Cell Biology and Biophysics Unit, European Molecular Biology Laboratory (EMBL), Heidelberg, Germany.
Collaboration for Joint PhD Degree Between EMBL and Heidelberg University, Faculty of Biosciences, Heidelberg, Germany.
Elife. 2022 Nov 15;11:e80899. doi: 10.7554/eLife.80899.
Volume electron microscopy (EM) is a time-consuming process - often requiring weeks or months of continuous acquisition for large samples. In order to compare the ultrastructure of a number of individuals or conditions, acquisition times must therefore be reduced. For resin-embedded samples, one solution is to selectively target smaller regions of interest by trimming with an ultramicrotome. This is a difficult and labour-intensive process, requiring manual positioning of the diamond knife and sample, and much time and training to master. Here, we have developed a semi-automated workflow for targeting with a modified ultramicrotome. We adapted two recent commercial systems to add motors for each rotational axis (and also each translational axis for one system), allowing precise and automated movement. We also developed a user-friendly software to convert X-ray images of resin-embedded samples into angles and cutting depths for the ultramicrotome. This is provided as an open-source Fiji plugin called Crosshair. This workflow is demonstrated by targeting regions of interest in a series of samples.
体视学电子显微镜(EM)是一个耗时的过程 - 通常需要数周或数月的连续采集才能获得大样本。为了比较大量个体或条件的超微结构,因此必须减少采集时间。对于树脂包埋的样本,一种解决方案是通过使用超薄切片机修剪来选择性地针对较小的感兴趣区域。这是一个困难且劳动强度大的过程,需要手动定位金刚石刀和样本,并且需要大量时间和培训才能掌握。在这里,我们开发了一种用于使用改良型超薄切片机进行靶向切割的半自动工作流程。我们对两个最近的商业系统进行了改造,为每个旋转轴添加了电机(对于一个系统,也为每个平移轴添加了电机),从而实现了精确和自动化的运动。我们还开发了一个用户友好的软件,可将树脂包埋样本的 X 射线图像转换为超薄切片机的角度和切割深度。这是以名为 Crosshair 的开源 Fiji 插件形式提供的。通过对一系列样本中的感兴趣区域进行靶向切割,演示了该工作流程。