Sequential development of task representation from hippocampus to prefrontal cortex supports goal-directed spatial navigation
Lim, H.-Y.; Park, S.; Lee, I.
Show abstract
Successful goal-directed navigation requires the coordination between the hippocampus and medial prefrontal cortex. However, it is not fully confirmed that the medial prefrontal cortex learns its spatial code from the hippocampus. To test this, we examined spatial representations of the intermediate hippocampus and medial prefrontal cortex while rats learned a spatial navigation task. Rats performed a goal-directed spatial navigation task in 2D VR to find an unmarked goal zone, and we discovered robust directional tuning of single neurons in both regions. Neural manifold analysis further confirmed population-level directional tuning in both regions, with manifolds having ring-like geometry. We found that this ring-like structure evolved after learning, in a way that the hippocampal-prefrontal manifolds converged to a shared geometry. Furthermore, this evolution of ring-like structure was preceded by the hippocampus at the trial level. It was further verified that the evolution of the ring-like structure is linked to phase locking to the hippocampal theta rhythm, particularly in the prefrontal manifolds. Our findings provide compelling evidence that spatial representations of the hippocampal-prefrontal network become aligned after learning, and also highlight the information flow from the hippocampus to the medial prefrontal cortex during this geometry synchronization.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- New information triggers prospective codes to adapt for flexible navigation 97%
- Primacy of vision shapes behavioral strategies and neural substrates of spatial navigation in the hippocampus of the common marmoset 97%
- A synaptic novelty signal to switch hippocampal attractor networks from generalization to discrimination 97%
Similar papers in this journal
- Stable sequential dynamics in prefrontal cortex represents subjective estimation of time 97%
- Dynamic organization of cerebellar climbing fiber response and synchrony in multiple functional modules reduces dimensions for reinforcement learning 97%
- Parahippocampal neurons encode task-relevant information for goal-directed navigation 97%
Similar papers in this journal
"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.