Effect of carbachol "push--pull" perfusion in the reticular formation on alumina cream-induced focal motor seizures in cats.
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Biomedical subjects
Publications and source records attributed to R Romo.
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The present report describes the sequence of activation and deactivation of multiple unit activities (MUA) in the brain stem reticular formation and pyramidal tract, in relation to the clinical seizure and electroencephalographic and electromyographic tonic-clonic discharges induced by pentylenetetrazol (PTZ), in cats immobilized by high spinal transection ('encéphale isolé'). Threshold doses of PTZ (20 mg/kg i.v.) produced the following events: (1) Significant increase in mesencephalic and pontine MUA, anticipating 2 (+/- 1) sec the clinical and electromyographic seizures and 5 (+/- 2) sec the onset of EEG and pyramidal tract tonic-clonic discharges. (2) A further increase in mesencephalic and pontine reticular MUA and electromyogram MUA at the onset of EEG and pyramidal tract tonic-clonic discharges. (3) Significant decrease of EEG spike activity and pyramidal tract MUA to levels below the control period 16 (+/- 8) sec later, while mesencephalic and pontine MUA and electromyogram remained very high. Results suggest that (i) PTZ-induced seizures start in the brain stem reticular formation and propagate to muscles by at least two different pathways: a pyramidal and an extrapyramidal pathway; (ii) that inhibition of seizure activity may start at the cortical level.
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Monkeys and humans have similar capacities to discriminate between the frequencies of mechanical sinusoids delivered to the glabrous skin of their hands. Combined psychophysical-electrophysiological experiments in monkeys discriminating in the range of flutter provided evidence that this capacity depends upon differences in the cycle lengths in the sets of periodically entrained activity, evoked by the stimuli discriminated, in neurons of areas 3b and 1 of the (sensory) hemisphere opposite the stimulated hand. Identical experiments have now been made, in similarly trained and discriminating monkeys, in the motor cortex (area 4) of the hemisphere opposite the arm projecting selectively to one of two targets, to indicate discrimination (five hemispheres, 1137 neurons studied). We observed a selective signal of the upcoming correct discrimination in about 25% of the neurons of area 4 active in the task. The neuronal discharge occurs selectively for stimuli either lower or higher in frequency than that of the base stimulus, and commonly begins within 200-300 msec after onset of the comparison stimulus. These neuronal discharges are aperiodic, with no sign of the stimulus frequencies. EMG recording during performance of the discrimination showed that the muscles of the arm opposite the side of recording were silent during the period of stimulus presentations. Recordings during trials in which the animal made errors showed most commonly that the output of the discrimination operation was itself in error, followed by an appropriate arm projection to the wrong target. We interpret the selective response during the comparison stimulus to be a postdiscrimination signal projected transcallosally from the sensory hemisphere to the motor area of the hemisphere controlling the responding arm. We obtained no evidence that the discrimination operation is localized to any particular area, and we surmise it to occur in the dynamic activity within the distributed system linking the sensory cortex of one hemisphere and the motor cortex of the other. One-third of the neurons of the motor cortex responded to indentation of the skin of the ipsilateral hand, at trial onset. These responses varied from those closely linked to that sensory stimulus to those linked to the upcoming movement of the contralateral hand. These onset responses did not occur when similar sequences of mechanical stimuli were delivered to alert but idling monkeys.
OBJECTIVE: This article describes experiments designed to show the neural codes associated with the perception and processing of tactile information. DEVELOPMENT: The results of these experiments have shown the neural activity correlated with tactile perception. The neurones of the primary somatosensory cortex (S1) represent the physical attributes of tactile perception. We found that these representations correlated with tactile perception. By means of intracortical microstimulation we demonstrated the causal relationship between S1 activity and tactile perception. In the motor areas of the frontal lobe is to be found the connection between sensorial and motor representation whilst decisions are being taken. CONCLUSIONS: S1 generates neural representations of the somatosensory stimuli which seen to be sufficient for tactile perception. These neural representations are subsequently processed by central areas to S1 and seem useful in perception, memory and decision making.
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