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The Journal of Neuroscience, August 13, 2003, 23(19):7395-7406
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The Retinotopic Organization of Primate Dorsal V4 and Surrounding Areas: A Functional Magnetic Resonance Imaging Study in Awake Monkeys
Denis Fize,1
Wim Vanduffel,1,2
Koen Nelissen,1
Katrien Denys,1
Christophe Chef d'Hotel,3
Olivier Faugeras,3 and
Guy A. Orban1
1Laboratorium voor Neuroen Psychofysiologie,
Katholieke Universiteit Leuven, Campus Gasthuisberg, Leuven B-3000, Belgium,
2Massachusetts General Hospital/Massachusetts
Institute of Technology/Harvard Medical School Athinoula A. Martino's Center
for Biomedical Imaging, Charlestown, Massachusetts 02129, and
3Equipe Odyssée, Institut National de Recherche
en Informatique et en Automatique (INRIA), INRIA-Sophia-Antipolis, BP93, 06902
Sophia-Antipolis Cedex, France
Using functional magnetic resonance imaging (fMRI), we mapped the
retinotopic organization throughout the visual cortex of fixating monkeys. The
retinotopy observed in areas V1, V2, and V3 was completely consistent with the
classical view. V1 and V3 were bordered rostrally by a vertical meridian
representation, and V2 was bordered by a horizontal meridian. More anterior in
occipital cortex, both areas V3A and MT-V5 had lower and upper visual field
representations split by a horizontal meridian. The rostral border of dorsal
V4 was characterized by the gradual transition of a representation of the
vertical meridian (dorsally) to a representation of the horizontal meridian
(more ventrally). Central and ventral V4, on the other hand, were rostrally
bordered by a representation of the horizontal meridian. The eccentricity
lines ran perpendicular to the ventral V3-V4 border but were parallel to the
dorsal V3-V4 border. These results indicate different retinotopic
organizations within dorsal and ventral V4, suggesting that the latter regions
may not be merely the lower and upper visual field representations of a single
area. Moreover, because the present fMRI data are in agreement with previously
published electrophysiological results, reported distinctions in the
retinotopic organization of human and monkey dorsal V4 reflect genuine species
differences that cannot be attributed to technical confounds. Finally, aside
from dorsal V4, the retinotopic organization of macaque early visual cortex
(V1, V2, V3, V3A, and ventral V4) is remarkably similar to that observed in
human fMRI studies. This finding indicates that early visual cortex is mostly
conserved throughout hominid evolution.
Key words: functional imaging; macaque; retinotopy; extrastriate cortex; cortical magnification; homology
Received Apr. 30, 2003;
revised Jun. 23, 2003;
accepted Jun. 24, 2003.
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