Key Laboratory for Protein Sciences of Ministry of Education, School of Life Sciences, Tsinghua University, Beijing, 100084, China.
School of Life Sciences, Tsinghua University, Beijing, 100084, China.
Sci Rep. 2023 Apr 11;13(1):5879. doi: 10.1038/s41598-023-32716-z.
Cryo-electron tomography (cryoET) is a powerful tool for exploring the molecular structure of large organisms. However, technical challenges still limit cryoET applications on large samples. In particular, localization and cutting out objects of interest from a large tissue sample are still difficult steps. In this study, we report a sample thinning strategy and workflow for tissue samples based on cryo-focused ion beam (cryoFIB) milling. This workflow provides a full solution for isolating objects of interest by starting from a millimeter-sized tissue sample and ending with hundred-nanometer-thin lamellae. The workflow involves sample fixation, pre-sectioning, a two-step milling strategy, and localization of the object of interest using cellular secondary electron imaging (CSEI). The milling strategy consists of two steps, a coarse milling step to improve the milling efficiency, followed by a fine milling step. The two-step milling creates a furrow-ridge structure with an additional conductive Pt layer to reduce the beam-induced charging issue. CSEI is highlighted in the workflow, which provides on-the-fly localization during cryoFIB milling. Tests of the complete workflow were conducted to demonstrate the high efficiency and high feasibility of the proposed method.
冷冻电子断层扫描(cryoET)是探索大型生物分子结构的有力工具。然而,技术挑战仍然限制了 cryoET 在大型样本上的应用。特别是,从大型组织样本中定位和切割感兴趣的物体仍然是困难的步骤。在本研究中,我们报告了一种基于冷冻聚焦离子束(cryoFIB)铣削的组织样本减薄策略和工作流程。该工作流程提供了一个完整的解决方案,可从毫米大小的组织样本开始,最终得到数百纳米厚的薄片,从而隔离感兴趣的物体。该工作流程涉及样品固定、预切片、两步铣削策略以及使用细胞二次电子成像(CSEI)定位感兴趣的物体。铣削策略包括两步,第一步是粗铣,以提高铣削效率,然后是精铣。两步铣削会形成一个具有附加导电 Pt 层的脊槽结构,以减少束致充电问题。工作流程中突出了 CSEI,它提供了 cryoFIB 铣削过程中的实时定位。进行了完整工作流程的测试,以证明所提出方法的高效率和高可行性。