Activation of the hippocampus and dentate gyrus by working-memory: a 2- deoxyglucose study of behaving rhesus monkeys
Open Access
- 1 December 1988
- journal article
- research article
- Published by Society for Neuroscience in Journal of Neuroscience
- Vol. 8 (12) , 4693-4706
- https://doi.org/10.1523/jneurosci.08-12-04693.1988
Abstract
The 2-deoxyglucose method was used to examine metabolic activity in the hippocampus, dentate gyrus, and amygdala of rhesus monkeys performing working-memory and control tasks. A working-memory group was tested on 1 of 3 tasks requiring trial-by-trial updating of information: delayed spatial response, delayed spatial alternation, or delayed object alternation. A control group was tested either on an associative memory problem, visual pattern discrimination, or a sensory-motor task that did not have an explicit mnemonic component. Local cerebral glucose utilization (LCGU) in specific layers of the dentate gyrus and the CA1 and CA3 sectors of the hippocampus, as well as in 7 distinct nuclei of the amygdala, was measured and compared across groups. Metabolic rate in specific layers of the dentate gyrus and the CA3 and CA1 fields of the hippocampus was enhanced in the working-memory compared with the control group: LCGU was between 18 and 24% higher in the granule cell and molecular layers of the dentate gyrus and in the molecular and radiatum layers of CA1 and CA3 in the hippocampus. In contrast, no significant group differences in LCGU were found for any of the 7 amygdaloid nuclei examined: the lateral, lateral basal, medial basal, accessory basal, cortical, central, and medial nuclei. These results are consistent with previous evidence showing that lesions of the hippocampus affect memory selectively, producing deficits on some memory problems while sparing others. Our findings further suggest that working-memory may be a common denominator among those tasks that are sensitive to hippocampal damage in monkeys. The contribution of the amygdala to performance on memory tasks, on the other hand, appears to be independent of the specific type of memory process that is engaged.This publication has 39 references indexed in Scilit:
- Contributions of Hippocampus and Striatum to Memory-Guided Behavior Depend on Past ExperienceJournal of Neuroscience, 2016
- Circuitry of Primate Prefrontal Cortex and Regulation of Behavior by Representational MemoryPublished by American Geophysical Union (AGU) ,1987
- The Hippocampal Formation of the Primate BrainPublished by Springer Nature ,1987
- Significance of delay in the performance of monkeys with medial temporal lobe resectionsExperimental Brain Research, 1967
- Discrimination behavior after amygdalectomy in monkeys: Visual and somesthetic learning and perceptual capacity.Journal of Comparative and Physiological Psychology, 1965
- Effects of lesions of the medial forebrain on alternation behavior of rhesus monkeysExperimental Neurology, 1962
- LOSS OF RECENT MEMORY AFTER BILATERAL HIPPOCAMPAL LESIONSJournal of Neurology, Neurosurgery & Psychiatry, 1957
- Analysis of the effects of frontal lesions in monkeys. III. Object alternation.Journal of Comparative and Physiological Psychology, 1956
- Visual discrimination performance following partial ablations of the temporal lobe: I. Ventral vs. lateral.Journal of Comparative and Physiological Psychology, 1954
- Studies of the vertebrate telencephalon. II. The nuclear pattern of the anterior olfactory nucleus, tuberculum olfactorium and the amygdaloid complex in adult manJournal of Comparative Neurology, 1941