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Synchronized action of synaptically coupled chaotic model neurons.

Experimental observations of the intracellular recorded electrical activity in individual neurons show that the temporal behavior is often chaotic. We discuss both our own observations on a cell from the stomatogastric central pattern generator of lobster and earlier observations in other cells. In this paper we work with models with chaotic neurons, building on models by Hindmarsh and Rose for bursting, spiking activity in neurons. The key feature of these simplified models of neurons is the presence of coupled slow and fast subsystems. We analyze the model neurons using the same tools employed in the analysis of our experimental data. We couple two model neurons both electrotonically and electrochemically in inhibitory and excitatory fashions. In each of these cases, we demonstrate that the model neurons can synchronize in phase and out of phase depending on the strength of the coupling. For normal synaptic coupling, we have a time delay between the action of one neuron and the response of the other. We also analyze how the synchronization depends on this delay. A rich spectrum of synchronized behaviors is possible for electrically coupled neurons and for inhibitory coupling between neurons. In synchronous neurons one typically sees chaotic motion of the coupled neurons. Excitatory coupling produces essentially periodic voltage trajectories, which are also synchronized. We display and discuss these synchronized behaviors using two "distance" measures of the synchronization.

Action Potentials↗

Phase coupling between different motor areas during tongue-movement imagery.

Motor imagery can be accompanied by an enhancement of brain oscillations (event-related synchronization, ERS) within specific frequency bands. To characterize the neuronal couplings involved during these prominent power changes, we have chosen a certain coupling measure that bears directly on the issue of transient cortical connections. Specifically, we applied for the first time the phase-locking value to investigate the phase coupling of sensorimotor rhythms in different motor areas during tongue-movement imagery. Most interesting, we showed that robust neuronal couplings within the alpha frequency range are established between the midcentral position and bilateral central electrode positions, overlying the supplementary motor area (SMA) and the right and left primary sensorimotor area, respectively. In contrast, no direct linkage was present between sensorimotor rhythms in both hemispheres. We suggest that the coupling results point at a separate interplay between neural networks within the SMA and lateralized networks in primary sensorimotor areas of each hemisphere during motor imagery.

Adult↗

Electrical fields directly contribute to action potential synchronization during convulsant-induced epileptiform bursts.

Synchronous field-potential bursts were induced in hippocampal slices with picrotoxin. Differential recording between intracellular and adjacent extracellular electrodes during paroxysmal depolarization shifts revealed rapid transmembrane depolarizations (TMDs), which were spike prepotentials generated by electrical field effects. These experiments demonstrate that endogenous electrical fields contribute to spike synchronization in the presence of convulsant drugs when excitatory chemical synapses are functional.

Action Potentials↗

[Integration of visual signals in the brain: mechanisms and functional significance of synchronous oscillation].

How are the functions performed by one part of the nervous system integrated with those of others? One possible way is by synchronous oscillation. We have reviewed recent advances in visual system, where synchronous oscillations have been intensively observed and investigated. This article is concentrated on discussing theoretical reasoning, experimental evidence, possible mechanisms underlying the generation and the functional significance of visual synchronous oscillations. Predictions on several prosperous areas were also outlined.

Animals↗

[The synchronization of EEG rhythms and the holographic theory of memory].

M. N. Livanov's idea about the role of synchronization of EEG rhythms in realization of brain functions and holographic theory of memory are two trends in neurophysiology of behavior which develop independently but are really tightly connected. They are unified on the basis of the data concerning the compliance of EEG rhythms and activity of neurons, on the one hand, and the results of mathematical simulation of CNS information processing, on the other. A comparison of slow background and evoked potential oscillations and activity of separate units showed close interrelations of these processes in a broad frequency range of exogenous and endogenous EEG rhythms and polyrhythmia. The role of synchronous convergence of orderly burst and tonic pulse flows in learning was studied in experiments and on a mathematical model of the nervous network. It was found out that in case of synchronous rhythmical potential oscillation and corresponding burst unit discharges in the phase of generalized activation the information fixation was possible in any nervous elements, which simultaneously received pulses from other sources. In the phase of absence of general activation the revealing of images is possible everywhere in nervous elements, which simultaneously received pulses from the other sources. In this phase it is possible to reveal the images fixed in memory in the form of spatially ordered unit pulse flows. These findings develop M. N. Livanov's ideas concerning the functional role of synchronization of slow potential oscillations and give specific evidence for basic propositions of holographic theory.

Animals↗

The mechanisms of collinear integration.

Low-contrast visual contour fragments are easier to detect when presented in the context of nearby collinear contour elements (U. Polat & D. Sagi, 1993). The spatial and temporal determinants of this collinear facilitation have been studied extensively (J. R. Cass & B. Spehar, 2005; Y. Tanaka & D. Sagi, 1998; C. B. Williams & R. F. Hess, 1998), although considerable debate surrounds the neural mechanisms underlying it. Our study examines this question using a novel stimulus, whereby the flanking "contour" elements are rotated around their own axis. By measuring contrast detection thresholds to a brief foveal target presented at various phases of flanker rotation, we find peak facilitation after flankers have rotated beyond their collinear phase. This optimal facilitative delay increases monotonically as a function of target-flanker separation, yielding estimates of cortical propagation of 0.1 m/s, a value highly consistent with the dynamics of long-range horizontal interactions observed within primary visual cortex (V1). A curious new finding is also observed: Facilitative peaks also occur when the target flash precedes flanker collinearity by 20-80 ms, a range consistent with contrast-dependent cortical onset latencies. Together, these data suggest that collinear facilitation involves two separate mechanisms, each possessing distinct dynamics: (i) slowly propagating horizontal interactions within V1 and (ii) a faster integrative mechanism, possibly driven by synchronous collinear cortical onset.

