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J P Jervey

Publications and source records attributed to J P Jervey.

6 recordsLinked to original sources

Functional interactions between inferotemporal and prefrontal cortex in a cognitive task.

Monkeys were trained to perform a visual short-term memory task (delayed matching to sample). In some of the animals, cooling probes were implanted over dorsolateral prefrontal cortex, covering sulcus principalis and adjacent areas; microelectrode pedestals were implanted over inferotemporal cortex. Other animals were fitted with converse implants: cooling probes over a portion of the inferotemporal cortical convexity and microelectrode pedestals over prefrontal cortex. In the awake and behaving monkeys, bilateral cooling of either the prefrontal or the inferotemporal region (to 20 degrees C) induced, in the other region, reversible changes of spontaneous and task-related cell discharge. In the two cortices remote cooling induced augmentations and diminutions of cell reaction to the color samples which the animal had to retain for correct performance of the task. The same was true for cell discharge during the delay, the retention period which followed each sample. However, a net effect of remote cooling was, in both cortices, a diminution of color-dependent differences in the reactions and delay-discharge of some cells. Concomitantly, errors of task-performance increased. Cells that as a result of remote cortical cooling showed changes of reaction to the color samples were found more commonly in supragranular than infragranular layers. The results are interpreted as evidence of mutual influences between inferotemporal and prefrontal areas, probably mediated by corticocortical connections. The single-cell data, together with the behavioral data, suggest that those influences are functionally important for visual discrimination and short-term memory.

Action Potentials↗

Neuronal firing in the inferotemporal cortex of the monkey in a visual memory task.

The objective of this study was to elucidate the functional role of neurons in the inferotemporal cortex of the primate. Single unit activity was recorded with microelectrodes in monkeys performing a visual delayed matching-to-sample task. On each trial, the animal was exposed briefly to a color - the sample - and, after a period of delay, had to select the same color among two or four colors simultaneously presented. Thus, correct performance of the task required perception, retention, and recognition of the sample color for every trial. A large number of inferotemporal units were seen to react to the stimuli with changes of firing frequency. Many units showed color-dependent reactions, suggesting their involvement in perception and discrimination of colors. A substantial contingent of cells showed increased, sustained, and in some cases, color-dependent discharge during the delay which was not necessarily preceded or succeeded by firing changes in sample or match periods. It is proposed that those cells were engaged in temporary retention of the sample stimulus. Since most of the inferotemporal units examined showed firing changes in more than one period of a trial, they appeared to be involved in more than one of the operations required by the task. Thus, the data do not support a clear-cut topographic separation of visual functions within the inferotmeporal cortex. However, neurons that appear to participate in visual memory, either exclusively or in addition to other functions, are concentrated in the cortex of the lower banks of the superior temporal sulcus.

Animals↗

Inferotemporal neurons distinguish and retain behaviorally relevant features of visual stimuli.

Single-cell activity was recorded in the inferotemporal cortex of monkeys performing a task that requires perception and temporary retention of colored stimuli. Many cells reacted differentially to the stimuli. By changing the relevance of certain features of compound stimuli, it was found that the reactions of some cells to color depend critically on whether or not the task demands that the animal pay attention to color. A substantial number of cells showed color-dependent differences in frequency of discharge during the retention periods of the task. The temporal characteristics of differential discharge and its dissolution when memory is no longer required indicate that the cells that display it are involved in retaining visual information.

Action Potentials↗