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1.
Neuronal septal activity during hippocampal seizure discharges generation in acute model of epilepsy 总被引:1,自引:0,他引:1
The activity of the neurones of the medial septal region (MS) and the hippocampal EEG in control and during the appearance of seizure discharges provoked by electrical stimulation of the perforant path were investigated in the awake rabbit. During afterdischarge generation in the hippocampus the dense neuronal bursts separated by periods of inhibition were recorded in the MS. In one group of neurons the bursts of spikes coincided with the discharges in the hippocampus, in other group-occured during inhibitory periods. When the afterdischarge stopped, in the septal neurons with theta activity the disruption of theta pattern was recorded, which have been correlated with the occurrence of low amplitude high frequency (20-25 Hz) waves in the hippocampal EEG. As a rule, the neuronal activivity of the MS recovered much quickly than EEG of the hippocampus; in some cases the increasing of the theta regularity was observed. The definite accordance of the electrical activity of the hippocampus and MS during seizure discharges suggests that the septohippocampal system operate as integral nervous circuit in these conditions. Diverse in the temporal interrelations between the discharges of MS neurones and ictal discharges in the hippocampus in the different cells possible indicate that various groups of the septal nervous elements have different participation in the seizure development. Appearance of the high frequency bursts in the MS is a possible "precursor" of the seizure onsets. 相似文献
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T. N. Oniani Sh. D. Mandzhavidze L. B. Gvetadze P. N. Varazashvili 《Neurophysiology》1989,21(6):596-602
Dynamics of neuronal activity in the cingulate gyrus (CG) was investigated during the sleep-wake cycle (SWC) of free-ranging cats. The highest activity rate was found to occur in 65.4% of neurons during active emotional consciousness (EC) and the so-called emotional phase of paradoxical sleep (PS), while firing rate decreased during passive consciousness (PC) and slow-wave sleep (SS). Peak firing rate was observed during SS in 15% of neurons, while divisions of activity between stages of the SWC remained the same in 19.6%. In addition, discharge patterns in 75.2% of neurons changed consistently in step with phase shifts. More particularly, neurons fired during EC and PS with single action potentials with a more or less even time distribution, whereas a burst-phase activity pattern occurred in the course of SS. Firing rate declined (in 42.6% of units) or remained unchanged (in 50.4%) in the majority of CG neurons (even amongst those manifesting highest activity during EC and PS) as episodes of isolated EEG arousal developed (whether in the context of SS or as PS wore off). This would indicate that the CG actually contributes to shaping the behavioral state of consciousness. The CG, therefore, as one of the higher divisions of the limbic system, must play a major part in controlling the basic mechanisms of the SWC, as well as emotionally motivated processes evolving in the cycle.I. S. Beritashvili Institute of Physiology, Academy of Sciences of the Georgian SSR, Tbilisi. Translated from Neirofiziologiya, Vol. 21, No. 6, pp. 832–840, November–December, 1989. 相似文献
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D. P. Artemenko 《Neurophysiology》1972,4(5):409-415
Temporal relations between hippocampal unit activity and phases of the theta-waves were studied in unanesthetized rabbits immobilized with tubocurarine. When spontaneous thetarhythm potentials were recorded layer by layer from the dorsal hippocampus, a change in their polarity was observed 0.15–0.2 mm deeper than the pyramidal layer (i.e., in the radial layer). Most hippocampal neurons fired synchronously with the extracellular thetawaves. The numerous pyramidal cells, in which the spontaneous activity was inhibited during stimulation of the contralateral hippocampus and sciatic nerve and a hyperpolarization potential developed, were excited mainly during the positive phase of the theta-waves. Intracellular recording showed that their membrane potential decreased during the positive phase and increased during the negative phase. The less numerous basket cells, whose response to stimulation of the contralateral hippocampus consisted of a short high-frequency volley of spikes, and whose response to sciatic nerve stimulation was marked by a prolonged increase of frequency of the spontaneous discharges, were activated mainly during the negative phase of the theta-waves. It is concluded from these findings that inhibitory mechanisms play a role in the theta-activity of the hippocampus. It is postulated that the extracellular theta-waves are integral EPSPs of the basal dendrites and of the proximal segments of the apical dendrites, and that IPSPs of the pyramidal cell bodies play the principal role in the generation of the intracellular theta-rhythm.A. A. Bogomolets Institute of Physiology, Academy of Sciences of the Ukrainian SSR, Kiev. Translated from Neirofiziologiya, Vol. 4, No. 5, pp. 531–539, September–October, 1972. 相似文献
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The pattern of neuronal spike activity in the amygdaloid structure was studied in the sleep-wake cycle during experiments on unrestrained rats. It was shown that most neurons of the dorsomedial portion of the amygdala display greater spike activity during active wakefulness (80%) and paradoxical sleep (66.7%) than during slow-wave sleep. Most neurons of the basolateral amygdaloid region discharged at high frequency during active wakefulness (84.6%) and during paradoxial sleep (38.4%) compared with the frequency of firing during slow-wave sleep. Some neurons were found whose rate of discharge rose during slow-wave sleep in comparison with a similar period of paradoxical sleep (38.4%) and of active wakefulness (7.7%). Our findings show how the pattern of neuronal activity in the dosromedial and basolateral regions of the amygdaloid structure differs at various stages of the sleep-wake cycle. It is postulated that this structure serves mainly to regulate emotionally motivated processes rather than helping to govern the basic mechanisms of the sleep-wake cycle.Beritashvili Institute of Physiology, Academy of Sciences of the Georgian SSR, Tbilisi. Translated from Neirofiziologiya, Vol. 17, No. 6, pp. 747–756, November–December, 1985. 相似文献
