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The Evolution and Development of Neural Superposition

机译:神经叠加的演化与发展

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Visual systems have a rich history as model systems for the discovery and understanding of basic principles underlying neuronal connectivity. The compound eyes of insects consist of up to thousands of small unit eyes that are connected by photoreceptor axons to set up a visual map in the brain. The photoreceptor axon terminals thereby represent neighboring points seen in the environment in neighboring synaptic units in the brain. Neural superposition is a special case of such a wiring principle, where photoreceptors from different unit eyes that receive the same input converge upon the same synaptic units in the brain. This wiring principle is remarkable, because each photoreceptor in a single unit eye receives different input and each individual axon, among thousands others in the brain, must be sorted together with those few axons that have the same input. Key aspects of neural superposition have been described as early as 1907. Since then neuroscientists, evolutionary and developmental biologists have been fascinated by how such a complicated wiring principle could evolve, how it is genetically encoded, and how it is developmentally realized. In this review article, we will discuss current ideas about the evolutionary origin and developmental program of neural superposition. Our goal is to identify in what way the special case of neural superposition can help us answer more general questions about the evolution and development of genetically "hard-wired" synaptic connectivity in the brain.
机译:视觉系统作为模型系统具有丰富的历史,可用于发现和理解神经元连通性的基本原理。昆虫的复眼由多达数千个小单位眼睛组成,这些小单位眼睛通过感光轴突连接在一起,从而在大脑中建立可视化图。因此,光感受器轴突末端代表在环境中在大脑中邻近突触单元中看到的邻近点。神经叠加是这种接线原理的特例,来自接收相同输入的不同单位眼睛的感光器会聚在大脑中相同的突触单元上。这种接线原理非常出色,因为单个单元眼中的每个感光器都接收不同的输入,并且每个单独的轴突以及大脑中成千上万的其他轴突必须与输入相同的少数轴突一起进行分类。早在1907年就已经描述了神经叠加的关键方面。从那时起,神经科学家,进化生物学家和发育生物学家就对这种复杂的接线原理如何演化,如何进行遗传编码以及如何实现发展着迷。在这篇评论文章中,我们将讨论有关神经叠加的进化起源和发展程序的最新思想。我们的目标是确定神经叠加的特殊情况可以以何种方式帮助我们回答有关遗传“硬连线”突触在大脑中的进化和发育的更一般的问题。

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