Retinotopic remapping of the visual system in deaf adults

The absence of input from one sense can lead to a greater emphasis on the remaining senses, resulting in heightened performance. Numerous behavioral studies demonstrate that adults who have been deaf from an early age have superior visual sensitivity, particularly to far-peripheral stimuli. We asked whether the increased demand on peripheral vision throughout development that comes with early, profound deafness might be reflected in changes in early visual brain structures. Using functional MRI, we mapped visual field representations in 16 early, profoundly D/deaf adults and 16 hearing age-matched controls. D/deaf individuals exhibited a larger representation of the far-peripheral visual field in both the primary visual cortex and the lateral geniculate nucleus of the thalamus. Importantly, this was not due to a total expansion of the visual map, as there was no difference between groups in overall size of either structure, but a smaller representation of the central visual field in the D/deaf group, suggesting a redistribution of neural resources. Here, we demonstrate that the demands placed on vision due to lifelong deafness can sculpt first level visual map input, to increase neural processing resources for far-peripheral visual stimuli.

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Publication Details

Journal
Proceedings of the National Academy of Sciences
Published
2026-09-04
DOI
https://doi.org/10.1073/pnas.2532413123
Citations
1
Primary Topic
Multisensory perception and integration
Type
article
Field-Weighted Citation Impact
9.26
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article

Retinotopic remapping of the visual system in deaf adults

David Buckley, Antony B. Morland, Kate Yuen, Alexandra T. Levine et al.
1 citations
Proceedings of the National Academy of Sciences
Multisensory perception and integration
9.26
article

Retinotopic remapping of the visual system in deaf adults

David Buckley, Antony B. Morland, Kate Yuen, Alexandra T. Levine, Charlotte Codina, André Gouws, Heidi A. Baseler, Alex R. Wade
article en
1 citations

Abstract

The absence of input from one sense can lead to a greater emphasis on the remaining senses, resulting in heightened performance. Numerous behavioral studies demonstrate that adults who have been deaf from an early age have superior visual sensitivity, particularly to far-peripheral stimuli. We asked whether the increased demand on peripheral vision throughout development that comes with early, profound deafness might be reflected in changes in early visual brain structures. Using functional MRI, we mapped visual field representations in 16 early, profoundly D/deaf adults and 16 hearing age-matched controls. D/deaf individuals exhibited a larger representation of the far-peripheral visual field in both the primary visual cortex and the lateral geniculate nucleus of the thalamus. Importantly, this was not due to a total expansion of the visual map, as there was no difference between groups in overall size of either structure, but a smaller representation of the central visual field in the D/deaf group, suggesting a redistribution of neural resources. Here, we demonstrate that the demands placed on vision due to lifelong deafness can sculpt first level visual map input, to increase neural processing resources for far-peripheral visual stimuli.

Proceedings of the National Academy of SciencesVol. 123(36)
University of Health and Allied Sciences (GH), Biomedical Research Institute (US), University of York (GB), Hull York Medical School (GB), University of Sheffield (GB)
Quality Education
Openalex Percentile: Top 6%
Multisensory perception and integration
9.26
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