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介绍用于冷冻、水合生命科学样品的冷冻-FIB-SEM 切片技术。

An introduction to cryo-FIB-SEM cross-sectioning of frozen, hydrated Life Science samples.

机构信息

Cryo-FIB-SEM Technologist, Eindhoven, the Netherlands.

Environmental Hydrogeology, Department of Earth Sciences, Faculty of Geosciences, Utrecht University, Utrecht, the Netherlands.

出版信息

J Microsc. 2021 Feb;281(2):138-156. doi: 10.1111/jmi.12951. Epub 2020 Aug 24.

Abstract

The introduction of cryo-techniques to the focused ion-beam scanning electron microscope (FIB-SEM) has brought new opportunities to study frozen, hydrated samples from the field of Life Sciences. Cryo-techniques have long been employed in electron microscopy. Thin electron transparent sections are produced by cryo-ultramicrotomy for observation in a cryo-transmission electron microscope (TEM). Cryo-TEM is presently reaching the imaging of macromolecular structures. In parallel, cryo-fractured surfaces from bulk materials have been investigated by cryo-SEM. Both cryo-TEM and cryo-SEM have provided a wealth of information, despite being 2D techniques. Cryo-TEM tomography does provide 3D information, but the thickness of the volume has a maximum of 200-300 nm, which limits the 3D information within the context of specific structures. FIB-milling enables imaging additional planes by creating cross-sections (e.g. cross-sectioning or site-specific X-sectioning) perpendicular to the cryo-fracture surface, thus adding a third imaging dimension to the cryo-SEM. This paper discusses how to produce suitable cryo-FIB-SEM cross-section results from frozen, hydrated Life Science samples with emphasis on 'common knowledge' and reoccurring observations. LAY DESCRIPTION: Life Sciences studies life down to the smallest details. Visualising the smallest details requires electron microscopy, which utilises high-vacuum chambers. One method to maintain the integrity of Life Sciences samples under vacuum conditions is freezing. Frozen samples can remain in a suspended state. As a result, research can be carried out without having to change the chemistry or internal physical structure of the samples. Two types of electron microscopes equipped with cryo-sample handling facilities are used to investigate samples: The scanning electron microscope (SEM) which investigates surfaces and the transmission electron microscope (TEM) which investigates thin electron transparent sections (called lamellae). A third method of investigation combines a SEM with a focused ion beam (FIB) to form a cryo-FIB-SEM, which is the basis of this paper. The electron beam images the cryo-sample surface while the ion beam mills into the surface to expose the interior of the sample. The latter is called cross-sectioning and the result provides a way of investigating the 3rd dimension of the sample. This paper looks at the making of cross-sections in this manner originating from knowledge and experience gained with this technique over many years. This information is meant for newcomers, and experienced researchers in cryo-microscopy alike.

摘要

将低温技术引入聚焦离子束扫描电子显微镜(FIB-SEM)为生命科学领域的冷冻、水合样品研究带来了新的机会。低温技术在电子显微镜中已经应用了很长时间。通过低温超微切割制作薄的电子透明切片,用于低温透射电子显微镜(TEM)观察。低温 TEM 目前正在实现对大分子结构的成像。同时,对块状材料的冷冻断裂表面进行了低温扫描电镜(cryo-SEM)研究。尽管这两种技术都是二维技术,但低温 TEM 和低温 SEM 都提供了大量的信息。低温 TEM 断层扫描确实提供了三维信息,但体积的厚度最大为 200-300nm,这限制了特定结构背景下的三维信息。FIB 铣削通过创建与冷冻断裂表面垂直的横截面(例如,横截面或特定位置的 X 截面)来实现对附加平面的成像,从而为 cryo-SEM 添加了第三个成像维度。本文讨论了如何从冷冻、水合的生命科学样品中获得适合 cryo-FIB-SEM 的横截面结果,重点是“常识”和反复出现的观察结果。

非技术描述

生命科学研究的是生命的最小细节。要观察最小的细节,需要使用电子显微镜,而电子显微镜则需要高真空腔。在真空条件下保持生命科学样品完整性的一种方法是冷冻。冷冻样品可以保持悬浮状态。因此,在不必改变样品的化学性质或内部物理结构的情况下,可以进行研究。有两种配备 cryo-sample 处理设施的电子显微镜用于研究样品:扫描电子显微镜(SEM),用于研究表面,以及透射电子显微镜(TEM),用于研究薄的电子透明切片(称为薄片)。第三种研究方法是将扫描电子显微镜与聚焦离子束(FIB)相结合,形成 cryo-FIB-SEM,这是本文的基础。电子束对 cryo-sample 表面进行成像,而离子束则对表面进行铣削以暴露样品的内部。后者称为横截面,结果提供了一种研究样品第三个维度的方法。本文以多年来从该技术获得的知识和经验为基础,探讨了以这种方式制作横截面的方法。这些信息是为新手和有经验的 cryo-microscopy 研究人员提供的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1f1a/7891420/b78789e46363/JMI-281-138-g001.jpg

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