The long-term objective of research in this laboratory is to understand how neuronal processing in extrastriate visual cortex contributes to visual perception and visually guided behavior. The proposed research will focus primarily on an extrastriate pathway that is thought to be involved in the analysis of visual motion. This pathway originates in striate cortex, continues through extrastriate areas MT and MST, and terminates in visuomotor regions of the parietal lobe. Recent neurological observations suggest that a similar pathway specifically related to visual motion information is present in humans. Such similarities indicate that the proposed studies of rhesus monkeys are likely to contribute directly to our developing knowledge of human vision and its diseases. Experiments will be carried out in awake, behaving monkeys trained to perform relevant perceptual and visuomotor tasks. Behavioral experiments are proposed that will identify the cortical areas involved in the perception of pattern on the basis of relative motion cues. Physiological experiments will investigate the neuronal basis of perceptual capabilities that we have studied psychophysically. An important component of this effort is to identify transformations in the visual information encoded by single neurons at progressively higher levels of the motion pathway. In particular, we will examine the physiological transformations that permit extraction of motion signals from a masking visual noise, and that permit reliable judgements of speed of moving objects. In the course of our visual experiments, we have developed a new behavioral paradigm that holds great promise for acquiring insight into the sensorimotor linkage between the visual and oculomotor systems. The key issue to be studied is how primates """"""""select"""""""" visual targets for eye movements from among the many competing stimuli present in the visual image. In the new behavioral paradigm the """"""""selection"""""""" event is separated in time from both the onset of the targets and execution of the eye movement. It is therefore possible to search for neuronal correlates of this higher order """"""""selection"""""""" event in isolation from the strictly sensory and motor aspects of the task. Such experiments will shed light on the physiological mechanisms by which attentional phenomena mediate the interactions between sensory and motor systems.

Agency
National Institute of Health (NIH)
Institute
National Eye Institute (NEI)
Type
Research Project (R01)
Project #
5R01EY005603-08
Application #
3260786
Study Section
Biopsychology Study Section (BPO)
Project Start
1985-01-01
Project End
1992-12-31
Budget Start
1992-01-03
Budget End
1992-12-31
Support Year
8
Fiscal Year
1992
Total Cost
Indirect Cost
Name
Stanford University
Department
Type
Schools of Medicine
DUNS #
800771545
City
Stanford
State
CA
Country
United States
Zip Code
94305
Fiorillo, Christopher D; Yun, Sora R; Song, Minryung R (2013) Diversity and homogeneity in responses of midbrain dopamine neurons. J Neurosci 33:4693-709
Fiorillo, Christopher D; Song, Minryung R; Yun, Sora R (2013) Multiphasic temporal dynamics in responses of midbrain dopamine neurons to appetitive and aversive stimuli. J Neurosci 33:4710-25
Hedges, James H; Gartshteyn, Yevgeniya; Kohn, Adam et al. (2011) Dissociation of neuronal and psychophysical responses to local and global motion. Curr Biol 21:2023-8
Churchland, Mark M; Yu, Byron M; Cunningham, John P et al. (2010) Stimulus onset quenches neural variability: a widespread cortical phenomenon. Nat Neurosci 13:369-78
Cohen, Marlene R; Newsome, William T (2009) Estimates of the contribution of single neurons to perception depend on timescale and noise correlation. J Neurosci 29:6635-48
Cohen, Marlene R; Newsome, William T (2008) Context-dependent changes in functional circuitry in visual area MT. Neuron 60:162-73
Newsome, W T; Pare, E B (1988) A selective impairment of motion perception following lesions of the middle temporal visual area (MT). J Neurosci 8:2201-11