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主动组织收缩促进高通量体积映射

High-Throughput Volumetric Mapping Facilitated by Active Tissue SHRINK.

作者信息

Lin Li-En, Colazo Adrian, Bi Xiaotian, Du Jiajun, Wei Lu

机构信息

Division of Chemistry and Chemical Engineering, California Institute of Technology, Pasadena, California, 91125, USA.

出版信息

Small Methods. 2025 Apr 8:e2500382. doi: 10.1002/smtd.202500382.

Abstract

Comprehensive visualization of tissue architecture in large organs such as the brain is crucial for understanding functional relationships across key tissue regions. However, the large size of whole organs makes it challenging to image their entirety with subcellular resolution, often requiring prolonged imaging sessions, volume reconstruction, and compromises in spatial coverage. Here, Scalable Hydrogel-embedded Rapid Imaging of tissue NetworK (SHRINK) is reported to address this challenge through active tissue shrinkage and clearing. Utilizing the identified hydrogel network to preserve the spatial pattern of proteins in situ and remove the uncrosslinked biomolecules to create space, it is shown that SHRINK isotropically drives the reduction of sample sizes down to 16% of their original volume while maintaining high cellular and tissue-level integrity in a reversible manner. The size reduction and the corresponding 3D concentrating of the biomolecules render a more than sixfold enhancement for throughput and signal respectively, which addresses a key bottleneck for the stimulated Raman scattering (SRS) microscopy, ideal for 3D, label-free and super-multiplex tissue mapping. It is further demonstrated that SHRINK-SRS achieves organ-scale mapping of brain, intestine, heart, and kidney tissues. SHRINK offers a powerful approach to overcome traditional imaging barriers, enabling rapid and detailed visualization of large organs.

摘要

对大脑等大型器官的组织结构进行全面可视化,对于理解关键组织区域之间的功能关系至关重要。然而,整个器官的尺寸较大,要以亚细胞分辨率对其整体进行成像具有挑战性,通常需要长时间的成像过程、体积重建,并且在空间覆盖范围上做出妥协。在此,报道了一种可扩展的组织网络水凝胶包埋快速成像技术(SHRINK),通过主动组织收缩和清除来应对这一挑战。利用所确定的水凝胶网络原位保留蛋白质的空间模式,并去除未交联的生物分子以创造空间,结果表明SHRINK以可逆的方式各向同性地将样本尺寸缩小至其原始体积的16%,同时保持高细胞和组织水平的完整性。尺寸的减小以及生物分子相应的三维浓缩分别使通量和信号增强了六倍多,这解决了受激拉曼散射(SRS)显微镜的一个关键瓶颈,SRS显微镜非常适合进行三维、无标记和超多重组织成像。进一步证明了SHRINK-SRS能够实现对脑、肠、心和肾组织的器官尺度成像。SHRINK提供了一种强大的方法来克服传统成像障碍,能够对大型器官进行快速且详细的可视化。

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