative levels of guanine nucleotide-binding protein alpha-subunits Gi1alpha, Gi2alpha, Gi3alpha, Go(alpha), Gs(alpha), and Gx/z(alpha) were measured in neocortex removed at surgery from patients with intractable temporal lobe epilepsy. Immunoreactivity was quantified using specific polyclonal antisera against the Galpha-subunits according to the Laurell "rocket" immunoelectrophoresis technique. We compared the G protein contents of spiking (active) and nonspiking (nonactive) cortical regions, based on intraoperative electrocorticography, within the same and different patients. There were no clear trends for lower or higher levels of G-protein subtypes to be found in the samples of protein extracts from nonspiking regions as compared to spiking regions. However, comparison of paired samples of spiking and nonspiking cortex within the same patient demonstrated that levels of certain G-protein subtypes were either increased or decreased in all patients. This indicates that cortical regions with enhanced neuronal activity may produce microzonal alterations in the levels of G proteins. Moreover, our results suggest that high levels of Gi1alpha and low levels of the other G-protein subtypes appear to be associated with a greater susceptibility to maintaining spiking activity.

Adult↗

Total nerve cell number in neocortex in chronic schizophrenics and controls estimated using optical disectors.

The total number of neurons was estimated in eight brains from chronic schizophrenic men and compared with 16 gender- and age-matched controls. The average total neocortical nerve cell number was 22.12.10(9) in schizophrenics and 22.06.10(9) in controls. The estimate of total cell numbers can not demonstrate more subtle neuronal losses of specific cell types or cell loss in specific regions, but the result does not indicate that a major cell loss in the neocortex of schizophrenics is part of the disease. The sampling scheme was based on a uniform sampling design, the counting was performed using new stereological principles and the majority of the cerebral cortex was left intact providing the possibility for resampling and further analysis.

Adult↗

Magnocellular nuclei of the basal forebrain project to neocortex, brain stem, and olfactory bulb. Review of some functional correlates.

Horseradish peroxidase was injected into the neocortex of squirrel monkeys, rats, tree shrews and one opossum, in the brain stem of one squirrel monkey and rats, and in the olfactory bulb, the corpus vitreum or the vascular system of rats. Following the cortical, brain stem and bulbar injections labeled cells were found (predominatly ipsilaterally) in the magnocellular nuclei of the basal forebrain: nucleus of the diagonal band, the magnocellular preoptic nucleus and nucleus basalis. These nuclei may, therefore, be classified together hodologically as well as cytologically and histochemically. The number of labeled cells was proportional to the size of the injected region. It is uncertain whether the same cells project to all target regions. Large labeled cells were found scattered among pallidal and entopeduncular neurons in rats with cortical or brain stem injections. These neurons may be the equivalent to the nucleus basalis in other species.

Animals↗

Effect of auditory neocortex ablation on identification of click rates in cats.

Six experimental and 3 unoperated cats were trained with a go, no-go shock avoidance procedure to discriminate increases from decreases in the rate of presentation of all auditory cortex between the suprasylvian sulcus and rhinal fissure while 3 cats had bilateral auditory cortex lesions plus ablation of the cortex of the anterior lateral and anterior and middle suprasylvian gyri. A sixth 'naive' experimental cat received the present tests only after recovery from a bilateral auditory cortex ablation. After bilateral lesions, 5 of the experimental cats unexpectedly made no errors on no-go trials during retraining. This contrasts with their preoperative performance, as well as the performance of the 3 unoperated and the 'naive' operated cat, in which training was required for the successful discrimination of the two types of trials. This suggests that the neocortex may be more critical for mediating active 'go' responses to auditory stimuli than in preserving a memory for the difference between go and no-go stimuli. Further testing revealed that the thresholds of the operated cats did not differ from normal cats. All cats discriminated rates of 4/sec versus 6/sec clicks both with and without a neutral 5/sec background at levels significantly above chance.

Acoustic Stimulation↗

Efferent projections of the insular and temporal neocortex of the cat.

