Multiplexed code of navigation variables in the anterior limbic system
Laurens, J.; Abrego, A.; Cham, H.; Popeney, B.; Yu, Y.; Rotem, N.; Aarse, J.; Dickman, J. D.; Angelaki, D. E.
Show abstract
The brains navigation system integrates multimodal cues to create a sense of position and orientation. Here we used a multimodal model to systematically assess how neurons in the anterior thalamic nuclei, retrosplenial cortex and anterior hippocampus of mice, as well as in the cingulum fiber bundle and the white matter regions surrounding the hippocampus, encode an array of navigational variables when animals forage in a circular arena. In addition to coding head direction, we found that some thalamic cells encode the animals allocentric position, similar to place cells. We also found that a large fraction of retrosplenial neurons, as well as some hippocampal neurons, encode the egocentric position of the arenas boundary. We compared the multimodal model to traditional methods of head direction tuning and place field analysis, and found that the latter were inapplicable to multimodal regions such as the anterior thalamus and retrosplenial cortex. Our results draw a new picture of the signals carried and outputted by the anterior thalamus and retrosplenial cortex, offer new insights on navigational variables represented in the hippocampus and its vicinity, and emphasize the importance of using multimodal models to investigate neural coding throughout the navigation system.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Interneuron Specific Gamma Synchronization Indexes Cue Uncertainty and Prediction Errors in Lateral Prefrontal and Anterior Cingulate Cortex 97%
- Representation of Visual Landmarks in Retrosplenial Cortex 96%
- Tonotopic and multisensory organization of the mouse dorsal inferior colliculus revealed by two-photon imaging 96%
Similar papers in this journal
- Grid-cell modules remain coordinated when neural activity is dissociated from external sensory cues 97%
- Direct Cortical Inputs to Hippocampal Area CA1 Transmit Complementary Signals for Goal-directed Navigation 96%
- Distinct feedforward and feedback pathways for cell-type specific attention effects 96%
Similar papers in this journal
- Place cell map genesis via competitive learning and conjunctive coding in the dentate gyrus 97%
- Cortical Reactivation of Non-Spatial and Spatial Memory Representations Coordinate with Hippocampus to Form a Memory Dialogue 97%
- Dynamic corticothalamic modulation of the somatosensory thalamocortical circuit during wakefulness 96%
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.