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Spatial and temporal analysis by neurons in the representation of the central visual field in the cat's lateral suprasylvian visual cortex

Published online by Cambridge University Press:  02 June 2009

Martin S. Gizzi
Affiliation:
Department of Psychology and Center for Neural Science, New York University, New York
Ephraim Katz
Affiliation:
Department of Psychology and Center for Neural Science, New York University, New York
J. Anthony Movshon
Affiliation:
Department of Psychology and Center for Neural Science, New York University, New York

Abstract

We studied quantitatively the receptive-field properties of 74 units recorded from the representation of the central visual fields in the cat's lateral suprasylvian (LS) visual cortex. In agreement with previous workers, we found that LS receptive fields tended to be large and to lack discernible spatial structure. They resembled the complex receptive fields of areas 17 and 18 in their general organization. We examined the responses of these neurons to moving optimally oriented sinusoidal gratings that varied in spatial and temporal frequency of drift. Most LS neurons were selective for the spatial frequency of sinusoidal gratings; 7% responded to all spatial frequencies below a cutoff value. In agreement with previous reports, the optimal spatial frequencies for LS neurons covered a wider range than is seen in either area 17 or 18 alone (0.05–1 cycle/deg), but are certainly included in the range covered by both these afferent areas. Individual neurons in LS responded to a range of spatial frequencies broader than is typical for neurons in areas 17 and 18. The effect of varying the drift rate of otherwise optimal gratings was similar in LS to that reported for areas 17 and 18. Most neurons were optimally responsive to drift rates between 0.5 and 4 Hz, and resolved frequencies as high as 10–30 Hz. A few neurons had optima higher than 6 Hz and resolved frequencies in excess of 30 Hz. We conclude that the receptive fields of LS neurons reflect rather closely the properties of their afferents from areas 17 and 18. Apart from the increased incidence of directional selectivity in LS and the increase in receptive-field size seen there, we find no evidence for a significant reorganization of visual signals.

