Literature DB >> 7440796

Interhemispheric connections of visual cortex in the owl monkey, Aotus trivirgatus, and the bushbaby, Galago senegalensis.

W T Newsome, J M Allman.   

Abstract

Anatomical techniques have been used to map within visual cortex th pattern of degenerating axonal terminals produced by surgical section of the splenium of the corpus callosum in the owl monkey, Aotus trivirgatus, and the bushbaby, Galago senegalensis. Previous studies in other species have shown that callosal inputs terminate preferentially in regions where the vertical meridian of the visual field is represented. Such a correspondence can serve as a useful aid for locating the boundaries of visual areas. The goals of this study have been (1) to assess the degree of correspondence between callosal inputs and previously identified vertical meridian representations in the owl monkey and bushbaby, and (2) to gain information from the pattern of callosal inputs concerning the existence and organization of as yet unidentified extrastriate visual areas. In both the owl monkey and the bushbaby, a discrete band of degenerating axonal terminals corresponds precisely to the vertical meridian representation at the V1-V2 border, and a less precise increase in the density of degenerating axonal terminals corresponds to the vertical meridian representation of extrastriate area MT. A well-defined band of degeneration on the ventral surface of the owl monkey's cerebral hemisphere corresponds to a previously unknown vertical meridian representation which is shared by two newly identified extrastriate visual areas. Elsewhere in visual cortex the pattern of callosal connections is more complex. Although this pattern may still reflect visual topography, it is not immediately useful for distinguishing areal boundaries.

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Mesh:

Year:  1980        PMID: 7440796     DOI: 10.1002/cne.901940111

Source DB:  PubMed          Journal:  J Comp Neurol        ISSN: 0021-9967            Impact factor:   3.215


  20 in total

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4.  Reciprocal heterotopic callosal connections between the two striate areas in Tupaia.

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Authors:  Joo-Hyun Song; Robert M McPeek
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Authors:  R B Tootell; J D Mendola; N K Hadjikhani; A K Liu; A M Dale
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7.  Intrinsic signal optical imaging evidence for dorsal V3 in the prosimian galago (Otolemur garnettii).

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8.  Callosal projections between areas 17 in the adult tree shrew (Tupaia belangeri).

Authors:  M Pritzel; R Kretz; G Rager
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Review 9.  Parcellating Cerebral Cortex: How Invasive Animal Studies Inform Noninvasive Mapmaking in Humans.

Authors:  David C Van Essen; Matthew F Glasser
Journal:  Neuron       Date:  2018-08-22       Impact factor: 17.173

10.  Relation of callosal and striate-extrastriate cortical connections in the rat: morphological definition of extrastriate visual areas.

Authors:  J Olavarria; V M Montero
Journal:  Exp Brain Res       Date:  1984       Impact factor: 1.972

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