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Stimulus versus eye movements: Comparison of neural activity in the striate and prelunate visual cortex (A17 and A19) of trained rhesus monkey

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Summary

Visual responses were recorded from single cells in the parafoveal striate (A17) and prelunate (A19) cortex of awake rhesus monkeys while they were fixating a stationary or moving spot of light in the presence of a moving or stationary stimulus. Retinotopy and stimulus requirements were found to be less strict in A19 as compared to A17. Striate cells preferred slow stimulus movements and displayed a large amount of binocular interaction. Many prelunate cells responded well to fast stimulus movements, all were binocular but only a few showed binocular interaction. In both areas an overall deficit of visual responses during saccadic eye movements was observed which was mostly due to the cells' inability to respond to stimuli moving at saccadic velocities. Only in A19 were there cells which seemed to receive non-sensory signals reducing visual responses during rapid eye movements. We concluded that the prelunate cortex has access to input which does not use the geniculate-striate pathway. The additional observation of presaccadic activation of some cells supports the idea that activity in the prelunate cortex may be associated with events related to visually guided changes of the direction of gaze and/or attention.

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References

  • Benevento LA, Rezak M (1976) The cortical projections of the inferior pulvinar and adjacent lateral pulvinar in the rhesus monkey (macaca mulatta): an autoradiographic study. Brain Res 108: 1–24

    Google Scholar 

  • Brodmann K (1909) Vergleichende Lokalisationslehre der Groβhirnrinde. Barth, Leipzig

    Google Scholar 

  • Essen DC van, Maunsell JHR, Bixby JL (1979) The organization of extrastriate visual areas in the macaque monkey. In: Woolsey C (ed) Multiple cortical areas. Humana Press, Clifton, NJ

    Google Scholar 

  • Fischer, B, Baker FH (1978) Responses of single cells in prelunate cortex of the behaving rhesus monkey. J Physiol (Lond) 284: 118P

  • Fischer B, Krüger J (1974) The shift effect in the cat's lateral geniculate neurons. Exp Brain Res 21: 225–227

    Google Scholar 

  • Fischer B, Krüger J, Droll W (1975) Quantitative aspects of the shift-effect in cat retinal ganglion cells. Brain Res 83: 391–403

    Google Scholar 

  • Goldberg ME, Wurtz RH (1972) Activity of superior colliculus in behaving monkey. II. Effect of attention on neural responses. J Neurophysiol 35: 560–574

    Google Scholar 

  • Judge SJ, Wurtz RH, Richmond BJ (1980) Vision during saccadic eye movements. I. Visual interactions in striate cortex. J Neurophysiol 43: 1133–1155

    Google Scholar 

  • Krüger J (1977) The shift-effect in the lateral geniculate body of the rhesus monkey. Exp Brain Res 29: 387–392

    Google Scholar 

  • Krüger J, Fischer B (1976) A versatile optical stimulator providing increments and decrements of brightness or pure color contrast of moving or flashing stimuli. Vision Res 16: 1351–1354

    Google Scholar 

  • Krüger J, Fischer B, Barth R (1975) The shift-effect in retinal ganglion cells of the rhesus monkey. Exp Brain Res 23: 443–446

    Google Scholar 

  • Mountcastle VB, Lynch JC, Georgopoulos A, Sakata H, Aguna C (1975) Posterior parietal association cortex of the monkey: command functions for operations within extrapersonal space. J Neurophysiol 38: 871–908

    Google Scholar 

  • Poggio GF, Doty RW, Talbot WH (1977) Foveal striate cortex of behaving monkey: single neuron responses to square-wave gratings during fixation of gaze. J Neurophysiol 40: 1369–1391

    Google Scholar 

  • Poggio GF, Fischer B (1977) Binocular interaction and depth sensitivity of striate and prestriate cortical neurons of the behaving rhesus monkey. J Neurophysiol 40: 1392–1405

    Google Scholar 

  • Robinson DL, Goldberg ME (1978) Sensory and behavioral properties of neurons in posterior parietal cortex of the awake trained monkey. Fed Proc 37: 2258–2261

    Google Scholar 

  • Schein SJ, Marrocco RT, de Monasterio FM (1980) Spectral properties of cells in the prestriate cortex of monkey. Neurosci Abstr 194: 580

    Google Scholar 

  • Wurtz RH (1969) Comparison of effects of eye movements and stimulus movements on striate cortex neurons of the monkey. J Neurophysiol 32: 987–994

    Google Scholar 

  • Wurtz RH, Mohler CW (1976) Enhancement of visual responses in monkey striate cortex and frontal eye fields. J Neurophysiol 39: 766–772

    Google Scholar 

  • Zeki SM (1970) Interhemispheric connections of prestriate cortex in monkey. Brain Res 19: 63–75

    Google Scholar 

  • Zeki SM (1973) Colour coding in rhesus monkey prestriate cortex. Brain Res 53: 422–427

    Google Scholar 

  • Zeki SM (1974) Functional organization of a visual area in the posterior bank of the superior temporal sulcus of the rhesus monkey. J Physiol (Lond) 236: 549–573

    Google Scholar 

  • Zeki SM (1977) Colour coding in the superior temporal sulcus of rhesus monkey visual cortex. Proc R Soc Lond 197: 195–223

    Google Scholar 

  • Zeki SM (1978) II. The cortical projections of foveal striate cortex in the rhesus monkey. J Physiol (Lond) 277: 227–244

    Google Scholar 

  • Zeki SM (1979) On Brodmann's area 18 and 19. Exp Brain Res 36: 195–197

    Google Scholar 

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Supported by the DFG, Sonderforschungsbereich “Hirnforschung und Sinnesphysiologie” (SFB 70, Tp B7)

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Fischer, B., Boch, R. & Bach, M. Stimulus versus eye movements: Comparison of neural activity in the striate and prelunate visual cortex (A17 and A19) of trained rhesus monkey. Exp Brain Res 43, 69–77 (1981). https://doi.org/10.1007/BF00238811

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  • DOI: https://doi.org/10.1007/BF00238811

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