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首页> 外文期刊>Cell Reports >Sustained Rhythmic Brain Activity Underlies Visual Motion Perception in Zebrafish
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Sustained Rhythmic Brain Activity Underlies Visual Motion Perception in Zebrafish

机译:持续的有节奏的大脑活动是斑马鱼视觉运动感知的基础

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摘要

Following moving visual stimuli (conditioning stimuli, CS), many organisms perceive, in the absence of physical stimuli, illusory motion in the opposite direction. This phenomenon is known as the motion aftereffect (MAE). Here, we use MAE as a tool to study the neuronal basis of visual motion perception in zebrafish larvae. Using zebrafish eye movements as an indicator of visual motion perception, we find that larvae perceive MAE. Blocking eye movements using optogenetics during CS presentation did not affect MAE, but tectal ablation significantly weakened it. Using two-photon calcium imaging of behaving GCaMP3 larvae, we find post-stimulation sustained rhythmic activity among direction-selective tectal neurons associated with the perception of MAE. In addition, tectal neurons tuned to the CS direction habituated, but neurons in the retina did not. Finally, a model based on competition between direction-selective neurons reproduced MAE, suggesting a neuronal circuit capable of generating perception of visual motion.
机译:在移动视觉刺激(条件刺激,CS)之后,在没有物理刺激的情况下,许多生物体会感知到相反方向的虚幻运动。这种现象称为运动后效应(MAE)。在这里,我们使用MAE作为研究斑马鱼幼虫视觉运动感知的神经元基础的工具。使用斑马鱼的眼动作为视觉运动感知的指标,我们发现幼虫感知到MAE。在CS表现期间使用光遗传学来阻止眼球运动并不影响MAE,但顶盖消融术明显减弱了MAE。使用行为GCaMP3幼虫的双光子钙成像,我们发现与MAE感知相关的方向选择性支配神经元之间的刺激后持续节律活动。另外,向CS方向调整的顶盖神经元习惯了,但是视网膜中的神经元却没有。最后,基于方向选择性神经元之间竞争的模型复制了MAE,表明了能够产生视觉运动感知的神经元回路。

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