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Tissue Clearing and Light Sheet Microscopy: Imaging the Unsectioned Adult Zebra Finch Brain at Cellular Resolution

机译:组织清除和光片显微镜:以细胞分辨率成像未切面的成年斑马雀科大脑

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摘要

The inherent complexity of brain tissue, with brain cells intertwining locally and projecting to distant regions, has made three-dimensional visualization of intact brains a highly desirable but challenging task in neuroscience. The natural opaqueness of tissue has traditionally limited researchers to techniques short of single cell resolution such as computer tomography or magnetic resonance imaging. By contrast, techniques with single-cell resolution required mechanical slicing into thin sections, which entails tissue distortions that severely hinder accurate reconstruction of large volumes. Recent developments in tissue clearing and light sheet microscopy have made it possible to investigate large volumes at micrometer resolution. The value of tissue clearing has been shown in a variety of tissue types and animal models. However, its potential for examining the songbird brain remains unexplored. Songbirds are an established model system for the study of vocal learning and sensorimotor control. They share with humans the capacity to adapt vocalizations based on auditory input. Song learning and production are controlled in songbirds by the song system, which forms a network of interconnected discrete brain nuclei. Here, we use the CUBIC and iDISCO+ protocols for clearing adult songbird brain tissue. Combined with light sheet imaging, we show the potential of tissue clearing for the investigation of connectivity between song nuclei, as well as for neuroanatomy and brain vasculature studies.
机译:脑组织固有的复杂性,使脑细胞局部缠绕并投射到远处,已经使完整的大脑的三维可视化成为神经科学中非常需要但具有挑战性的任务。传统上,组织的自然不透明性使研究人员只能使用缺乏单细胞分辨率的技术,例如计算机断层扫描或磁共振成像。相比之下,具有单细胞分辨率的技术需要机械切成薄片,这会导致组织变形,从而严重妨碍大体积的精确重建。组织清除和光片显微镜的最新发展使得以微米分辨率研究大体积成为可能。组织清除的价值已在多种组织类型和动物模型中得到证明。但是,其用于检查鸣禽大脑的潜力仍未开发。鸣禽是用于语音学习和感觉运动控制研究的已建立模型系统。他们与人类共享根据听觉输入来适应发声的能力。歌曲系统通过在歌曲鸟中控制歌曲的学习和生产,从而形成相互连接的离散脑核的网络。在这里,我们使用CUBIC和iDISCO +协议清除成年鸣禽的大脑组织。结合光片成像,我们显示出组织清理的潜力,可用于研究歌核之间的连通性以及神经解剖学和脑血管系统研究。

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