Vision plays an essential role during normal locomotion. In elderly people, decreased visual capacity is a major contributing factor to falls that often result in serious injury. The present proposal has two goals. First, the intent is to explore the neural mechanism underlying visual analysis during locomotion in an animal model. Second, the aim is to investigate visual function during locomotion. The cat will be used as a model both for electrophysiological study of single neurons and in behavioral testing. The cat is suitable for several reasons. First, the area of visual cortex to be targeted, LS, closely resembles a well-studied area of primate cortex, MT. Second, cats, like humans, locomote across 2-dimensional substrates and thus face similar challenges during locomotion. Third, cats are good subjects for behavioral assessment of visual function during locomotion; they are extremely sure-footed and use visual cues to guide paw placement when traversing a cluttered environment. To test the role of neurons in LS in visual guidance of locomotion, a novel stimulus display system has been developed. Computer-generated """"""""optic flow"""""""" movies, 65x62 deg in size, are used that simulate the view of a cat locomoting through a natural environment. A wide range of such movies has been developed. To explore the mechanism by which neurons respond to particular objects embedded in optic flow movies, movies will be used in which the retinal acceleration and speed of objects relative to background will be manipulated independently. To investigate why normal direction-selectivity appears to be suppressed when viewing optic flow movies, the optic flow background will be altered, resulting in both plausible optic flow (as when the cat tracks a point on the ground) and anomalous flow (as when acceleration or expansion cues are eliminated). To see whether neurons respond selectively when the cat makes a turn, movies simulating left and right turns of various sizes will be used. Finally, we will test whether neurons respond to small objects and irregularities directly in the cat's path that cause adjustment in paw placement during real locomotion. Behavioral experiments will explore the range of objects and irregularities that cause stride adjustment. Most importantly, they will be used to test visual function during locomotion after lesions of LS to directly assess this area's contribution to visual guidance of locomotion.

Agency
National Institute of Health (NIH)
Institute
National Eye Institute (NEI)
Type
Research Project (R01)
Project #
5R01EY004847-14
Application #
2888143
Study Section
Visual Sciences B Study Section (VISB)
Project Start
1983-07-01
Project End
2001-08-31
Budget Start
1999-09-01
Budget End
2000-08-31
Support Year
14
Fiscal Year
1999
Total Cost
Indirect Cost
Name
University of Washington
Department
Anatomy/Cell Biology
Type
Schools of Medicine
DUNS #
135646524
City
Seattle
State
WA
Country
United States
Zip Code
98195