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Structural basis of cortical synchronization. I. Three types of interhemispheric coupling.

1. Single-unit and multiunit activities were recorded at the area 17-18 border of each cortical hemisphere in paralyzed cats anesthetized with nitrous oxide supplemented with halothane. Cross-correlation histograms (CCHs) were computed between 86 pairs of single units and 99 pairs of multiunit activities. Visually evoked peaks in the CCHs were removed by subtracting the shift predictor. 2. Three types of CCH peaks were observed: T peaks with narrow widths (4-28 ms), C peaks with intermediate widths (30-100 ms), and H peaks with large widths (100-1,000 ms). Oscillatory coupling was observed rarely. This tripartite distribution of CCH peaks is similar to that reported in an earlier study on the temporal coupling between areas 17 and 18. Different types of peaks occurred in isolation or in combination. Combination of different peak types was more often observed in multiunit recordings. 3. CCH peaks of all types were usually centered, meaning that units in opposite hemispheres tend to synchronize their discharges. 4. T peaks were observed almost exclusively for units with overlapping receptive fields and preferentially for units with similar optimal orientations. No dependence on receptive field position or optimal orientation was observed for the encounter rate of C and H peaks. 5. A new method, called the peristimulus CCH, was developed to study the time course of the temporal coupling. This showed that H peaks can occur during visual stimulation and that their time course follows that of the visual responses of the coupled neurons. 6. Using one single bar or two simultaneously presented light bars as stimuli, we studied the effect of visual stimulation on the strength of H coupling. This showed that H coupling observed under stimulation with a single moving light bar can be completely abolished, with little change in visual responses, when the stimulus is changed to two noncoherently moving bars. This was related to a strong decrease of the H peaks in the autocorrelograms. 7. These results demonstrate that T, C, and H peaks constitute, together with high-frequency oscillations, universal forms of temporal coupling between neurons located in different cortical areas. The following paper reports on the effects of cortical lesions on the encounter rate and strength of these different types of coupling.

Anesthesia↗

Synchronized cortical potentials and wavelet packets: a potential mechanism for perceptual binding and conveying information.

Temporal synchronization in neuronal assemblies has been linked to the functional roles of perceptual binding, sensory-motor integration, attention, and information coding. We report new evidence for a common underlying mechanism that uses specific temporal patterns of synchronized neuronal activity as a basis for conveying information. The temporal patterns of stimulus-related synchronized neuronal discharges are structured to closely resemble specific members of the Symlet wavelet packet family employed in a computational framework. Together, these results suggest that temporal patterns of synchronized activity may act as a parallel, distributed code for information through a mechanism computationally equivalent to wavelet packet analysis.

Animals↗

Synaptic mechanisms of thiopental-induced alterations in synchronized cortical activity.

BACKGROUND: Anesthetic depth after barbiturate administration has been correlated with distinct electroencephalogram (EEG) patterns. The current study used a rat neocortical brain slice micro-EEG preparation to investigate synaptic mechanisms underlying thiopental-induced transitions in synchronized neuronal activity. METHODS: Concentration-dependent cellular actions of thiopental were investigated in brain slices using specific pharmacologic probes, whole cell patch clamps, and extracellular field recordings. Theta-Like micro-EEG oscillations were elicited in neocortical slices by mimicking subcortical cholinergic and gamma-aminobutyric acid (GABA) afferent input with carbachol (100 microM), a cholinergic agonist, and bicuculline (10 microM) a GABAA antagonist. RESULTS: In the presence of 20 microM thiopental, micro-EEG slowing from theta (7.3 +/- 0.9 Hz, mean +/- SD, n = 19) to delta frequencies (2.5 +/- 0.5 Hz, n = 11) was associated with a threefold prolongation of inhibitory currents. Burst suppression activity occurred at 50 microM thiopental, and appeared to result from direct activation of GABAA-gated chloride currents, observed with voltage clamp recordings, and mimicked with a direct acting GABAA agonist, muscimol (1 microM). Isoelectric activity occurred at 100 microM thiopental, and likely resulted from reduced glutamatergic transmission, evidenced by depressed excitatory postsynaptic potentials. Glutamatergic excitation was required for burst suppression activity, because glutamate receptor antagonists blocked thiopental-induced bursts; forcing a transition to isoelectric activity. CONCLUSIONS: Thiopental produced a continuum of EEG-like states in brain slices similar to those observed in vivo. The progression of thiopental-induced effects appear to have resulted from specific cellular actions that were recruited in a concentration-dependent manner. Progressive enhancement of synaptic inhibition followed by depression of excitatory transmission led to micro-EEG frequency slowing, burst suppression, and isoelectric activity.

Anesthetics, Intravenous↗

Cortical synchronized activity evoked by thalamocortical stimulation in vitro.

Epileptiform activity was studied in the thalamocortical (THC) slice preparation. Inhibition was gradually attenuated with increasing doses of bicuculline methiodide (BMI). We compared the ability of thalamic and intracortical (INC) stimulation to evoke epileptiform activity. Synchronized population activity was identified by its all-or-none appearance at a threshold stimulus intensity, by a variable latency and by horizontal propagation to large distances. For most slices (20 out of 24) we could establish a threshold dose of BMI (0.4-0.7 microM) under which THC-evoked population events had epileptiform properties, while INC-evoked ones did not. Increasing the BMI dose by 0.2 microM resulted in the appearance of epileptiform field potentials when stimulating intracortically. It is concluded that the tendency of the neocortex to generate synchronized population activity is higher when it is activated through the THC pathway.

Afferent Pathways↗

Synchronous cortical oscillatory activity during motor action.

Oscillations of the motor cortex interact with similar activity of the spinal motoneuron pool in the 15-30 Hertz frequency range. Recent observations have demonstrated how this interaction affects the firing of single corticospinal neurons. The interaction, reflected as corticomuscular coherence, occurs for both distal and proximal muscles and it constitutes one connection in a larger web of oscillatory interactions, including several other motor areas in the cortex, thalamus, and cerebellum. New results cast light on the possible functional significance of this interaction. The rhythmic interaction may reveal interesting information in several motor disorders, including essential tremor, Parkinson's disease, myoclonus epilepsy, and mirror movements.

Animals↗

[Distribution of evoked responses to electrical stimulation of the cortex at different levels of spatial synchronization of cortical potentials].

In computer controlled experiments it was shown that the averaged cortical responses to direct electrical stimulation, recorded in rabbit's intact cortex or in a neuronally isolated cortical slab, depend on the level of EEG spatial synchronization in the prestimulation period. Latencies of the evoked potentials in both structures were smaller, and their amplitudes -- higher, if stimulation coincided with periods of the maximal synchronization of the background biopotentials, as compared to the same parameters of responses, obtained during the minimal synchronization of potentials. It is assumed that synchronization of the cortical potentials may be provided to a certain degree by processes of intracortical nature and that the increase in the cortical synchronization proper is accompanied by an improvement of the conditions in which the excitation is conducted over the cortex.

Animals↗