Anatomical Evidence for Classical and Extra-classical Receptive Field Completion Across the Discontinuous Horizontal Meridian Representation of Primate Area V2
Open Access
- 28 August 2008
- journal article
- research article
- Published by Oxford University Press (OUP) in Cerebral Cortex
- Vol. 19 (4) , 963-981
- https://doi.org/10.1093/cercor/bhn142
Abstract
In primates, a split of the horizontal meridian (HM) representation at the V2 rostral border divides this area into dorsal (V2d) and ventral (V2v) halves (representing lower and upper visual quadrants, respectively), causing retinotopically neighboring loci across the HM to be distant within V2. How is perceptual continuity maintained across this discontinuous HM representation? Injections of neuroanatomical tracers in marmoset V2d demonstrated that cells near the V2d rostral border can maintain retinotopic continuity within their classical and extra-classical receptive field (RF), by making both local and long-range intra- and interareal connections with ventral cortex representing the upper visual quadrant. V2d neurons located <0.9–1.3 mm from the V2d rostral border, whose RFs presumably do not cross the HM, make nonretinotopic horizontal connections with V2v neurons in the supra- and infragranular layers. V2d neurons located <0.6–0.9 mm from the border, whose RFs presumably cross the HM, in addition make retinotopic local connections with V2v neurons in layer 4. V2d neurons also make interareal connections with upper visual field regions of extrastriate cortex, but not of MT or MTc outside the foveal representation. Labeled connections in ventral cortex appear to represent the “missing” portion of the connectional fields in V2d across the HM. We conclude that connections between dorsal and ventral cortex can create visual field continuity within a second-order discontinuous visual topography.Keywords
This publication has 70 references indexed in Scilit:
- A distinct anatomical network of cortical areas for analysis of motion in far peripheral visionEuropean Journal of Neuroscience, 2006
- Resolving the organization of the New World monkey third visual complex: The dorsal extrastriate cortex of the marmoset (Callithrix jacchus)Journal of Comparative Neurology, 2005
- Visuotopic organisation and neuronal response selectivity for direction of motion in visual areas of the caudal temporal lobe of the marmoset monkey (Callithrix jacchus): Middle temporal area, middle temporal crescent, and surrounding cortexJournal of Comparative Neurology, 1998
- Two rules for callosal connectivity in striate cortex of the ratJournal of Comparative Neurology, 1995
- Relationship between Orientation Domains, Cytochrome Oxidase Stripes, and Intrinsic Horizontal Connections in Squirrel Monkey Area V2Cerebral Cortex, 1994
- Convergence of processing channels in the extrastriate cortex of monkeysVisual Neuroscience, 1990
- Functional implications of the anatomical organization of the callosal projections of visual areas V1 and V2 in the macaque monkeyBehavioural Brain Research, 1988
- Organization of the callosal connections of visual areas v1 and v2 in the macaque monkeyJournal of Comparative Neurology, 1986
- Interhemispheric connections of visual cortex of owl monkeys (Aotus trivirgatus), marmosets (Callithrix jacchus), and galagos (Galago crassicaudatus)Journal of Comparative Neurology, 1984
- Cortical projections of area 18 in owl monkeysVision Research, 1977