From entorhinal neural codes to navigation
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Summary
The medial entorhinal cortex contains spatially selective grid cells, whose lattice-like firing patterns are proposed to support path-integration-based navigation, but direct behavioral evidence has been lacking.
- Type
- letter
- Published
- 2017-12-21
- Cited by
- 3
- References
- 16
- OpenAlex
- https://openalex.org/W2773524585
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:2044486
Keywords
Path integration, Entorhinal cortex, Neuroscience, Grid cell, Computer science
References
- Distinct speed dependence of entorhinal island and ocean cells, including respective grid cells
- Microstructure of a spatial map in the entorhinal cortex
- Homing by path integration in a mammal
- The Spatial Periodicity of Grid Cells Is Not Sustained During Reduced Theta Oscillations
- Grid cells require excitatory drive from the hippocampus
- Path integration and the neural basis of the 'cognitive map'
- Development of the Spatial Representation System in the Rat
- Reduction of Theta Rhythm Dissociates Grid Cell Spatial Periodicity from Directional Tuning
- Hippocampal remapping and grid realignment in entorhinal cortex
- Disruption of the head direction cell network impairs the parahippocampal grid cell signal
- Optogenetic Dissection of Entorhinal-Hippocampal Functional Connectivity
- Connecting multiple spatial scales to decode the population activity of grid cells
- Visual landmarks sharpen grid cell metric and confer context specificity to neurons of the medial entorhinal cortex
- Absence of Visual Input Results in the Disruption of Grid Cell Firing in the Mouse
- Impaired path integration in mice with disrupted grid cell firing
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