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Entorhinal velocity signals reflect environmental geometry
Robert G K Munn1, Caitlin S Mallory2, Kiah Hardcastle2
1Department of Neurobiology, Stanford University School of Medicine, Stanford, CA, USA. munnr@stanford.edu.
Nature Neuroscience
|January 15, 2020
Summary
Speed cells in the brain’s entorhinal cortex adjust their firing patterns when the environment changes size or shape. This indicates flexibility in how the brain encodes self-motion across different spatial contexts.
Area of Science:
- Neuroscience
- Spatial Navigation
- Computational Neuroscience
Background:
- The entorhinal cortex is crucial for self-location representation, housing grid cells and velocity signals.
- Environmental geometry influences grid cell firing, but the adaptability of velocity signals across environments is unclear.
Purpose of the Study:
- To investigate whether entorhinal cortex velocity signals, including speed and head direction cells, adapt to changes in environmental size and shape.
- To explore the coordination between different entorhinal cell types during environmental transformations.
Main Methods:
- Recording neural activity from entorhinal cortex neurons in mice exposed to environments of varying size and shape.
- Utilizing a knockout mouse model to dissociate the coordinated responses of grid, speed, and head direction cells.
Main Results:
- Speed cells demonstrated rescaling of their firing rate in response to altered environmental dimensions.
- Head direction cells exhibited experience-dependent reorganization, aligning with environmental axes.
- Grid and speed cells showed coordinated responses to environmental changes, while head direction cells did not.
Conclusions:
- Entorhinal cortex cell types exhibit significant malleability in their coding features.
- The findings suggest that speed cells contribute dynamically to self-motion representation across diverse environments.
- Understanding this neural plasticity is key for computational models of spatial navigation.
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