Literature DB >> 16624947

A spin glass model of path integration in rat medial entorhinal cortex.

Mark C Fuhs1, David S Touretzky.   

Abstract

Electrophysiological recording studies in the dorsocaudal region of medial entorhinal cortex (dMEC) of the rat reveal cells whose spatial firing fields show a remarkably regular hexagonal grid pattern (Fyhn et al., 2004; Hafting et al., 2005). We describe a symmetric, locally connected neural network, or spin glass model, that spontaneously produces a hexagonal grid of activity bumps on a two-dimensional sheet of units. The spatial firing fields of the simulated cells closely resemble those of dMEC cells. A collection of grids with different scales and/or orientations forms a basis set for encoding position. Simulations show that the animal's location can easily be determined from the population activity pattern. Introducing an asymmetry in the model allows the activity bumps to be shifted in any direction, at a rate proportional to velocity, to achieve path integration. Furthermore, information about the structure of the environment can be superimposed on the spatial position signal by modulation of the bump activity levels without significantly interfering with the hexagonal periodicity of firing fields. Our results support the conjecture of Hafting et al. (2005) that an attractor network in dMEC may be the source of path integration information afferent to hippocampus.

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Year:  2006        PMID: 16624947      PMCID: PMC6674007          DOI: 10.1523/JNEUROSCI.4353-05.2006

Source DB:  PubMed          Journal:  J Neurosci        ISSN: 0270-6474            Impact factor:   6.167


  218 in total

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9.  Rebound spiking in layer II medial entorhinal cortex stellate cells: Possible mechanism of grid cell function.

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10.  A Map-like Micro-Organization of Grid Cells in the Medial Entorhinal Cortex.

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