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Self-avoidance dominates the selection of hippocampal replay
Biorxiv : the Preprint Server for Biology
|July 29, 2024
Summary
The brain avoids replaying recent paths during immobility, favoring future trajectories. Medial entorhinal cortex input later enables replay of past experiences, revealing how neural sequences are generated.
Area of Science:
- Neuroscience
- Computational Neuroscience
Background:
- The brain generates spontaneous neural activity sequences, including hippocampal replay, without external input.
- Hippocampal replay sequences during immobility represent past experiences or future predictions, but their generation mechanism is unclear.
Purpose of the Study:
- To investigate the principles governing the selection and temporal organization of hippocampal replay sequences.
- To elucidate the role of cortical input in shaping hippocampal replay dynamics.
Main Methods:
- Recording from large ensembles of hippocampal place cells in freely behaving rats.
- Utilizing optogenetic manipulation of cortical input to alter neural activity.
- Employing a symmetry-breaking attractor model to simulate sequence generation.
Main Results:
- Hippocampal replay strongly avoids recently traversed paths, prioritizing future trajectories immediately after movement cessation.
- Replay sequences exhibit self-avoidance on short timescales, differing from the avoidance of past behavioral trajectories.
- A later temporal window (seconds into stopping) shows dominance of past trajectory replay.
- Optogenetic perturbations confirmed that medial entorhinal cortex input is crucial for the later replay of past experiences.
Conclusions:
- Hippocampal replay selection is governed by a self-avoidance principle, with temporal dynamics influenced by movement cessation.
- A modified attractor model, incorporating medial entorhinal cortex input, accurately predicts the observed temporal organization of replay.
- Medial entorhinal cortex plays a critical role in maintaining a memory trace that biases hippocampal replay, providing insight into sequence generation.
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