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Spatially displaced excitation contributes to the encoding of interrupted motion by a retinal direction-selective circuit

机译:空间移位的激励有助于通过视网膜方向选择性电路对中断运动的编码

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摘要

Spatially distributed excitation and inhibition collectively shape a visual neuron’s receptive field (RF) properties. In the direction-selective circuit of the mammalian retina, the role of strong null-direction inhibition of On-Off direction-selective ganglion cells (On-Off DSGCs) on their direction selectivity is well-studied. However, how excitatory inputs influence the On-Off DSGC’s visual response is underexplored. Here, we report that On-Off DSGCs have a spatially displaced glutamatergic receptive field along their horizontal preferred-null motion axes. This displaced receptive field contributes to DSGC null-direction spiking during interrupted motion trajectories. Theoretical analyses indicate that population responses during interrupted motion may help populations of On-Off DSGCs signal the spatial location of moving objects in complex, naturalistic visual environments. Our study highlights that the direction-selective circuit exploits separate sets of mechanisms under different stimulus conditions, and these mechanisms may help encode multiple visual features.
机译:空间分布的激发和抑制共同形成视觉神经元的接收领域(RF)性质。在哺乳动物视网膜的方向选择性电路中,良好地研究了在其方向选择性方向上选择性神经节细胞(ON-OFF DSGC)的强零点抑制的作用。但是,兴奋输入如何影响开关的DSGC的视觉响应是曝光率的。这里,我们报告了开关DSGCS沿着它们的水平优选的空动作轴具有空间移位的谷氨酸谷谷接收领域。这种位移的接收领域有助于在中断运动轨迹期间的DSGC无效尖峰。理论分析表明,中断运动期间的人口响应可以帮助开关DSGCS的填充信号在复杂的自然主义视觉环境中移动物体的空间位置。我们的研究突出显示方向选择电路在不同的刺激条件下利用单独的机制组,这些机制可以帮助编码多个视觉特征。

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