European Laboratory for Non-linear Spectroscopy (LENS), University of Florence, Sesto Fiorentino, Italy.
Department of Physics and Astronomy, University of Florence, Sesto Fiorentino, Italy.
Commun Biol. 2022 May 12;5(1):447. doi: 10.1038/s42003-022-03390-0.
The combination of optical tissue transparency with immunofluorescence allows the molecular characterization of biological tissues in 3D. However, adult human organs are particularly challenging to become transparent because of the autofluorescence contributions of aged tissues. To meet this challenge, we optimized SHORT (SWITCH-HO-antigen Retrieval-TDE), a procedure based on standard histological treatments in combination with a refined clearing procedure to clear and label portions of the human brain. 3D histological characterization with multiple molecules is performed on cleared samples with a combination of multi-colors and multi-rounds labeling. By performing fast 3D imaging of the samples with a custom-made inverted light-sheet fluorescence microscope (LSFM), we reveal fine details of intact human brain slabs at subcellular resolution. Overall, we proposed a scalable and versatile technology that in combination with LSFM allows mapping the cellular and molecular architecture of the human brain, paving the way to reconstruct the entire organ.
光学组织透明化与免疫荧光相结合,可实现 3D 生物组织的分子特征分析。然而,由于老年组织的自发荧光贡献,成人器官特别难以实现透明化。为了应对这一挑战,我们优化了 SHORT(SWITCH-HO-antigen Retrieval-TDE),这是一种基于标准组织学处理方法与改良透明化处理相结合的方法,可用于部分人脑的透明化和标记。通过结合多色和多轮标记,在经过处理的样本上进行 3D 组织学特征分析,可实现多分子检测。通过使用定制的倒置光片荧光显微镜(LSFM)对样本进行快速 3D 成像,我们揭示了亚细胞分辨率下完整人脑切片的精细细节。总之,我们提出了一种可扩展且通用的技术,与 LSFM 相结合,可用于绘制人脑的细胞和分子结构图谱,为重建整个器官铺平了道路。