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具有简单可调扩张比的组织的可扩展各向同性扩张

Scalable and Isotropic Expansion of Tissues with Simply Tunable Expansion Ratio.

作者信息

Park Han-Eol, Choi Dongkil, Park Ji Su, Sim Changgon, Park Sohyun, Kang Sunah, Yim Hyunsoo, Lee Myungsun, Kim Jaeyoun, Pac Jinyoung, Rhee Kunsoo, Lee Junho, Lee Yunjong, Lee Yan, Kim Sung-Yon

机构信息

Institute of Molecular Biology and Genetics Seoul National University Seoul 08826 South Korea.

Department of Biological Sciences Seoul National University Seoul 08826 South Korea.

出版信息

Adv Sci (Weinh). 2019 Sep 30;6(22):1901673. doi: 10.1002/advs.201901673. eCollection 2019 Nov.

Abstract

Tissue expansion techniques physically expand swellable gel-embedded biological specimens to overcome the resolution limit of light microscopy. As the benefits of expansion come at the expense of signal concentration, imaging volume and time, and mechanical integrity of the sample, the optimal expansion ratio may widely differ depending on the experiment. However, existing expansion methods offer only fixed expansion ratios that cannot be easily adjusted to balance the gain and loss associated with expansion. Here, a hydrogel conversion-based expansion method is presented, that enables easy adjustment of the expansion ratio for individual needs, simply by changing the duration of a heating step. This method, termed ZOOM, isotropically expands samples up to eightfold in a single expansion process. ZOOM preserves biomolecules for post-processing labelings and supports multi-round expansion for the imaging of a single sample at multiple zoom factors. ZOOM can be flexibly and scalably applied to nanoscale imaging of diverse samples, ranging from cultured cells to thick tissues, as well as bacteria, exoskeletal , and human brain samples.

摘要

组织扩张技术通过物理方式扩张嵌入可膨胀凝胶的生物样本,以克服光学显微镜的分辨率限制。由于扩张的益处是以信号浓度、成像体积和时间以及样本的机械完整性为代价的,因此最佳扩张率可能因实验而异。然而,现有的扩张方法仅提供固定的扩张率,无法轻松调整以平衡与扩张相关的得失。在此,提出了一种基于水凝胶转化的扩张方法,只需改变加热步骤的持续时间,就能轻松根据个体需求调整扩张率。这种方法称为ZOOM,在单个扩张过程中可将样本各向同性地扩张至八倍。ZOOM保留生物分子以进行后处理标记,并支持对单个样本进行多轮扩张以在多个缩放因子下成像。ZOOM可以灵活且可扩展地应用于从培养细胞到厚组织以及细菌、外骨骼和人脑样本等各种样本的纳米级成像。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c4e2/6864509/c48a1a72ef04/ADVS-6-1901673-g001.jpg

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