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鸟类视丘外侧通路的组织学和 DiceCT 三维重建。

A histological and diceCT-derived 3D reconstruction of the avian visual thalamofugal pathway.

机构信息

Poultry Science Department, University of Arkansas, Fayetteville, AR, USA.

Cellular and Molecular Medicine Department, University of Arizona Health Sciences, Tucson, AZ, USA.

出版信息

Sci Rep. 2024 Apr 11;14(1):8447. doi: 10.1038/s41598-024-58788-z.

Abstract

Amniotes feature two principal visual processing systems: the tectofugal and thalamofugal pathways. In most mammals, the thalamofugal pathway predominates, routing retinal afferents through the dorsolateral geniculate complex to the visual cortex. In most birds, the thalamofugal pathway often plays the lesser role with retinal afferents projecting to the principal optic thalami, a complex of several nuclei that resides in the dorsal thalamus. This thalamic complex sends projections to a forebrain structure called the Wulst, the terminus of the thalamofugal visual system. The thalamofugal pathway in birds serves many functions such as pattern discrimination, spatial memory, and navigation/migration. A comprehensive analysis of avian species has unveiled diverse subdivisions within the thalamic and forebrain structures, contingent on species, age, and techniques utilized. In this study, we documented the thalamofugal system in three dimensions by integrating histological and contrast-enhanced computed tomography imaging of the avian brain. Sections of two-week-old chick brains were cut in either coronal, sagittal, or horizontal planes and stained with Nissl and either Gallyas silver or Luxol Fast Blue. The thalamic principal optic complex and pallial Wulst were subdivided on the basis of cell and fiber density. Additionally, we utilized the technique of diffusible iodine-based contrast-enhanced computed tomography (diceCT) on a 5-week-old chick brain, and right eyeball. By merging diceCT data, stained histological sections, and information from the existing literature, a comprehensive three-dimensional model of the avian thalamofugal pathway was constructed. The use of a 3D model provides a clearer understanding of the structural and spatial organization of the thalamofugal system. The ability to integrate histochemical sections with diceCT 3D modeling is critical to better understanding the anatomical and physiologic organization of complex pathways such as the thalamofugal visual system.

摘要

羊膜动物具有两个主要的视觉处理系统

外顶盖和丘脑外顶盖途径。在大多数哺乳动物中,丘脑外顶盖途径占主导地位,将视网膜传入纤维通过背外侧膝状体复合体传递到视皮层。在大多数鸟类中,丘脑外顶盖途径通常扮演次要角色,视网膜传入纤维投射到主要视丘,这是一个位于背侧丘脑的几个核团的复杂结构。这个丘脑复合体向一个称为脑叶的前脑结构发送投射,这是丘脑外顶盖视觉系统的末端。鸟类的丘脑外顶盖途径具有多种功能,如模式识别、空间记忆和导航/迁移。对鸟类物种的全面分析揭示了丘脑和前脑结构内的不同细分,这取决于物种、年龄和使用的技术。在这项研究中,我们通过整合鸟类大脑的组织学和增强对比度的计算机断层扫描成像,从三维角度记录了丘脑外顶盖系统。两周大的小鸡大脑切片可以在冠状、矢状或水平平面上进行,并使用 Nissl 染色和 Gallyas 银染色或 Luxol Fast Blue 染色。基于细胞和纤维密度,将丘脑主要视丘复合体和脑叶脑叶细分。此外,我们在一只 5 周大的小鸡大脑和右眼球上使用了基于可扩散碘的对比增强计算机断层扫描(diceCT)技术。通过合并 diceCT 数据、染色组织学切片以及现有文献信息,构建了一个全面的鸟类丘脑外顶盖通路三维模型。使用三维模型可以更清楚地了解丘脑外顶盖系统的结构和空间组织。将组织化学切片与 diceCT 三维建模相结合的能力对于更好地理解复杂通路(如丘脑外顶盖视觉系统)的解剖和生理组织至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cc1e/11006926/fa7e6f3cf376/41598_2024_58788_Fig1_HTML.jpg

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