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Monoamine oxidase (MAO) inhibitors disturb the structure of the sleep-wake cycle and its ultradian rhythms by extending total slow-wave sleep, completely suppressing paradoxical sleep, and reducing total waking period considerably. Once the synchrony induced by MAO inhibitors has stopped, a rebound effect of increased waking occurs preceding and during partial restoral of paradoxical sleep. This fact is viewed as an indication of a waking requirement accumulating during the aforementioned partial deprivation under the effects of MAO inhibitors. Especially marked effects are exerted by MAO inhibitors on paradoxical sleep, in which they produce long-term suppression of tonic and phasic components. It is suggested that inhibition of paradoxical sleep is brought about by selective impairment of functional state of its neurophysiological trigger mechanisms.I. S. Beritashvili Institute of Physiology, Academy of Sciences of the Georgian SSR, Tbilisi. Translated from Neirofiziologiya, Vol. 20, No. 4, July–August, 1988, pp. 463–470. 相似文献
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ABSTRACT: The amount and timing of sleep and sleep architecture (sleep stages) are determined by several factors, important among which are the environment, circadian rhythms and time awake. Separating the roles played by these factors requires specific protocols, including the constant routine and altered sleep-wake schedules. Results from such protocols have led to the discovery of the factors that determine the amounts and distribution of slow wave and rapid eye movement sleep as well as to the development of models to determine the amount and timing of sleep. One successful model postulates two processes. The first is process S, which is due to sleep pressure (and increases with time awake) and is attributed to a 'sleep homeostat'. Process S reverses during slow wave sleep (when it is called process S'). The second is process C, which shows a daily rhythm that is parallel to the rhythm of core temperature. Processes S and C combine approximately additively to determine the times of sleep onset and waking. The model has proved useful in describing normal sleep in adults. Current work aims to identify the detailed nature of processes S and C. The model can also be applied to circumstances when the sleep-wake cycle is different from the norm in some way. These circumstances include: those who are poor sleepers or short sleepers; the role an individual's chronotype (a measure of how the timing of the individual's preferred sleep-wake cycle compares with the average for a population); and changes in the sleep-wake cycle with age, particularly in adolescence and aging, since individuals tend to prefer to go to sleep later during adolescence and earlier in old age. In all circumstances, the evidence that sleep times and architecture are altered and the possible causes of these changes (including altered S, S' and C processes) are examined. 相似文献
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The dynamics of neuronal activity in the posterior hypothalamus in different phases of the sleep-wake cycle were investigated during experiments on free-ranging cats. The highest frequency discharges were found to occur in 89.3% of neurons belonging to this region during the stages of active wakefulness and emotionally influenced paradoxical sleep. These neurons become less active during restful wakefulness and the unemotional stage of paradoxical sleep; this reduced activity can be most clearly observed in the context of slow-wave sleep. It was found that 7.1% of test neurons discharged at the highest rate during the stage of active wakefulness. They did not achieve an activity level characteristic of active wakefulness during the period of paradoxical sleep, although activity level was higher than during other states. Only 3.6% of neurons followed the opposite pattern, with discharges succeeding more frequently in slow-wave sleep and activity reduced to an equal degree during wakefulness and paradoxical sleep. The neurophysiological mechanisms governing the sleep-wake cycle and how the posterior hypothalamus contributes to these mechanisms are discussed.I. S. Beritashvili Institute of Physiology, Academy of Sciences of Georgian SSR, Tbilisi. Translated from Neirofiziologiya, Vol. 20, No. 2, pp. 160–167, March–April, 1988. 相似文献
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《Biophysical journal》2022,121(4):644-657
In this work, we highlight an electrophysiological feature often observed in recordings from mouse CA1 pyramidal cells that has so far been ignored by experimentalists and modelers. It consists of a large and dynamic increase in the depolarization baseline (i.e., the minimum value of the membrane potential between successive action potentials during a sustained input) in response to strong somatic current injections. Such an increase can directly affect neurotransmitter release properties and, more generally, the efficacy of synaptic transmission. However, it cannot be explained by any currently available conductance-based computational model. Here we present a model addressing this issue, demonstrating that experimental recordings can be reproduced by assuming that an input current modifies, in a time-dependent manner, the electrical and permeability properties of the neuron membrane by shifting the ionic reversal potentials and channel kinetics. For this reason, we propose that any detailed model of ion channel kinetics for neurons exhibiting this characteristic should be adapted to correctly represent the response and the synaptic integration process during strong and sustained inputs. 相似文献
