Sequential involvements of macaque perirhinal cortex and hippocampus in semantic-like memory including spatial component
Yang, C.; Naya, Y.
Show abstract
The standard consolidation theory suggests the critical involvement of the hippocampus (HPC) in acquiring new knowledge, while the perirhinal cortex (PRC) is involved in its long-term storage (i.e., semantic memory). Converging studies have shown exclusive involvement of the PRC in item processing, while the HPC relates the item with a spatial context. These two lines of literature raise the following question; which brain region is involved in semantic recall that includes the spatial components? To solve this question, we applied an item-location associative (ILA) paradigm in a single-unit study using non-human primates. We trained two macaques to associate four visual item pairs with four locations on a background map before the recording sessions. In each trial, one visual item and the map image at a tilt (-90 to 90 degrees) were sequentially presented as the item-cue and the context-cue, respectively. The macaques chose the item-cue location relative to the context-cue by positioning their gaze. Neurons in both PRC and HPC but not area TE exhibited item-cue responses which signaled retrieval of item-location associative memory. This retrieval signal first appeared in the PRC before appearing in the HPC. We examined whether neural representations of the retrieved locations were related to the external space where the macaques viewed. A positive representation similarity was found in the HPC but not PRC, suggesting a contribution of the HPC to relate the retrieved location with a first-person perspective of the subjects. These results suggest their distinct but complementary contributions to semantic recall including spatial components.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
Similar papers in this journal
Similar papers in this journal
- Position- and scale-invariant object-centered spatial selectivity in monkey frontoparietal cortex dynamically adapts to task demand 95%
- Distractibility and impulsivity neural states are distinct from attention states and modulate the implementation of attention 95%
- Phase of Firing Coding of Learning Variables across Prefrontal Cortex, Anterior Cingulate Cortex and Striatum during Feature Learning 94%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.