Temporally organized activity in mouse V1 encodes newly sampled visual content during free movement

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Abstract

Natural vision is continuously shaped by an animal’s own movements, which determine what enters the visual system and when visual input changes. Gaze shifts are known to initiate a temporally structured sequence of activity in primary visual cortex (V1), but how the visual content sampled by each movement contributes to this sequence has remained unclear. We recorded visual input, eye and head movements, and V1 activity in freely moving mice, and asked how the visual content sampled on each gaze shift shapes the response. The magnitude of visual change induced by each gaze shift scaled the amplitude of responses according to each neuron’s characteristic response profile, while movement amplitude alone did not reproduce this modulation in darkness, supporting a role of visual input in driving the sequence. Activity following gaze shifts reflected each neuron’s spatial receptive field structure, and visual filters estimated under head-fixed conditions predicted the relative timing of spike responses during gaze shifts of freely moving animals, demonstrating that gaze shift responses encode visual information. At the population level, decoded V1 activity shifted toward the scene sampled after each gaze shift. Thus, across single-neuron, spatial, temporal, and population measures, V1 activity tracked the content of each sample beyond movement timing alone, indicating that gaze shifts act as sampling events that result in V1 encoding visual information in temporally ordered responses.

HIGHLIGHTS

  • Gaze shifts result in rapid shifts in the visual input and evoke a temporal sequence of responses in V1

  • The magnitude of visual change across each gaze shift scales the strength of V1 responses

  • Spatial receptive field structure is preserved in the activity following gaze shifts

  • Visual tuning measured during head-fixed conditions predicts the timing of gaze shift responses during free movement

  • Together, these results show that gaze shifts temporally organize V1 coding of newly sampled visual input

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