bioRxiv · 10.1101/2021.10.31.466688
A retinal circuit that vetoes optokinetic responses to fast visual motion
Abstract
Optokinetic nystagmus (OKN) complements the vestibulo-ocular reflex (VOR) to stabilize the retinal image during head rotation. OKN is driven by the ON direction-selective ganglion cells (ON DSGCs), a rare class of retinal output neuron that encodes both the direction and speed of global retinal slip. The cells and synaptic circuits that give ON DSGCs their directional tuning are well known, but those dictating their slow-speed preference (and thus OKNs) remain enigmatic. Here, we probe this circuit through patch recordings, functional imaging, genetic manipulation, and serial electron microscopic reconstruction in mouse retina. We confirm earlier evidence that feedforward glycinergic inhibition is the main suppressor of ON DSGC responses to fast motion and reveal a surprising source for this inhibition [boxh] the VGluT3 amacrine cell, a retinal interneuron that releases both glycine and glutamate, exciting some neurons and inhibiting others. We find that VGluT3 cells respond robustly to fast global motion and that their output reaches most RGC types, as well as a diverse group of amacrine and bipolar cells. They enhance the response of ON-OFF DSGCs to fast motion, while suppressing it in ON DSGCs. Together, our results identify a novel role for VGluT3 cells, limiting the range of retinal slip speeds that drive image-stabilizing eye movements. More broadly, they suggest VGluT3 cells shape the response of many RGCs and amacrine cells to fast motion.
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Mani, A., Yang, X., Zhao, T., Berson, D. M.. 2021-11-03. A retinal circuit that vetoes optokinetic responses to fast visual motion. https://doi.org/10.1101/2021.10.31.466688
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