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E M Schmidt

Publications and source records attributed to E M Schmidt.

16 recordsLinked to original sources

The effects of cooling supplementary motor area and midline cerebral cortex on neuronal responses in area 4 of monkeys.

It has been postulated that the supplementary motor area (SMA) is involved in the initiation of movement and in gating of afferent input to motor cortex (MI) from peripheral receptors. We studied the responses of 119 neurons in MI to imposed disturbances of wrist-movement performance generated by the introduction of torque pulses before, during and after localized cooling of the SMA in conscious monkeys. The cooling of SMA did not prevent monkeys from making these simple movements. Eighty-two neurons responded to the wrist perturbations. Only 7 of these neurons changed their responsiveness with unilateral or bilateral cooling of SMA. From the data we have obtained on MI neuronal firing patterns, the SMA does not appear to modulate the long-latency trans-cortical stretch reflex during the periods in a task that we have investigated. Nor does it prevent animals from performing these simple movements to a visual target.

Animals

Intracellular recording from pulsating cerebral cortex.

An instrument has been developed for recording intracellulary from cortical neurons in an exposed pulsating brain. The electrode moves with the brain pulsations maintaining the electrode within the impaled cell. Stable recordings have been obtained for up to 20 min.

Animals

Reexamination of the force relationship of cortical cell discharge patterns with conditioned wrist movements.

Single unit recordings were obtained from 103 precentral cortical cells whose activity was related to an alternate wrist flexion-extension task in monkeys. Although the task was carried out under different loads only a weak relationship between cortical cell firing rates and static force levels was observed for force in one direction. A large change in firing rate occurred, however, when direction of force shifted as a result of a change in the predominant activity between extensor and flexor muscles. The firing patterns of the observed cortical cells suggest that the motor cortex is involved in specifying the muscles to be activated for a given movement and not the level of force to be produced by these muscles. During the dynamic phase of the movement little change in cortical cell firing pattern was observed for large changes in the rate of change of force. Motor cortex cell firing patterns appear to be unrelated to the large values of rate of change of force seen in this experiment.

Animals

An instrument for stable single cell recording from pulsating human cerebral cortex.

An instrument has been developed for positioning microelectrodes near neurons in the exposed pulsating cerebral cortex of man or animals. The electrode moves with the cortex and maintains a fixed relationship with the desired neuron. Stable extracellular single cell recordings have been obtained for 17.5 min from an exposed human brain that pulsated 1.5 mm at the surface.

Cerebral Cortex