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Biomedical subjects

I Kondákor

Publications and source records attributed to I Kondákor.

2 recordsLinked to original sources

Laminar distribution of hippocampal rhythmic slow activity (RSA) in the behaving rat: current-source density analysis, effects of urethane and atropine.

This study investigated the laminar distribution of rhythmic slow wave activity (RSA) in the dorsal hippocampus of the rat during running. Depth analyses of field EEG were performed by stepping the recording electrode in 82.5 micron increments and sampling RSA at each depth. One-dimensional current-source density (CSD) was calculated from the RSA profiles to enhance spatial resolution of current sources and sinks. Laminar analysis of power, coherence, and phase of RSA with respect to a stationary electrode in the stratum oriens of CA1 was performed with spectral methods. RSA waves in the CA1-dentate axis had power maxima at about the hippocampal fissures, hilus, outer molecular layer of the endal leaf of dentate gyrus and stratum oriens of CA1, in that order. A gradual shift of phase occurred in stratum radiatum of CA1. Large phase-shifts were found in both the endal and ectal leaves of the fascia dentata. A null zone and associated sudden phase-reversal of RSA were observed in stratum lucidum of CA3. Multiunit activity showed phase-locked modulation with RSA in the granule cell layer of the dentate gyrus and pyramidal cell layer of CA1, CA3, and subiculum. CSD analysis in the CA1-dentate axis revealed multiple source-sink pairs. The sinks and sources showed cyclic changes with RSA, and were attributed to the rhythmic, but time-shifted, activity of hippocampal afferents from the septum and entorhinal cortex. The gradual phase-shift in CA1, and the configurational changes of RSA waves with depth, are explained by the summation of extracellular currents produced by time-delayed sink-source pairs (RSA dipoles). When the cholinergic septohippocampal path was blocked by atropine a null zone in the middle of stratum radiatum of CA1 occurred and the phase-shift of RSA became steeper. Under urethane anesthesia a null zone was present in the inner stratum radiatum associated with a sudden phase-reversal of RSA. Urethane reduced the power of RSA in the hilus and decreased the firing rate of the granule cells. It is suggested that field RSA is produced by several rhythmical dipoles along the somadendritic surface of pyramidal cells and granule cells and the spatiotemporal relations of the individual dipoles determine the actually observed extracellular RSA.

Anesthesia, General↗

Event-related potential map differences depend on the prestimulus microstates.

The dependency of the landscapes of visually evoked, 47-channel, event-related potential (ERPs) on the functional microstates (momentary map landscape) just before stimulus arrival was investigated, in 12 volunteers. The prestimulus microstates were determined using the map at the last peak of Global Field Power before the stimulus. The landscapes of these maps were described by the electrode locations of the positive and negative extreme potentials, and assigned to basic classes. The two most frequently occurring map-classes were used (left anterior-right posterior, and right anterior-left posterior). ERP map series were averaged for each subject and each prestimulus microstate class. The Randomization-Monte Carlo MANOVA test was used to test the significance of the difference between the ERP map landscapes at each sample point (n = 128, 500 ms) associated with the two prestimulus microstates. At 16 samples the difference was significant at p < 0.05. The longest uninterrupted sequence (n = 9) of significant differences occurred between 164 and 195 ms, i.e. during the conventional component P200. The results demonstrate that the brain electric microstate at stimulus arrival crucially influences the active neuronal populations that contribute to the ERP. This suggests that the processing of information will differ as a function of the momentary brain microstate at information arrival.

Adult↗