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In this study, our previous results on the important relation between EEG and EPs were extended by experiments with chronically implanted and freely moving cats, which had electrodes at the acoustical cortex, inferior colliculus and reticular formation. During the experiments the frequency stabilization upon sound stimulation was shown in the frequency domain by comparison of the pre-stimulus power spectra and post-stimulus amplitude frequency characteristics. Comparative frequency domain analysis of about 75 EEG-EPograms (sample of spontaneous activities just prior to stimulation and single evoked potentials following the stimulation), which were recorded from all the brain nuclei mentioned above and from each of the 11 cats, was performed as follows: 1) Power spectra of the EEG-records prior to stimulus were evaluated. 2) Instantaneous frequency characteristics of single EPs were obtained by the Fourier transform. 3) Distribution of the amplitude maxima of the EP-frequency characteristics and the distribution of the EEG-spectral peaks were compared by plotting two types of histograms containing relevant spectral peaks before and after the stimulation. In a frequency range between 1–1000 Hz, the frequency distribution of the EP records from RF and IC were accumulated in narrow discrete frequency channels, whereas, the distribution of the spectral peaks of the EEG depicted frequency spread in broad channels. The frequency stabilization of the EP records from GEA, in the alpha frequency range, was also observed. This effect was described by a factor which we called as the Frequency Stabilization Factor. The results presented in this study showed that the frequency stabilization of the brain's electrical activity induced by sensory stimulation displayed a fluctuation leading to frequency stabilization factors between 0.95 and 5.00. The frequency stabilization and relevant power enhancement upon stimulation strongly support our contention that evoked potential results from the frequency stabilization of the spontaneous activity, triggered by stimulation.Supported by Grant No. TAG-345 of the Scientific and Technical Research Council of Turkey 相似文献
11.
Changes in spontaneous unit activity in the primary visual cortex during the sleep-waking cycle were studied in chronic experiments on dark-adapted cats. In the cell population studied activity in states of wakefulness and of paradoxical sleep did not differ significantly either in mean discharge frequency or in pattern. Activity of most cells in a state of slow sleep differed significantly from that in states of wakefulness and paradoxical sleep by the development of a "burst-pause" pattern in the unit discharges.A. N. Severtsov Institute of Evolutionary Morphology and Ecology of Animals, Moscow. Translated from Neirofiziologiya, Vol. 8, No. 4, pp. 343–349, July–August, 1976. 相似文献
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Masliukov PM Nozdrachev AD 《Rossi?skii fiziologicheski? zhurnal imeni I.M. Sechenova / Rossi?skaia akademiia nauk》2006,92(3):324-329
Electrical activity of the stellate ganglion was studied in newborn, 10-, 20-, 30-day-old, two- and six-month-old kittens using the spectral analysis. The development of sympathetic activity patterns was different during ontogenesis. The amplitude of discharges increased from the period of birth until the second month of kittens' life. In newborn and 10-day-old kittens, synchronous discharges of postganglionic fibers were represented by slow and low frequency impulses with frequencies of breathing and heart rate. ppears in 20-day-old kittens. The formation of the sympathetic discharge patterns ends at the second month of animals life. 相似文献
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T. K. Kipriyan 《Neurophysiology》1974,6(3):203-207
The effect of the corticosteroid hormone hydrocortisone on electrical activity in the lumbosacral portion of the spinal cord was studied in acute experiments on cats anesthetized with urethane and chloralose and immobilized with succinylcholine. The amplitude of mono- and polysynaptic discharges arising in the ventral roots in response to stimulation of various afferents of the animal's hind limb was increased by a statistically significant degree after intravenous injection of the hormone. The potentiating action of the hormone was strongest and most stable with respect to early and late postsynaptic potentials of the spinal cord. The dorsal cord potentials were not significantly changed by hydrocortisone. Spontaneous unit activity in the intermediate nucleus of the spinal cord rose sharply after administration of hydrocortisone. Before the action of the hormone the mean frequency of spontaneous discharges of 46 neurons was 7.91/sec, rising to 20/sec after the injection. The number of neurons with a high spontaneous firing rate also was increased. Prolonged extracellular recording of the spontaneous activity of the same neuron before and after administration of hydrocortisone also revealed a marked increase in the frequency of its discharges. The results are evidence of the activating effect of hydrocortisone on spinal interneuronal activity. 相似文献
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S L Buldakova A A Shandra G N Kryzhanovski? S A Saakian V G Skrebitski? 《Biulleten' eksperimental'no? biologii i meditsiny》1985,99(3):272-274
It has been shown in experiments on hippocampal slices of (CBA X C57BL/6)F1 mice with corazol kindling that the threshold of the appearance of the induced seizure discharge (ISD) in the area CA1 was decreased by stimulation of Schaffer collaterals. Diazepam provoked an increase in seizure susceptibility to corazol and penicillin and reduction of the ISD. The data suggest that alterations in neuronal reactivity, which follow kindling, can be found in an individual hippocampal segment, thus making it possible to investigate this phenomenon at the synaptic and molecular levels. 相似文献
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