This project proposes using the techniques of optical imaging and single unit recording to analyse the substrates for direction specificity in primary visual cortex of the ferret. The issue raised is that the various aspects of single moving objects present conflicting cues as to the direction of its motion (e.g. as illustrated by motion of contours in an aperture, or the barber pole illusion).Yet the visual system resolves these differences to predict an overall direction of motion and an accurate guide to eye movements. The proposed studies examine in detail the neuron population responses in V1 (by optical imaging) to movement of both oriented contour motion and the terminations of the same contour (which may be equated with dot motion). The experiments test the hypothesis that the perceived direction of motion is a weighted sum of the responses to the different directions of motion present in the stimulus. This sum can be affected by length of contour, contrast and speed. Single unit recording will be used to test the properties of single neurons at different points in the optical maps, to verify the map predictions, to test for variability of responses at single points, to test spatial interactions between terminal point and contour driven activity, and, together with voltage sensitive dye imaging, to examine differences in temporal evolution of signals from terminators and contours.

Agency
National Institute of Health (NIH)
Institute
National Eye Institute (NEI)
Type
Research Project (R01)
Project #
5R01EY011488-10
Application #
7012184
Study Section
Special Emphasis Panel (ZRG1-SSS-R (02))
Program Officer
Oberdorfer, Michael
Project Start
1996-08-01
Project End
2007-02-28
Budget Start
2006-02-01
Budget End
2007-02-28
Support Year
10
Fiscal Year
2006
Total Cost
$338,358
Indirect Cost
Name
Duke University
Department
Biology
Type
Schools of Medicine
DUNS #
044387793
City
Durham
State
NC
Country
United States
Zip Code
27705
Smith, Gordon B; Hein, Bettina; Whitney, David E et al. (2018) Distributed network interactions and their emergence in developing neocortex. Nat Neurosci 21:1600-1608
Scholl, Benjamin; Wilson, Daniel E; Fitzpatrick, David (2017) Local Order within Global Disorder: Synaptic Architecture of Visual Space. Neuron 96:1127-1138.e4
Lu, Rongwen; Sun, Wenzhi; Liang, Yajie et al. (2017) Video-rate volumetric functional imaging of the brain at synaptic resolution. Nat Neurosci 20:620-628
Wilson, Daniel E; Smith, Gordon B; Jacob, Amanda L et al. (2017) GABAergic Neurons in Ferret Visual Cortex Participate in Functionally Specific Networks. Neuron 93:1058-1065.e4
Wilson, Daniel E; Whitney, David E; Scholl, Benjamin et al. (2016) Orientation selectivity and the functional clustering of synaptic inputs in primary visual cortex. Nat Neurosci 19:1003-9
Dimidschstein, Jordane; Chen, Qian; Tremblay, Robin et al. (2016) A viral strategy for targeting and manipulating interneurons across vertebrate species. Nat Neurosci 19:1743-1749
Smith, Gordon B; Fitzpatrick, David (2016) Viral Injection and Cranial Window Implantation for In Vivo Two-Photon Imaging. Methods Mol Biol 1474:171-85
Smith, Gordon B; Sederberg, Audrey; Elyada, Yishai M et al. (2015) The development of cortical circuits for motion discrimination. Nat Neurosci 18:252-61
Smith, Gordon B; Whitney, David E; Fitzpatrick, David (2015) Modular Representation of Luminance Polarity in the Superficial Layers of Primary Visual Cortex. Neuron 88:805-18
Meng, Yicong; Tanaka, Shigeru; Poon, Chi-Sang (2012) Comment on ""Universality in the evolution of orientation columns in the visual cortex"". Science 336:413; author reply 413

Showing the most recent 10 out of 20 publications