Complete sparing of high-contrast color input to motion perception in cortical color blindness (original) (raw)

References

  1. Damasio, A., Yamada, T., Damasio, H., Corbett, J. & McKee, J. Central achromatopsia: Behavioral, anatomic, and physiologic aspects. Neurology 30, 1064– 1071 (1980).
    Article CAS Google Scholar
  2. Grüsser, O.-J. & Landis, T. in Vision and Visual Dysfunction, Vol 12: Visual Agnosias. (ed. Cronly-Dillon, J.) 394– 400 (MacMillan, London, 1991).
    Google Scholar
  3. Pearlman, A.L., Birch, J. & Meadows, J.C. Cerebral color blindness: An acquired defect in hue discrimination. Ann. Neurol. 5, 253 –261 (1979).
    Article CAS Google Scholar
  4. Zeki, S.M. A century of cerebral achromatopsia. Brain 113, 1721–1777 (1990).
    Article Google Scholar
  5. Mollon, J.D., Newcombe, F., Polden, P.G. & Ratcliff, G. in Colour Vision Deficiencies (ed. Verriest, G.) 130–135 (Hilger, Bristol, 1980).
    Google Scholar
  6. Wooten, B.R. Partial cerebral achromatopsia with selective hue loss. Doc. Ophthalmol. Proc. Series 33, 139–144 ( 1982).
    Google Scholar
  7. Jaeger, W., Krastel, H. & Braun, S. Cerebral achromatopsia (symptoms, course, differential diagnosis and examination strategy). II. [Article in German] Klin. Monatsbl. Augenheilkd. 194, 32–36 ( 1989).
    Article CAS Google Scholar
  8. Heywood, C.A., Cowey, A. & Newcombe, F. Chromatic discrimination in a cortically colour blind observer. Eur. J. Neurosci. 3, 802–812 (1991).
    Article Google Scholar
  9. Heywood, C.A., Nicholas, J.J. & Cowey, A. Behavioural and electrophysiological chromatic and achromatic contrast sensitivity in an achromatopsic patient. J. Neurol. Neurosurg. Psychiatry 60, 638–643 ( 1996).
    Article CAS Google Scholar
  10. Victor, J.D., Maiese, K., Shapley, R., Sidtis, J. & Gazzaniga, M.S. Acquired central dyschromatopsia: Analysis of a case with preservation of color discrimination. Clin. Vis. Sci. 4, 183–196 (1989).
    Google Scholar
  11. Heywood, C.A., Cowey, A. & Newcombe, F. On the role of parvocellular (P) and magnocellular (M) pathways in cerebral achromatopsia. Brain 117, 245– 254 (1994).
    Article Google Scholar
  12. Henaff, M.A. & Michel, F. A case of central achromatopsia: Possible implicit treatment of hue. Invest. Ophthalmol. Vis. Sci. 34, 745 (1993).
    Google Scholar
  13. Troscianko, T. et al. Human colour discrimination based on a non-parvocellular pathway. Curr. Biol. 6, 200–210 (1996).
    Article CAS Google Scholar
  14. Barbur, J.L., Harlow, A.J. & Plant, G.T. Insights into the different exploits of colour in the visual cortex. Proc. R. Soc. Lond. B 258, 327– 334 (1994).
    Article CAS Google Scholar
  15. Lee, B.B., Martin, P.R. & Valberg, A. The physiological basis of heterochromatic flicker photometry demonstrated in the ganglion cells of the macaque retina. J. Physiol. (Lond.) 404, 323–347 ( 1988).
    Article CAS Google Scholar
  16. Schiller, P.H. & Colby, C.L. The responses of single cells in the lateral geniculate nucleus of the rhesus monkey to color and luminance contrast. Vision Res. 23, 1631– 1641 (1983).
    Article CAS Google Scholar
  17. Wagner, G. & Boynton, R.M. A comparison of four methods of heterochromatic photometry. J. Opt. Soc. Am. 62, 1508–1515 (1972).
    Article CAS Google Scholar
  18. Scheidler, W., Landis, T., Rentschler, I., Regard, M. & Baumgartner, G. A pattern recognition approach to visual agnosia. Clin. Vis. Sci. 7, 175–193 (1992).
    Google Scholar
  19. Harwerth, R.S. & Sperling, H.G. Effects of intense visible radiation on the increment-threshold spectral sensitivity of the rhesus monkey eye. Vision Res. 15, 1193–1204 (1975).
    Article CAS Google Scholar
  20. King-Smith, P.E. & Carden, D. Luminance and opponent-color contributions to visual detection and adaptation and to temporal and spatial integration . J. Opt. Soc. Am. 66, 709– 717 (1976).
    Article CAS Google Scholar
  21. Cavanagh, P. & Anstis, S.M. The contribution of color to motion in normal and color-deficient observers. Vision Res. 31, 2109–2148 (1991).
