The experiments in this proposal are directed towards the anatomical and functional organization of extrastriate visual cortex in the primate. There are two general sets of experiments, one on human cortical anatomy, and the other on functional organization in the monkey. In the human experiments, autopsied visual cortex is flattened, sectioned and stained for either myelin, cytochrome oxidase, or the monoclonal antibody CAT-301 to look for anatomical homologues of macaque cortical visual areas V2, V3, MT and LIP, and perhaps V3A and MST. If such homologous areas can be demonstrated in the human, this should clarify the etiology of specific perceptual defects due to cortical damage in certain patients (e.g. Pearlman et al, 1979; Damasio et al, 1980; zihl eta al, 1983). There are three experiments int he scond set of experiments on monkey organization. All of these experiments will use optical recordings, the double-label deoxyglucose technique and/or electrophysiological mapping to demonstrate and map the functional architecture. One of these experiments is directed towards area MT, where tests will be done for direction, velocity and other types of columns, and for intrinsic differences in activity. Another experiment is a test for color columns (wavelength preference maps) in any cortical visual area, with special focus on areas V1 and V4. In the final experiment, orientation columns will be labelled throughout visual cortex, in both New and Old World monkeys. The presence or absence of orientation columns in each area will serve as a criteria for homology between different areas in the two families of primate.

Agency
National Institute of Health (NIH)
Institute
National Eye Institute (NEI)
Type
Research Project (R01)
Project #
5R01EY007980-03
Application #
3265066
Study Section
Visual Sciences B Study Section (VISB)
Project Start
1988-12-01
Project End
1991-11-30
Budget Start
1990-12-01
Budget End
1991-11-30
Support Year
3
Fiscal Year
1991
Total Cost
Indirect Cost
Name
Harvard University
Department
Type
Schools of Medicine
DUNS #
082359691
City
Boston
State
MA
Country
United States
Zip Code
02115
Koyama, Shinichi; Sasaki, Yuka; Andersen, George John et al. (2005) Separate processing of different global-motion structures in visual cortex is revealed by FMRI. Curr Biol 15:2027-32
Seiffert, Adriane E; Somers, David C; Dale, Anders M et al. (2003) Functional MRI studies of human visual motion perception: texture, luminance, attention and after-effects. Cereb Cortex 13:340-9
Sasaki, Yuka; Murakami, Ikuya; Cavanagh, Patrick et al. (2002) Human brain activity during illusory visual jitter as revealed by functional magnetic resonance imaging. Neuron 35:1147-56
Bar, M; Tootell, R B; Schacter, D L et al. (2001) Cortical mechanisms specific to explicit visual object recognition. Neuron 29:529-35
Sasaki, Y; Hadjikhani, N; Fischl, B et al. (2001) Local and global attention are mapped retinotopically in human occipital cortex. Proc Natl Acad Sci U S A 98:2077-82
Hadjikhani, N; Sanchez Del Rio, M; Wu, O et al. (2001) Mechanisms of migraine aura revealed by functional MRI in human visual cortex. Proc Natl Acad Sci U S A 98:4687-92
Tootell, R B; Hadjikhani, N (2001) Where is 'dorsal V4' in human visual cortex? Retinotopic, topographic and functional evidence. Cereb Cortex 11:298-311
Fischl, B; Sereno, M I; Tootell, R B et al. (1999) High-resolution intersubject averaging and a coordinate system for the cortical surface. Hum Brain Mapp 8:272-84
Somers, D C; Dale, A M; Seiffert, A E et al. (1999) Functional MRI reveals spatially specific attentional modulation in human primary visual cortex. Proc Natl Acad Sci U S A 96:1663-8
Mendola, J D; Dale, A M; Fischl, B et al. (1999) The representation of illusory and real contours in human cortical visual areas revealed by functional magnetic resonance imaging. J Neurosci 19:8560-72

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