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Peripheral visual circuits functionally segregate motion and phototaxis behaviors in the fly

机译:外围视觉电路在功能上隔离飞行中的运动和趋光性行为

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Like the mammalian visual cortex, the fly visual system is organized into retinotopic columns. A widely accepted biophysical model for computing visual motion, the elementary motion detector proposed nearly 50 years ago posits a temporal correlation of spatially separated visual inputs implemented across neighboring retinotopic visual columns. Whereas the inputs are defined, the neural substrate for motion computation remains enigmatic. Indeed, it is not known where in the visual processing hierarchy the computation occurs. Here, we combine genetic manipulations with a novel high-throughput dynamic behavioral analysis system to dissect visual circuits required for directional optomotor responses. An enhancer trap screen of synapse-inactivated neural circuits revealed one particularly striking phenotype, which is completely insensitive to motion yet displays fully intact fast phototaxis, indicating that these animals are generally capable of seeing and walking but are unable to respond to motion stimuli. The enhancer circuit is localized within the first optic relay and strongly labels the only columnar interneuron known to interact with neighboring columns both in the lamina and medulla, spatial synaptic interactions that correspond with the two dominant axes of elementary motion detectors on the retinal lattice.
机译:像哺乳动物的视觉皮层一样,苍蝇的视觉系统也被组织成视网膜视点列。基本运动检测器是近50年前提出的一种广泛用于计算视觉运动的生物物理模型,它假设了跨相邻视网膜视点视觉列实现的空间分隔视觉输入的时间相关性。尽管定义了输入,但是用于运动计算的神经底物仍然是未知的。实际上,尚不知道在视觉处理层次结构中何处进行计算。在这里,我们将基因操纵与新颖的高通量动态行为分析系统相结合,以剖析定向光动力反应所需的视觉电路。突触灭活的神经回路的增强子陷阱屏幕显示了一个特别醒目的表型,该表型对运动完全不敏感,但显示出完整的快速趋光性,表明这些动物通常能够看见和行走,但不能对运动刺激做出反应。增强器电路位于第一光学继电器内,并强烈标记已知与椎板和髓质中相邻列相互作用的唯一柱状中间神经元,其空间突触相互作用与视网膜晶格上基本运动检测器的两个主导轴相对应。

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