Parasol cell mosaics are unlikely to drive the formation of structured orientation maps in primary visual cortex

Author:

HORE VICTORIA R.A.,TROY JOHN B.,EGLEN STEPHEN J.

Abstract

AbstractThe receptive fields of on- and off-center parasol cell mosaics independently tile the retina to ensure efficient sampling of visual space. A recent theoretical model represented the on- and off-center mosaics by noisy hexagonal lattices of slightly different density. When the two lattices are overlaid, long-range Moiré interference patterns are generated. These Moiré interference patterns have been suggested to drive the formation of highly structured orientation maps in visual cortex. Here, we show that noisy hexagonal lattices do not capture the spatial statistics of parasol cell mosaics. An alternative model based upon local exclusion zones, termed as the pairwise interaction point process (PIPP) model, generates patterns that are statistically indistinguishable from parasol cell mosaics. A key difference between the PIPP model and the hexagonal lattice model is that the PIPP model does not generate Moiré interference patterns, and hence stimulated orientation maps do not show any hexagonal structure. Finally, we estimate the spatial extent of spatial correlations in parasol cell mosaics to be only 200–350 μm, far less than that required to generate Moiré interference. We conclude that parasol cell mosaics are too disordered to drive the formation of highly structured orientation maps in visual cortex.

Publisher

Cambridge University Press (CUP)

Subject

Sensory Systems,Physiology

Reference44 articles.

1. The development of topography in the visual cortex: a review of models

2. Cellular Spacing: Analysis and Modelling of Retinal Mosaics

3. Hore V.R.A. (2011). Do retinal ganglion cell mosaics generate pinwheel structure in the visual cortex? Masters Thesis, University of Cambridge.

4. Retinal ganglion cells with NADPH-diaphorase activity in the chick form a regular mosaic with a strong dorsoventral asymmetry that can be modelled by a minimal spacing rule

5. Random waves in the brain: Symmetries and defect generation in the visual cortex;Schnabel;The European Physical Journal,2007

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