Anterograde degeneration resulting from small lesions placed in either the insular or temporal cortex were traced with the Fink-Heimer reduced silver procedure. In neocortical regions ipsilateral to the lesion axonal degeneration was present in auditory subdivisions AI, AII, Ep, I, T, in the second somatosensory area (SII), in the anterior and middle suprasylvian gyrus, in the posteromedial suprasylvian and posterior lateral gyri, in the posterior splenial gyrus, in the anterior two-thirds of the cingulate gyrus and in the orbitofrontal regions. With respect to interhemispheric connections, evidence was obtained for a dual pattern of projection. In addition to significant amounts of axonal and terminal degeneration in the corresponding insular or temporal fields, axonal degeneration was also present in posterior AII. In the thalamus degeneration was found in the medial dorsal, suprageniculate, and lateral posterior-pulvinar nuclei. In the posterior nuclear group (Po) and the principal division of the medial geniculate (GMp) evidence was obtained for a topographic pattern of projection; significantly more degeneration occurred in caudal Po following insular lesions whereas with temporal lesions more degeneration occurred in caudal GMp. Degeneration was also found in the dorsal cortex of the ipsilateral inferior colliculus, bilaterally in the deep layers of the superior colliculus and the periventricular central gray region, ipsilaterally in the ventromedial aspects of the head and body of the caudate nucleus, and in the lateral and central nuclei of the amygdala. These findings are discussed in terms of their significance for a possible role for the insular and temporal neocortex (I-T) in both multimodal sensory discrimination and sensory-visceral integrative functions.

Animals↗

Anatomic localization of topically applied [14C]penicillin during experimental focal epilepsy in cat neocortex.

14C-labeled penicillin was topically applied to the suprasylvian gyri of adult cats in order to study the distribution of the convulsant agent at the onset of focal epileptogenesis. Using radioassay and autoradiographic techniques, a steep gradient of penicillin was found. At the time interictal EEG spike discharges appeared, 95% of the labeled drug was in the uppermost cortical layers (laminae I-III). Analysis of the concentration profiles obtained by scintillation counting showed that penetration of penicillin into brain occurs primarily by passive diffusion. An apparent diffusion coefficient for penicillin in neocortex of 1.5 sq. mm/h was calculated using modifications of standard diffusion equations. It is apparent that with a rapidly acting topical convulsant such as penicillin, the dimensions of the neuronal pool actually in contact with the drug will change significantly over time. The changing boundaries of the epileptic neuronal aggregate must be taken into account when interpreting observations made within and around such experimentally produced epileptic foci.

Animals↗

Orientation detectors in the primary somatosensory neocortex of the raccoon.

An analysis of response properties of single neurons in the forepaw region of the primary somatosensory neocortex (SI) of the raccoon was undertaken to gain a better understanding of the neural bases of tactile form discrimination. In the course of this investigation a new type of feature detector neuron which responded preferentially to tactile stimulus orientation was discovered. Within a sample of 110 neurons responding to light touch, two categories of cells were noted in terms of the type of stimulation best able to excite them. One category (linear units) was preferentially responsive to indentations of the skin using a narrow elongated stimulus probe applied in a particular orientation. The other category (round field units) gave a maximum response to stimulation with a round stimulus probe applied anywhere within a roughly circular receptive field. The response pattern of some SI neurons to a maintained indentation of the skin consisted of early and late excitatory responses, separated by a depression in responding. The second excitatory response appeared to be more influenced by variations in stimulus parameters than was the first.

Action Potentials↗

Characterization of electrophysiological properties of intracellularly recorded neurons in the neocortex of awake cats: a comparison of the response to injected current in spike overshoot and undershoot neurons.

