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视顶盖在视觉诱发定向和回避运动中的作用。

The role of the optic tectum for visually evoked orienting and evasive movements.

机构信息

Department of Neuroscience, Karolinska Institutet, SE-171 77 Stockholm, Sweden.

Exploratory Research Center on Life and Living Systems (ExCELLS), National Institutes of Natural Sciences, Okazaki, 444-8787 Aichi, Japan.

出版信息

Proc Natl Acad Sci U S A. 2019 Jul 23;116(30):15272-15281. doi: 10.1073/pnas.1907962116. Epub 2019 Jul 11.

Abstract

As animals forage for food and water or evade predators, they must rapidly decide what visual features in the environment deserve attention. In vertebrates, this visuomotor computation is implemented within the neural circuits of the optic tectum (superior colliculus in mammals). However, the mechanisms by which tectum decides whether to approach or evade remain unclear, and also which neural mechanisms underlie this behavioral choice. To address this problem, we used an eye-brain-spinal cord preparation to evaluate how the lamprey responds to visual inputs with distinct stimulus-dependent motor patterns. Using ventral root activity as a behavioral readout, we classified 2 main types of fictive motor responses: () a unilateral burst response corresponding to orientation of the head toward slowly expanding or moving stimuli, particularly within the anterior visual field, and () a unilateral or bilateral burst response triggering fictive avoidance in response to rapidly expanding looming stimuli or moving bars. A selective pharmacological blockade revealed that the brainstem-projecting neurons in the deep layer of the tectum in interaction with local inhibitory interneurons are responsible for selecting between these 2 visually triggered motor actions conveyed through downstream reticulospinal circuits. We suggest that these visual decision-making circuits had evolved in the common ancestor of vertebrates and have been conserved throughout vertebrate phylogeny.

摘要

当动物寻找食物和水或躲避捕食者时,它们必须迅速决定环境中的哪些视觉特征值得关注。在脊椎动物中,这种视觉运动计算是在视顶盖(哺乳动物中的上丘)的神经回路中实现的。然而,视顶盖决定是接近还是回避的机制尚不清楚,也不清楚这种行为选择的基础是哪些神经机制。为了解决这个问题,我们使用了一种眼脑脊髓准备来评估七鳃鳗对具有不同刺激依赖性运动模式的视觉输入的反应。我们使用腹根活动作为行为读出,将 2 种主要的虚构运动反应进行了分类:()与头部朝向缓慢扩展或移动刺激(特别是在前视野中)的方向相对应的单侧爆发反应,和()单侧或双侧爆发反应,对快速扩展的逼近刺激或移动棒触发虚构回避。选择性药理学阻断表明,来自视顶盖深层的投射到脑干的神经元与局部抑制性中间神经元相互作用,负责在通过下游网状脊髓回路传递的这 2 种视觉触发运动动作之间进行选择。我们认为,这些视觉决策电路是在脊椎动物的共同祖先中进化而来的,并在整个脊椎动物系统发育中得到了保留。

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