Type
Research Article
Copyright
Copyright © Cambridge University Press 1990

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References

Blakemore, C. & Zumbroich, T.J. (1987). Stimulus selectivity and functional organization in the lateral suprasylvian visual cortex of the cat. Journal of Physiology (London) 389, 569603.CrossRefGoogle ScholarPubMed
Bullier, J., Kennedy, H. & Salinger, W. (1984). Branching and laminar origin of projections between visual cortical areas in the cat. Journal of Comparative Neurology 228, 329341.CrossRefGoogle ScholarPubMed
Camarda, R. & Rizzolati, G. (1976). Visual receptive fields in the lateral suprasylvian area (Clare-Bishop area) of the cat. Brain Research 101, 427443.Google Scholar
DeValois, K.K., Albrecht, D. & Thorell, L. (1982). Spatial-frequency selectivity of cells in macaque visual cortex. Vision Research 22, 545560.CrossRefGoogle Scholar
DiStefano, M., Morrone, M.C. & Burr, D.C. (1985). Visual acuity of neurones in the cat lateral suprasylvian cortex. Brain Research 331, 382385.Google Scholar
Enroth-Cugell, C. & Robson, J.G. (1966). The contrast sensitivity of retinal ganglion cells of the cat. Journal of Physiology (London) 187, 517552.CrossRefGoogle ScholarPubMed
Gizzi, M.S., Katz, E. & Movshon, J.A. (1981). Spatial properties of neurons in the cat's lateral suprasylvian visual cortex. Society for Neuroscience Abstracts, 6, 831.Google Scholar
Gizzi, M.S., Katz, E., Schumer, R.A. & Movshon, J.A. (1990). Selectivity for orientation and direction of motion in single neurons in the cat's visual cortex. Journal of Neurophysiology 63, 15291543.CrossRefGoogle Scholar
Henry, G.H., Lund, J.S. & Harvey, A.R. (1978). Cells of the striate cortex projecting to the Clare-Bishop area of the cat. Brain Research 151, 154158.CrossRefGoogle Scholar
Khchvankian, D.K. & Harutiuian-Kozak, B.A. (1981). Properties of visually sensitive neurons in lateral suprasylvian area of the cat. Acta Neurobiologica 41, 299314.Google Scholar
Maffei, L. & Fiorentini, A. (1973). The visual cortex as a spatial-frequency analyzer. Vision Research 13, 12551268.CrossRefGoogle Scholar
Morrone, M.C., DiStefano, M. & Burr, D. (1986). Spatial and temporal properties of neurons of the lateral suprasylvian cortex of the cat. Journal of Neurophysiology 56, 969986.CrossRefGoogle ScholarPubMed
Movshon, J.A., Thompson, I.D. & Tolhurst, D. J. (1978 a). Spatial summation in the receptive fields of simple cells in the cat's striate cortex. Journal of Physiology (London) 283, 5777.Google ScholarPubMed
Movshon, J.A., Thompson, I.D. & Tolhurst, D.J. (1978 b). Receptive field organization of complex cells in the cat's striate cortex. Journal of Physiology (London) 283, 7999.Google Scholar
Movshon, J.A., Thompson, I.D. & Tolhurst, D.J. (1978 c). Spatial and temporal contrast sensitivity of neurons in areas 17 and 18 of the cat's visual cortex. Journal of Physiology (London) 283, 101120.CrossRefGoogle ScholarPubMed
Palmer, L.A., Rosenquist, A.C. & Tusa, R. J. (1978). The retinotopic organization of lateral suprasylvian visual areas in the cat. Journal of Comparative Neurology 177, 237256.CrossRefGoogle ScholarPubMed
Razcowski, D. & Rosenquist, A.C. (1983). Connections of the multiple visual cortical areas with the lateral postenor-pulvinar complex. Journal of Neuroscience 3, 19121942.Google Scholar
Shapley, R.M. & Hochstein, S. (1975). Visual spatial summation in two classes of geniculate cells. Nature (London) 256, 411413.CrossRefGoogle ScholarPubMed
Shelepin, Yu. E. (1983). Spatial-frequency characteristics of receptive fields of neurons in the lateral suprasylvian area of the cat cortex. Neurophysiology 14, 443447.CrossRefGoogle Scholar
Sherk, H. (1986). Location and connections of visual cortical areas in the cat's suprasylvian sulcus. Journal of Comparative Neurology 247, 131.CrossRefGoogle ScholarPubMed
Sherk, H. (1989). Visual response properties of cortical inputs to an extrastriate cortical area in the cat. Visual Neuroscience 3, 249265.CrossRefGoogle Scholar
Sherman, M.S. (1985). Functional organization of the W-, X-, and Y-cell pathways in the cat: a review and hypothesis. Progress in Psychobiology and Physiological Psychology 11, 233314.Google Scholar
Smith, D.C. & Spear, P. D. (1979). Effects of superior colliculus removal on receptive-field properties of neurons in lateral suprasylvian area of the cat. Journal of Neurophysiology 42, 5775.Google Scholar
Spear, P.D. (1988). Influence of areas 17, 18, and 19 on receptive-field properties of neurons in the cat's posteromedial lateral suprasylvian visual cortex. Progress in Brain Research 75, 197210.Google Scholar
Spear, P.D. & Baumann, T.P. (1975). Receptive-field characteristics of single neurons in lateral suprasylvian area of the cat. Journal of Neurophysiology 38, 14031420.Google Scholar
Spear, P.D. & Baumann, T.P. (1979). Neurophysiological mechanisms of recovery from visual cortical damage in cats: properties of lateral suprasylvian visual area following behavioral recovery. Experimental Brain Research 35, 161176.Google Scholar
Spear, P.D., Tong, L. & McCall, M.A. (1988). Functional influence of areas 17, 18, and 19 on lateral suprasylvian cortex in kittens and adult cats: implications for compensation following early visual cortex damage. Brain Research 447, 7991.CrossRefGoogle Scholar
Symonds, L.L. & Rosenquist, A.C. (1984 a). Corticocortical connections among visual areas in the cat. Journal of Comparative Neurology 229, 138.CrossRefGoogle ScholarPubMed
Symonds, L.L. & Rosenquist, A.C. (1984 b). Laminar origins of visual corticocortical connections in the cat. Journal of Comparative Neurology 229, 3947.Google Scholar
Van Essen, D.C. (1979). Visual areas of the mammalian cerebral cortex. Annual Review of Neuroscience 2, 227263.Google Scholar
Zumbroich, T.J. & Blakemore, C. (1987). Spatial and temporal selectivity in the suprasylvian visual cortex of the cat. Journal of Neuroscience 7, 482500.CrossRefGoogle ScholarPubMed
Zumbroich, T.J., von Grunau, M., Poulin, C. & Blakemore, C. (1986). Differences of visual-field representation in the medial and lateral banks of the suprasylvian cortex (PMLS/PLLS) of the cat. Experimental Brain Research 64, 7793.CrossRefGoogle ScholarPubMed