Department of Neurobiology, Graduate School of Biomedical and Health Sciences, Hiroshima University, 1-2-3 Kasumi, Minami-ku, Hiroshima, 734-8553, Japan.
Sci Rep. 2023 May 26;13(1):8553. doi: 10.1038/s41598-023-35650-2.
Three-dimensional (3D) imaging at cellular resolution improves our understanding of the brain architecture and is crucial for structural and functional integration as well as for the understanding of normal and pathological conditions in the brain. We developed a wide-field fluorescent microscope for 3D imaging of the brain structures using deep ultraviolet (DUV) light. This microscope allowed fluorescence imaging with optical sectioning due to the large absorption at the surface of the tissue and hence low tissue penetration of DUV light. Multiple channels of fluorophore signals were detected using single or a combination of dyes emitting fluorescence in the visible range of spectrum upon DUV excitation. Combination of this DUV microscope with microcontroller-based motorized stage enabled wide-field imaging of a coronal section of the cerebral hemisphere in mouse for deciphering cytoarchitecture of each substructure in detail. We extended this by integrating vibrating microtome which allowed serial block-face imaging of the brain structure such as the habenula in mouse. Acquired images were with resolution high enough for quantification of the cell numbers and density in the mouse habenula. Upon block-face imaging of the tissues covering entire extent of the cerebral hemisphere of the mouse brain, acquired data were registered and segmented for quantification of cell number in each brain regions. Results in the current analysis indicated that this novel microscope could be a convenient tool for large-scale 3D analysis of the brain in mice.
三维(3D)成像在细胞分辨率上的提高有助于我们理解大脑结构,对于结构和功能的整合以及对大脑正常和病理条件的理解至关重要。我们开发了一种用于使用深紫外(DUV)光进行大脑结构 3D 成像的宽场荧光显微镜。由于组织表面的强吸收以及 DUV 光的低组织穿透性,该显微镜允许进行荧光光学切片成像。使用单一或组合的染料可以检测到多个荧光团信号通道,这些染料在 DUV 激发下发出可见光谱范围内的荧光。将这种 DUV 显微镜与基于微控制器的电动载物台相结合,能够对小鼠大脑的冠状切片进行宽场成像,从而详细解析每个亚结构的细胞结构。我们通过集成振动切片机进一步扩展了这一功能,该切片机允许对小鼠的缰核等大脑结构进行连续块面成像。获得的图像具有足够高的分辨率,可以对小鼠缰核中的细胞数量和密度进行定量分析。在对覆盖小鼠大脑整个半球的组织进行块面成像后,对采集到的数据进行注册和分割,以对每个脑区的细胞数量进行定量分析。目前的分析结果表明,这种新型显微镜可以成为在小鼠中进行大规模 3D 大脑分析的便捷工具。