Active gaze behavior organizes V1 activity in freely-moving marmosets
Li, J.; Singh, V. P.; Mitchell, J. F.; Huk, A. C.; Miller, C. T.
Show abstract
Human and nonhuman primates rely heavily on vision to actively explore and navigate their environment. Although primate visual cortex has been studied extensively in head-fixed animals, little is known about how the primate visual system supports natural, active vision in freely moving animals. Here, we address this gap in the primary visual cortex (V1) by leveraging a head-mounted eye-tracking system while simultaneously recording the activity of ensembles of single V1 neurons in freely moving marmosets. Our results reveal that primate neural activity is tightly driven by visual input and organized by the temporal structure of natural gaze behavior, and these gaze-related responses are largely abolished in the absence of visual input. We further show that distinct phases of gaze movement, i.e. rapid redirection (gaze shift) and subsequent stabilization (fixation), engage separable suppression and enhancement of the V1 responses. The enhancement during fixation was clearly linked to visual input. These findings define the dynamics in V1 that link natural gaze behavior and stimulus-driven responses in freely moving primates. The work opens a previously inaccessible but fundamental regime of primate vision and establishes freely moving paradigms as a foundation for understanding real-world visual processing during ethologically relevant behaviors.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Dendritic Architecture Enables de Novo Computation of Salient Motion in the Superior Colliculus 98%
- Binocular processing facilitates escape behavior through multiple pathways to the superior colliculus 97%
- Binocular integration of retinal motion information underlies optic flow processing by the cortex 97%
Similar papers in this journal
- A precise and adaptive neural mechanism for predictive temporal processing in the frontal cortex 97%
- Slow drift of neural activity as a signature of impulsivity in macaque visual and prefrontal cortex 97%
- Excitation creates a distributed pattern of cortical suppression due to varied recurrent input 97%
Similar papers in this journal
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.