Lee Eunsoo, Sun Woong
Department of Anatomy, Korea University College of Medicine.
Department of Anatomy, Korea University College of Medicine;
J Vis Exp. 2016 Dec 31(118):54904. doi: 10.3791/54904.
The identification and exploration of the detailed organization of organs or of the whole body at the cellular level are fundamental challenges in biology. Transitional methods require a substantial amount of time and effort to obtain a 3D image and including sectioning the intact tissue, immunolabeling, and imaging serially-sectioned tissue, which produces a loss of information at each step of the process. In recently developed approaches for high-resolution imaging within intact tissue, molecular characterization has been restricted to the labeling of proteins. However, currently available protocols for organ clearing require a considerably long process time, making it difficult to implement tissue clearing techniques in the lab. We recently established a rapid and highly-reproducible protocol termed ACT-PRESTO (active clarity technique-pressure related efficient and stable transfer of macromolecules into organs), which allows for tissue clearance within several hours. Moreover, ACT-PRESTO enables rapid immunolabeling with conventional methods and accelerates antibody penetration into the deep layer of densely-formed, thick specimens by applying pressure or convection flow. We describe how to prepare tissues, how to clear by lipid removal using electrophoresis, and how to immuno-stain by a pressure-assisted delivery. The rapidity and consistency of the protocol will expedite the performance of 3D histological research and volume-based diagnoses.
在细胞水平上识别和探索器官或整个身体的详细组织结构是生物学中的基本挑战。传统方法需要大量时间和精力来获取三维图像,包括对完整组织进行切片、免疫标记以及对连续切片的组织进行成像,而这一过程的每一步都会导致信息丢失。在最近开发的用于完整组织高分辨率成像的方法中,分子表征仅限于蛋白质标记。然而,目前可用的器官透明化方案需要相当长的处理时间,这使得在实验室中实施组织透明化技术变得困难。我们最近建立了一种快速且高度可重复的方案,称为ACT-PRESTO(活性透明技术-与压力相关的大分子高效稳定转移到器官中),该方案可在数小时内实现组织透明化。此外,ACT-PRESTO能够通过传统方法进行快速免疫标记,并通过施加压力或对流加速抗体渗透到密集形成的厚标本深层。我们描述了如何制备组织、如何通过电泳去除脂质进行透明化以及如何通过压力辅助递送进行免疫染色。该方案的快速性和一致性将加快三维组织学研究和基于体积的诊断的开展。