Susaki Etsuo A
Department of Biochemistry and Systems Biomedicine, Juntendo University Graduate School of Medicine, 2-2-1, Hongo, Bunkyo-ku, Tokyo, Japan.
Nakatani Biomedical Spatialomics Hub, Juntendo University Graduate School of Medicine, 2-2-1, Hongo, Bunkyo-ku, Tokyo, Japan.
Microscopy (Oxf). 2024 Sep 28. doi: 10.1093/jmicro/dfae046.
The three-dimensional (3D) anatomical structure of living organisms is intrinsically linked to their functions, yet modern life sciences have not fully explored this aspect. Recently, the combination of efficient tissue clearing techniques and light-sheet fluorescence microscopy (LSFM) for rapid 3D imaging has improved access to 3D spatial information in biological systems. This technology has found applications in various fields, including neuroscience, cancer research, and clinical histopathology, leading to significant insights. It allows imaging of entire organs or even whole bodies of animals and humans at multiple scales. Moreover, it enables a form of spatial omics by capturing and analyzing cellome information, which represents the complete spatial organization of cells. While current 3D imaging of cleared tissues has limitations in obtaining sufficient molecular information, emerging technologies such as multi-round tissue staining and super-multicolor imaging are expected to address these constraints. 3D imaging using tissue clearing and light-sheet microscopy thus offers a valuable research tool in the current and future life sciences for acquiring and analyzing large-scale biological spatial information.
生物体的三维(3D)解剖结构与其功能有着内在联系,但现代生命科学尚未充分探索这一方面。最近,高效组织透明化技术与光片荧光显微镜(LSFM)相结合用于快速3D成像,改善了在生物系统中获取3D空间信息的途径。这项技术已在包括神经科学、癌症研究和临床组织病理学在内的各个领域得到应用,带来了重要的见解。它能够在多个尺度上对动物和人类的整个器官甚至全身进行成像。此外,通过捕获和分析细胞组信息,它实现了一种空间组学形式,细胞组信息代表了细胞的完整空间组织。虽然目前对透明化组织的3D成像在获取足够分子信息方面存在局限性,但诸如多轮组织染色和超多色成像等新兴技术有望解决这些限制。因此,使用组织透明化和光片显微镜的3D成像为当前和未来生命科学提供了一种有价值的研究工具,用于获取和分析大规模生物空间信息。