A correlational model for the development of disparity selectivity in visual cortex that depends on prenatal and postnatal phases.
- 1 September 1993
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 90 (17) , 8277-8281
- https://doi.org/10.1073/pnas.90.17.8277
Abstract
Neurons in the visual cortex require correlated binocular activity during a critical period early in life to develop normal response properties. We present a model for how the disparity selectivity of cortical neurons might arise during development. The model is based on Hebbian mechanisms for plasticity at synapses between geniculocortical neurons and cortical cells. The model is driven by correlated activity in retinal ganglion cells within each eye before birth and additionally between eyes after birth. With no correlations present between the eyes, the cortical model developed only monocular cells. Adding a small amount of correlation between eyes at the beginning of development produced cortical neurons that were entirely binocular and tuned to zero disparity. However, if an initial phase of purely same-eye correlations was followed by a second phase of development that included correlations between eyes, the cortical model became populated with both monocular and binocular cells. Moreover, in the two-phase model, binocular cells tended to be selective for zero disparity, whereas the more monocular cells tended to have nonzero disparity. This relationship between ocular dominance and disparity has been observed in the visual cortex of the cat by other workers. Differences in the relative timing of the two developmental phases could account for the higher proportion of monocular cells found in the visual cortices of other animals.Keywords
This publication has 21 references indexed in Scilit:
- Ocular dominance and disparity-sensitivity: why there are cells in the visual cortex driven unequally by the two eyesExperimental Brain Research, 1986
- From basic network principles to neural architecture: emergence of spatial-opponent cells.Proceedings of the National Academy of Sciences, 1986
- Binocular impulse blockade prevents the formation of ocular dominance columns in cat visual cortexJournal of Neuroscience, 1986
- A comparison of binocular depth mechanisms in areas 17 and 18 of the cat visual cortexThe Journal of Physiology, 1981
- A model for the formation of ocular dominance stripesProceedings of the Royal Society of London. B. Biological Sciences, 1980
- Disparity tuning and binocularity of single neurons in cat visual cortexExperimental Brain Research, 1979
- Binocular interaction and depth sensitivity in striate and prestriate cortex of behaving rhesus monkeyJournal of Neurophysiology, 1977
- Prenatal development of the visual system in rhesus monkeyPhilosophical Transactions of the Royal Society of London. B, Biological Sciences, 1977
- The neural mechanism of binocular depth discriminationThe Journal of Physiology, 1967
- EFFECTS OF VISUAL DEPRIVATION ON MORPHOLOGY AND PHYSIOLOGY OF CELLS IN THE CAT'S LATERAL GENICULATE BODYJournal of Neurophysiology, 1963