Intracellular recordings were obtained from 212 neurons of the coronal pericruciate cortex of 7 awake, untrained cats. Glass microelectrodes, filled with K+ citrate alone or K+ citrate with either cyclic GMP or 5'-GMP were used for recording and for injecting steady depolarizing and hyperpolarizing currents intracellularly. The effects of rectangular linearly rising (ramp) current pulses were also studied. Results were compared in spike overshoot* versus undershoot recordings. Spike overshoot recordings had action potentials (APs) larger than associated baseline shifts on penetration; undershoot recordings had APs smaller than associated baseline shifts on penetration. Undershoot recordings are more commonly encountered in mammalian neocortex than are overshoot recordings. (1) Except for sizes and slopes of APs and other effects consistent with the penetration of passive dendritic cables remote from regions of active spike initiation or propagation, no differences in response to current injection or in other electrophysiological properties were found between overshoot and undershoot recordings. (2) Injection of depolarizing currents produced de-reases in the amplitudes of APs, decreased rates of rise and fall of APs and increased frequencies of AP discharge. Injection of hyperpolarizing current produced slowing or cessation of AP discharge with little or only slight increases in AP amplitude when the resting potential was greater than 47 mV. (3) An effectively linear relationship was found between changes in AP size and the magnitude of weak injection depolarizing currents. This relationship provides a basis for measuring changes in cortical neuronal input resistance by the differential spike height method. (4) Most neurons showed little or no accommodative response to the injection of linearly rising, depolarizing currents. Simple or ceiling threshold-latency curves rather than minimal gradient curves were obtained in 83% of the cells in which ramp currents were injected. (5) Modal values of resting potentials between 47 and 53 mV, without increased rates of spontaneous discharge, indicate that most cells have a critical firing threshold near that reported for somatodendritic (SD) rather than initial segment (IS) generated spikes. The evidence suggests that undershoot recordings primarily reflect penetrations of passive dendritic regions rather than functional modification of neurocellular properties as a consequence of impalement.

Animals↗

The bilaminar and banded distribution of the callosal terminals in the posterior neocortex of the rat.

After callosal sectioning, the callosal connections of the posterior neocortex of the rat cerebral hemisphere were demonstrated using the Fink-Heimer technique. Serial frozen sections of the whole brains were cut in transverse, horizontal, and tangential planes. In tissue sections, degenerating terminals were concentrated in two distinct laminae within the depth of the cortex. In addition the terminals had a patchy distribution. The degeneration was marked on projection drawings of serially arranged sections, and subsequent reconstruction showed the terminal degeneration to be distributed in bands. Five dorsoventrally oriented bands of terminals were present in areas 39, 41 and 36 collectively, and a rostrocaudal band in area 20. In area 17 terminations were apparently absent except at its borders with areas 18, 18a and 7. The degenerating callosal terminals within these areas produced a circumferential band around area 17. The findings are discussed with respect to the significance of these patterns of corticocortical connections.

Afferent Pathways↗

Acetylcholinesterase-containing neurons in cat pallidal complex; morphological characteristics and projection towards the neocortex.

The cat globus pallidus (GP) was found to contain both small and large cells that stain lightly and intensely for acetylcholinesterase (AChE), respectively. The small GP cells are similar to entopeduncular (EN) cells and it is proposed that both should be considered as 'typical' pallidal neurons. In contrast, large GP cells are similar to intensely stained AChE cells present in the substantia innominata (SI) and the putamen (PUT). Furthermore, HRP injection into the neocortex was found to label numerous large AChE cells in GP and a lesser number of similar neurons in PUT and SI. No HRP labeling was observed in the smaller cells of EN, GP and PUT. These findings suggest that the magnocellular AChE neurons in feline basal ganglia may be part of a single population of 'limbic' elements.

Acetylcholinesterase↗

Monoaminergic afferents to the neocortex: a developmental histofluorescence study in normal and Reeler mouse embryos.

The patterns of distribution of monoaminergic (MA) afferents during early histogenesis of the neocortex of normal and Reeler mice are studied by histofluorescence microscopy. Fluorescing fibers appear rostrally in the cortex of both genotypes on the 14th embryonic day (E14), which is within 24 h of the development of the cortical plate. They are distributed to all regions of the cortex by the time of birth. Although the patterns of intracortical deployment differ in the two genotypes, the fibers appear to have homologous target structures. These are: (1) the polymorphic cells of the subplate in the depths of the normal and in the superplate near the surface of the mutant cortex; and (2) the zones of consolidation of apical dendrites of pyramidal cells: the external plexiform zone of normal and a series of intracortical plexiform planes in the mutant cortex. By contrast, the axons of this system do not branch significantly among the compactly ordered somata of pyramidal cells within the cortical plate of either genotype.

Afferent Pathways↗