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bioRxiv · 10.1101/2020.11.03.366682

Variations in photoreceptor throughput to mouse visual cortex and the unique effects on tuning

Abstract

Visual input to primary visual cortex (V1) depends on highly adaptive filtering in the retina. In turn, isolation of V1 computations to study cortical circuits requires control over retinal adaption and its corresponding spatio-temporal-chromatic output. Here, we first measure the balance of input to V1 from the three main photoreceptor opsins - M-opsin, S-opsin, and rhodopsin - as a function of light adaption and retinotopy. Results show that V1 is rod-mediated in common laboratory settings, yet cone-mediated in natural daylight, as evidenced by exclusive sensitivity to UV wavelengths via cone S-opsin in the upper visual field. Next, we show that cone-mediated V1 responds to 2.5-fold higher temporal frequencies than rod-mediated V1. Furthermore, cone-mediated V1 has smaller RFs, yet similar spatial frequency tuning. V1 responses in rod-deficient (Gnat1-/-) mice confirm that the effects are due to differences in photoreceptor contribution. This study provides foundation for using mouse V1 to study cortical circuits.

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Rhim, I., Coello-Reyes, G., Nauhaus, I.. 2020-11-04. Variations in photoreceptor throughput to mouse visual cortex and the unique effects on tuning. https://doi.org/10.1101/2020.11.03.366682

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