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3
Differential Expression Analysis Identifies Candidate Synaptogenic Molecules for Wiring Direction-Selective Circuits in the Retina.
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bioRxiv. 2025 May 8:2025.05.02.651955. doi: 10.1101/2025.05.02.651955.
4
Accessing genetically defined cell types in the superior colliculus with transgenic mouse lines.利用转基因小鼠品系研究上丘中基因定义的细胞类型。
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Co-Conservation of Synaptic Gene Expression and Circuitry in Collicular Neurons.上丘神经元中突触基因表达与神经回路的共同保守性
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上丘中视觉运动转换的基因定义神经元类型。

Genetically defined neuron types underlying visuomotor transformation in the superior colliculus.

机构信息

Department of Biology, University of Virginia, Charlottesville, VA, USA.

Department of Psychology, University of Virginia, Charlottesville, VA, USA.

出版信息

Nat Rev Neurosci. 2024 Nov;25(11):726-739. doi: 10.1038/s41583-024-00856-4. Epub 2024 Sep 27.

DOI:10.1038/s41583-024-00856-4
PMID:39333418
Abstract

The superior colliculus (SC) is a conserved midbrain structure that is important for transforming visual and other sensory information into motor actions. Decades of investigations in numerous species have made the SC and its nonmammalian homologue, the optic tectum, one of the best studied structures in the brain, with rich information now available regarding its anatomical organization, its extensive inputs and outputs and its important functions in many reflexive and cognitive behaviours. Excitingly, recent studies using modern genomic and physiological approaches have begun to reveal the diverse neuronal subtypes in the SC, as well as their unique functions in visuomotor transformation. Studies have also started to uncover how subtypes of SC neurons form intricate circuits to mediate visual processing and visually guided behaviours. Here, we review these recent discoveries on the cell types and neuronal circuits underlying visuomotor transformations mediated by the SC. We also highlight the important future directions made possible by these new developments.

摘要

上丘(SC)是一个保守的中脑结构,对于将视觉和其他感觉信息转化为运动动作非常重要。在众多物种中进行的数十年研究使 SC 及其非哺乳动物同源物,视顶盖,成为大脑中研究最充分的结构之一,现在有关于其解剖组织,广泛的输入和输出以及在许多反射和认知行为中的重要功能的丰富信息。令人兴奋的是,最近使用现代基因组和生理学方法的研究开始揭示 SC 中的多种神经元亚型,以及它们在视觉运动转换中的独特功能。研究也开始揭示 SC 神经元的亚型如何形成错综复杂的回路来介导视觉处理和视觉引导的行为。在这里,我们回顾了这些关于由 SC 介导的视觉运动转换的细胞类型和神经元回路的最新发现。我们还强调了这些新发展带来的重要未来方向。