Literature DB >> 2358891

Selectivity for orientation and direction of motion of single neurons in cat striate and extrastriate visual cortex.

M S Gizzi1, E Katz, R A Schumer, J A Movshon.   

Abstract

1. We consider the consequences of the orientation selectivity shown by most cortical neurons for the nature of the signals they can convey about the direction of stimulus movement. On theoretical grounds we distinguish component direction selectivity, in which cells are selective for the direction of movement of oriented components of a complex stimulus, from pattern direction selectivity, or selectivity for the overall direction of movement of a pattern irrespective of the directions of its components. We employed a novel test using grating and plaid targets to distinguish these forms of direction selectivity. 2. We studied the responses of 280 cells from the striate cortex and 107 cells from the lateral suprasylvian cortex (LS) to single sinusoidal gratings to determine their orientation preference and directional selectivity. We tested 73 of these with sinusoidal plaids, composed of two sinusoidal gratings at different orientations, to study the organization of the directional mechanisms within the receptive field. 3. When tested with single gratings, the directional tuning of 277 oriented cells in area 17 had a mean half width of 20.6 degrees, a mode near 13 degrees, and a range of 3.8-58 degrees. Simple cells were slightly more narrowly tuned than complex cells. The selectivity of LS neurons for the direction of moving gratings is not markedly different from that of neurons in area 17. The mean direction half width was 20.7 degrees. 4. We evaluated the directional selectivity of these neurons by comparing responses to stimuli moved in the optimal direction with those elicited by a stimulus moving in the opposite direction. In area 17 about two-thirds of the neurons responded less than half as well to the non-preferred direction as to the preferred direction; two-fifths of the units responded less than one-fifth as well. Complex cells showed a somewhat greater tendency to directional bias than simple cells. LS neurons tended to have stronger directional asymmetries in their response to moving gratings: 83% of LS neurons showed a significant directional asymmetry. 5. Neurons in both areas responded independently to each component of the plaid. Thus cells giving single-lobed directional-tuning curves to gratings showed bilobed plaid tuning curves, with each lobe corresponding to movement in an effective direction by one of the two component gratings within the plaid. The two best directions for the plaids were those at which one or other single grating would have produced an optimal response when presented alone.(ABSTRACT TRUNCATED AT 400 WORDS)

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Year:  1990        PMID: 2358891     DOI: 10.1152/jn.1990.63.6.1529

Source DB:  PubMed          Journal:  J Neurophysiol        ISSN: 0022-3077            Impact factor:   2.714


  27 in total

1.  Functions of the nucleus of the optic tract (NOT). II. Control of ocular pursuit.

Authors:  S B Yakushin; M Gizzi; H Reisine; T Raphan; J Büttner-Ennever; B Cohen
Journal:  Exp Brain Res       Date:  2000-04       Impact factor: 1.972

2.  Membrane potential and firing rate in cat primary visual cortex.

Authors:  M Carandini; D Ferster
Journal:  J Neurosci       Date:  2000-01-01       Impact factor: 6.167

3.  Image features selected by neurons of the cat primary visual cortex.

Authors:  I A Shevelev
Journal:  Neurosci Behav Physiol       Date:  2000 Sep-Oct

4.  Effect of interocular delay on disparity-selective v1 neurons: relationship to stereoacuity and the pulfrich effect.

Authors:  Jenny C A Read; Bruce G Cumming
Journal:  J Neurophysiol       Date:  2005-03-23       Impact factor: 2.714

5.  Contextual effects in fine spatial discriminations.

Authors:  Lynn A Olzak; Pentti I Laurinen
Journal:  J Opt Soc Am A Opt Image Sci Vis       Date:  2005-10       Impact factor: 2.129

6.  Global motion integration in the postero-medial part of the lateral suprasylvian cortex in the cat.

Authors:  M Y Villeneuve; M Ptito; C Casanova
Journal:  Exp Brain Res       Date:  2006-02-25       Impact factor: 1.972

7.  Lack of orientation and direction selectivity in a subgroup of fast-spiking inhibitory interneurons: cellular and synaptic mechanisms and comparison with other electrophysiological cell types.

Authors:  Lionel G Nowak; Maria V Sanchez-Vives; David A McCormick
Journal:  Cereb Cortex       Date:  2007-08-23       Impact factor: 5.357

8.  Functional organization for direction of motion and its relationship to orientation maps in cat area 18.

Authors:  A Shmuel; A Grinvald
Journal:  J Neurosci       Date:  1996-11-01       Impact factor: 6.167

9.  Linearity and normalization in simple cells of the macaque primary visual cortex.

Authors:  M Carandini; D J Heeger; J A Movshon
Journal:  J Neurosci       Date:  1997-11-01       Impact factor: 6.167

10.  Visual response properties of striate cortical neurons projecting to area MT in macaque monkeys.

Authors:  J A Movshon; W T Newsome
Journal:  J Neurosci       Date:  1996-12-01       Impact factor: 6.167

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