Smooth pursuit eye movements are a well-understood behavior with a known neural substrate. Pursuit is generated when a target moves smoothly. It depends on a traditional cortical-cerebellar circuit with inputs from sensory cortex, processing in parietal sensory-motor areas, and motor commands from a frontal motor area. Outputs from the cerebral cortex interact with cerebro-cerebellar circuits and cerebro-basal ganglia circuits to generate motor commands. Much is known about the mean responses of neurons in these areas and how they contribute to the generation of the average pursuit movement. However, the analysis of variation in neural codes and pursuit behavior opens a new vista. The sensory input for pursuit is highly variable, yet the behavior itself is remarkably precise. The presence and ease of quantifying variation in the neural signals and the behavior offers the opportunity to ask where neural variation falls on the continuum from being a negative, neutral, or positive component of the neural generation of behavior. This project will focus on the frontal pursuit area (FPA), near the saccadic frontal eye fields and will ask 3 questions that are tightly linked to the aims of the Conte Center for Neuroscience Research. First, it will ask how much the neural code in the FPA varies and what fractions of the variance are 1) related to the behavior and 2) """"""""residual"""""""", unrelated to the behavior. How do these fractions vary over the different phases of a pursuit movement? Second, it will use differential reward and penalty to modulate the distribution of behavioral variation and explore how that variation is effected by changes in the neural variation in the FPA. Third, it will explore neural variation in the FPA during the instructional period for visually-guided learning in pursuit, and during the subsequent expression of learning. The research in this project will contribute to the overall goals of the CCNR by providing an exemplar behavior where narrowly defined, quantitative questions can be answered about the specific roles of neural variation in a tightly controlled and well-understood behavior. In addition, an understanding of how the frontal cortex controls pursuit may help us to understand why schizophrenics have such profound deficits in smooth pursuit eye movements.

Agency
National Institute of Health (NIH)
Institute
National Institute of Mental Health (NIMH)
Type
Specialized Center (P50)
Project #
5P50MH077970-05
Application #
8141342
Study Section
Special Emphasis Panel (ZMH1)
Project Start
2010-09-01
Project End
2011-08-31
Budget Start
2010-09-01
Budget End
2012-08-31
Support Year
5
Fiscal Year
2010
Total Cost
$176,215
Indirect Cost
Name
University of California San Francisco
Department
Type
DUNS #
094878337
City
San Francisco
State
CA
Country
United States
Zip Code
94143
Chaisanguanthum, Kris S; Shen, Helen H; Sabes, Philip N (2017) Neural Representation and Causal Models in Motor Cortex. J Neurosci 37:3413-3424
Cheung, Steven W; Atencio, Craig A; Levy, Eliott R J et al. (2017) Anisomorphic cortical reorganization in asymmetric sensorineural hearing loss. J Neurophysiol 118:932-948
Yazdan-Shahmorad, Azadeh; Diaz-Botia, Camilo; Hanson, Timothy L et al. (2016) A Large-Scale Interface for Optogenetic Stimulation and Recording in Nonhuman Primates. Neuron 89:927-39
Zhou, Miou; Greenhill, Stuart; Huang, Shan et al. (2016) CCR5 is a suppressor for cortical plasticity and hippocampal learning and memory. Elife 5:
Malone, Brian J; Beitel, Ralph E; Vollmer, Maike et al. (2015) Modulation-frequency-specific adaptation in awake auditory cortex. J Neurosci 35:5904-16
Ravits, John (2014) Focality, stochasticity and neuroanatomic propagation in ALS pathogenesis. Exp Neurol 262 Pt B:121-6
Chaisanguanthum, Kris S; Shen, Helen H; Sabes, Philip N (2014) Motor variability arises from a slow random walk in neural state. J Neurosci 34:12071-80
Atencio, Craig A; Shih, Jonathan Y; Schreiner, Christoph E et al. (2014) Primary auditory cortical responses to electrical stimulation of the thalamus. J Neurophysiol 111:1077-87
Schreiner, Christoph E; Polley, Daniel B (2014) Auditory map plasticity: diversity in causes and consequences. Curr Opin Neurobiol 24:143-56
Malone, Brian J; Beitel, Ralph E; Vollmer, Maike et al. (2013) Spectral context affects temporal processing in awake auditory cortex. J Neurosci 33:9431-50

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