Contrast Sensitivity↗

Abrupt maturation of a spike-synchronizing mechanism in neocortex.

Synchronous activity is common in the neocortex, although its significance, mechanisms, and development are poorly understood. Previous work showed that networks of electrically coupled inhibitory interneurons called low-threshold spiking (LTS) cells can fire synchronously when stimulated by metabotropic glutamate receptors. Here we found that the coordinated inhibition emerging from an activated LTS network could induce correlated spiking patterns among neighboring excitatory cells. Synchronous activity among LTS cells was absent at postnatal day 12 (P12) but appeared abruptly over the next few days. The rapid development of the LTS-synchronizing system coincided with the maturation of the inhibitory outputs and intrinsic membrane properties of the neurons. In contrast, the incidence and magnitude of electrical synapses remained constant between P8 and P15. The developmental transformation of LTS interneurons into a synchronous, oscillatory network overlaps with the onset of active somatosensory exploration, suggesting a potential role for this synchronizing system in sensory processing.

Action Potentials↗

[An EEG study of different behavioral states of freely moving dolphins].

ECoG and EMG of neck and eye muscles of four free moving dolphins were recorded during sleep-wakefulness cycle through chronically implanted electrodes. Wakefulness is accompanied by desynchronized ECoG, and slow sleep by synchronized ECoG, including the sleep spindles and theta- and delta-waves. The standard EMG criteria do not allow the discrimination between fast sleep and wakefulness in dolphins. Behavioral observations alone do not inform about dolphin's sleep or wakefulness. The respiration of dolphins may be observed during bilateral ECoG synchronization in slow sleep without arousal. ECoG synchronization as well as desynchronization may be observed when the contralateral eye is open.

Animals↗

[The interneuronal functional connections in the sensorimotor cortex of dogs].

Multiunit activity of sensorimotor cortex was recorded from chronically implanted semi-microelectrodes in two dogs. Functional interneuronal connections between neuronal spike trains of 6-8 neurons selected from background multiunit activity were studied by the method of cross-correlation analysis. Bin widths 0.5, 1, 2, 3 and further up to 40 ms by step of 1 ms were used. The cross-interval connections were characterized by complete absence of the shared input (central symmetrical peaks) and signs of inhibitory interrelations. The temporal interrelations between selected neurons were characterized by unilateral and bilateral non-symmetrical excitatory connections--ultra-narrow peaks with short (1-10 ms), middle (10-80 ms) and long (80-2000 ms) delays. The existence of such ultra-narrow peaks contradicts "classical" conceptions on the character of cross-interval connections based on model experiments on simple nervous systems. We suppose that special mechanism of synchronization with high temporal accuracy exists in the cortex.

Action Potentials↗

Secondary generalization of seizures from a cortical penicillin focus following stimulation of the basal forebrain.

The basal forebrain has been implicated in the regulation of generalized motor convulsive activity particularly from amygdala kindling. The effect of electrical stimulation of the substantia innominata and ventral pallidal regions of the basal forebrain in rats with acute interictal penicillin foci in the frontal parietal neocortex was determined. Stimulation of this area resulted in generalized cortical EEG synchronization, an inconsistent effect on interictal spike frequency, and generalized seizures that were not prevented by atropine. The results support a role for these basal forebrain structures in the regulation of generalized seizures from a cortical focus mediated primarily through influences on thalamocortical pathways.

Action Potentials↗

Motor processing after movement execution as revealed by evoked and induced activity.

Event-related synchronization (ERS) in the beta frequency band following movement execution has shown that motor processing is not completed yet when a movement ends. It is known that induced and evoked activities reflect different aspects of cortical processing which may result in different time courses. In the current study, we analyzed topography of postimperative negative variation (PINV) in 39 healthy right-handed adolescents in an acoustic forewarned reaction time (contingent negative variation, CNV) task using a 64-electrode high-density sensor array. We dissociated different PINV components in their time course from postmovement beta ERS in order to provide fundamental knowledge about evoked and induced EEG components after movement execution as a basis for further analysis of postmovement processing. A postmovement negativity occurred from about 500 to 1200 ms after the imperative stimulus (peaking about 600 ms after a right-hand button press) at central electrodes, contralateral to the response movement side. Current source density (CSD) analysis confirmed the current sinks over motor areas [contralateral primary motor/premotor and supplementary/cingulate motor area]. The described DC component (motor PINV, mPINV) differed in time course and localization from later "classical" PINV (cPINV) which is thought to reflect contingency reappraisal. mPINV could also be distinguished topographically from a mere delayed CNV resolution. When mPINV and ERS at the same left central electrode were compared, both parameters showed different time courses. Left central mPINV rather paralleled ERS at midcentral electrodes. Therefore, we suggest that the topography of mPINV provides first hints towards an involvement of contralateral primary motor cortex in postmovement processing beyond a mere idling state as reflected by later beta ERS. mPINV could be a useful tool to investigate the role of primary motor cortex in motor-learning processes. The combined analysis of induced and evoked activities seems to be able to elucidate different aspects of cortical connectivity and motor processes following movement.

Acoustic Stimulation↗