    Article CAS Google Scholar
  22. Dobkins, K.R. & Albright, T.D. What happens if it changes color when it moves?: psychophysical experiments on the nature of chromatic input to motion detectors. Vision Res. 33, 1019–1036 (1993).
    Article CAS Google Scholar
  23. Chichilnisky, E.J., Heeger, D. & Wandell, B.A. Functional segregation of color and motion perception examined in motion nulling. Vision Res. 33, 2113–2125 (1993).
    Article CAS Google Scholar
  24. Teller, D.Y. & Palmer, J. Infant color vision: motion nulls for red/green vs luminance-modulated stimuli in infants and adults. Vision Res. 36, 955–974 (1996).
    Article CAS Google Scholar
  25. Cavanagh, P. Attention-based motion perception. Science 257, 1563 –1565 (1992).
    Article CAS Google Scholar
  26. Weiskrantz, L. Blindsight revisited. Curr. Opin. Neurobiol. 6, 215–220 (1996).
    Article CAS Google Scholar
  27. Metha, A.B., Vingrys, A.J. & Badcock, D.R. Detection and discrimination of moving stimuli: the effects of color, luminance, and eccentricity. J. Opt. Soc. Am. 11, 1697–1709 (1994).
    Article CAS Google Scholar
  28. Stromeyer, C.F. III, Kronauer, R.E., Ryu, A., Chaparro, A. & Eskew, R.T. Jr Contributions of human long-wave and middle-wave cones to motion detection. J. Physiol. (Lond.) 485, 221–243 ( 1995).
    Article CAS Google Scholar
  29. Chaparro, A., Stromeyer, C.F. III, Huang, E.P., Kronauer, R.E. & Eskew, R.T. Jr Colour is what the eye sees best. Nature 361, 348–350 (1993).
    Article CAS Google Scholar
  30. Ramachandran, V.S. & Gregory, R. Does colour provide an input to human motion perception? Nature 275, 55–56 (1978).
    Article CAS Google Scholar
  31. Cavanagh, P., Tyler, C.W. & Favreau, O.E. Perceived velocity of moving chromatic gratings. J. Opt. Soc. Am. 1, 893–899 (1984).
    Article CAS Google Scholar
  32. Cropper, S.J. & Derrington, A.M. Rapid colour-specific detection of motion in human vision. Nature 379, 72–74 (1996).
    Article CAS Google Scholar
  33. Dobkins, K.R. & Albright, T.D. What happens if it changes color when it moves?: the nature of chromatic input to macaque visual area MT. J. Neurosci. 14, 4854–4870 (1994).
    Article CAS Google Scholar
  34. Saito, H., Tanaka, K., Isono, H. Yasuda, M. & Mikami, A. Directionally selective response of cells in the middle temporal area (MT) of the macaque monkey to the movement of equiluminous opponent color stimuli. Exp. Brain Res. 75, 1–14 (1989).
    Article CAS Google Scholar
  35. Gegenfurtner, K.R. et al. Chromatic properties of neurons in macaque MT. Vis. Neurosci. 11, 455–466 ( 1994).
    Article CAS Google Scholar
  36. Ffytche, D.H., Skidmore, B.D. & Zeki, S. Motion-from-hue activates area V5 of human visual cortex. Proc. R. Soc. Lond. B 260, 353–358 (1995).
    Article CAS Google Scholar
  37. Heywood, C.A., Gaffan, G. & Cowey, A. Cerebral achromatopsia in monkeys. Eur. J. Neurosci. 7, 1064–1073 (1995).
    Article CAS Google Scholar
  38. Hadjikhani, N.K., Liu, A.K., Cavanagh, P., Dale, A.M. & Tootell, R.B.H. Retinotopy and color sensitivity in human visual cortical area V8. Nature Neurosci., 1, 235–241 (1998).
    Article CAS Google Scholar
  39. Tootell, R.B., Dale, A.M., Sereno, M.I. & Malach, R. New images from human visual cortex. Trends Neurosci. 19, 481–489 (1996).
    Article CAS Google Scholar
  40. Zeki, S.M. Uniformity and diversity of structure and function in rhesus monkey prestriate visual cortex . J. Physiol. (Lond.) 277, 273– 290 (1978).
    Article CAS Google Scholar
  41. Ferrera, V.P., Rudolph, K.K. & Maunsell, J.H. Responses of neurons in the parietal and temporal visual pathways during a motion task. J. Neurosci. 14, 6171–6186 (1994).
    Article CAS Google Scholar
  42. Cavanagh, P., Anstis, S.M. & MacLeod, D.I.A. Equiluminance: Spatial and temporal factors and the contribution of blue-sensitive cones. J. Opt. Soc. Am. 4, 1428–1438 (1987).
    Article CAS Google Scholar

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