Literature DB >> 8870233

Pattern of ocular dominance columns in human striate cortex in strabismic amblyopia.

J C Horton1, D R Hocking.   

Abstract

Previous experiments in animals have shown that early unilateral eyelid suture, a model of amblyopia induced by cataract, causes shrinkage of ocular dominance columns serving the deprived eye in the striate cortex. It is unknown whether the ocular dominance columns are affected in amblyopia produced by strabismus. We examined specimens of striate cortex obtained postmortem from a 79-year-old woman with a history of amblyopia in her left eye (20/800) since age 2 from accommodative esotropia. Four years prior to her death, she suffered an ischemic infarct of the left optic disc. This injury to the left optic disc made it possible to label the ocular dominance columns using cytochrome oxidase histochemistry. The pattern of ocular dominance columns was reconstructed throughout most of the right striate cortex. No shrinkage of columns was found. In the left cortex only half the column mosaic was labelled, because the patient had some residual vision in the temporal retina of her left eye. The columns within the labelled portion of the overall mosaic appeared normal. These findings indicate that shrinkage of ocular dominance columns does not occur in humans with amblyopia caused by accommodative esotropia. The ocular dominance columns are probably no longer susceptible to shrinkage at the age when most children with this condition begin to develop amblyopia.

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Year:  1996        PMID: 8870233     DOI: 10.1017/s0952523800008658

Source DB:  PubMed          Journal:  Vis Neurosci        ISSN: 0952-5238            Impact factor:   3.241


  12 in total

1.  The cortical deficit in humans with strabismic amblyopia.

Authors:  G R Barnes; R F Hess; S O Dumoulin; R L Achtman; G B Pike
Journal:  J Physiol       Date:  2001-05-15       Impact factor: 5.182

2.  Why is the adult amblyopic eye unstable?

Authors:  C S Hoyt
Journal:  Br J Ophthalmol       Date:  2004-09       Impact factor: 4.638

3.  Monocular activation of V1 and V2 in amblyopic adults measured with functional magnetic resonance imaging.

Authors:  Ian P Conner; J Vernon Odom; Terry L Schwartz; Janine D Mendola
Journal:  J AAPOS       Date:  2007-04-16       Impact factor: 1.220

4.  Infants' visual system nonretinotopically integrates color signals along a motion trajectory.

Authors:  Jiale Yang; Junji Watanabe; So Kanazawa; Shin'ya Nishida; Masami K Yamaguchi
Journal:  J Vis       Date:  2015-01-26       Impact factor: 2.240

5.  Comparison between anisometropic and strabismic amblyopia using functional magnetic resonance imaging.

Authors:  M Y Choi; K M Lee; J M Hwang; D G Choi; D S Lee; K H Park; Y S Yu
Journal:  Br J Ophthalmol       Date:  2001-09       Impact factor: 4.638

6.  Voxel-based analysis of MRI detects abnormal visual cortex in children and adults with amblyopia.

Authors:  Janine D Mendola; Ian P Conner; Anjali Roy; Suk-Tak Chan; Terry L Schwartz; J Vernon Odom; Kenneth K Kwong
Journal:  Hum Brain Mapp       Date:  2005-06       Impact factor: 5.038

7.  Neuronal projections from V1 to V2 in amblyopia.

Authors:  Lawrence C Sincich; Cristina M Jocson; Jonathan C Horton
Journal:  J Neurosci       Date:  2012-02-22       Impact factor: 6.167

8.  Bilateral abnormalities of optic nerve size and eye shape in unilateral amblyopia.

Authors:  Stacy L Pineles; Joseph L Demer
Journal:  Am J Ophthalmol       Date:  2009-07-02       Impact factor: 5.258

9.  Estimation of cortical magnification from positional error in normally sighted and amblyopic subjects.

Authors:  Zahra Hussain; Carl-Magnus Svensson; Julien Besle; Ben S Webb; Brendan T Barrett; Paul V McGraw
Journal:  J Vis       Date:  2015-02-26       Impact factor: 2.240

10.  Spatial-frequency dependent binocular imbalance in amblyopia.

Authors:  MiYoung Kwon; Emily Wiecek; Steven C Dakin; Peter J Bex
Journal:  Sci Rep       Date:  2015-11-25       Impact factor: 4.379

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