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The Effect of Microsaccades in the Primary Visual Cortex: Increased Synchronization in the Fovea during a Two-Phase
Yarden Nativ1, Tomer Bouhnik1, Hamutal Slovin2
1The Gonda Multidisciplinary Brain Research Center, Bar-Ilan University, Ramat Gan 5290002, Israel.
Abstract:
Our eyes are never still. Even when we attempt to fixate, the visual gaze is never motionless, as we continuously perform miniature oculomotor movements termed as fixational eye movements. The fastest eye movements during the fixation epochs are termed microsaccades (MSs) that are leading to continual motion of the visual input, affecting mainly neurons in the fovea. Yet our vision appears to be stable. To explain this gap, previous studies suggested the existence of an extraretinal input (ERI) into the visual cortex that can account for the motion and produce visual stability. Here, we investigated the existence of an ERI to V1 fovea in macaque monkeys (male) while they performed spontaneous MSs, during fixation. We used voltage-sensitive dye imaging (VSDI) to measure and characterize at high spatiotemporal resolution the influence of MSs on neural population activity, in the foveal region of the primary visual cortex (V1). Microsaccades, performed over a blank screen, induced a two-phase response modulation: an early suppression followed by an enhancement. A correlation analysis revealed a widespread foveal increase in neural synchronization, peaking around ∼100 ms after MS onset. Next, we investigated the MS effects in the presence of a small visual stimulus and found that this modulation was different from the blank condition yet both modulations coexisted in the fovea. Finally, the VSD response to an external motion of the fixation point could not explain the MS modulation. These results support an ERI that may be involved in visual stabilization already at the level of V1.
Insights
Miniature eye movements called microsaccades (MSs) create visual motion. Researchers found evidence for an extraretinal input (ERI) in the visual cortex, potentially stabilizing vision during these natural eye movements.
Area of Science:
- Neuroscience
- Ophthalmology
- Visual processing
Background:
- Fixational eye movements, including microsaccades (MSs), are continuous.
- These movements cause visual input motion, particularly affecting the fovea.
- Visual stability despite MSs suggests an extraretinal input (ERI).
Purpose of the Study:
- To investigate the existence of ERI in the foveal region of the primary visual cortex (V1).
- To characterize the influence of MSs on neural activity using high spatiotemporal resolution.
- To determine if ERI contributes to visual stability.
Main Methods:
- Voltage-sensitive dye imaging (VSDI) in macaque monkeys (male).
- Measurement of neural population activity during spontaneous MSs.
- Analysis of MS effects with and without visual stimuli.
Main Results:
- MSs induced a two-phase neural response: early suppression followed by enhancement.
- Widespread foveal neural synchronization increased approximately 100 ms after MS onset.
- MS modulation differed with visual stimuli, but both effects coexisted.
Conclusions:
- Results support the existence of an extraretinal input (ERI) to V1.
- ERI may play a role in visual stabilization at the V1 level.
- This mechanism contributes to maintaining visual stability during microsaccades.
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