Donohoe Bryon S, Mogelsvang Soren, Staehelin L Andrew
University of Colorado at Boulder, MCD Biology, Boulder, CO 80309, USA.
Methods. 2006 Jun;39(2):154-62. doi: 10.1016/j.ymeth.2006.05.013.
A primary goal of cell biology is to uncover the mechanisms of cellular processes. A detailed structural understanding of the organelles and subcellular structures involved in these processes has often formed the foundation for the elucidation of their function. Electron tomography is a powerful technique for characterizing subcellular architecture and structural details in three dimensions. Electron tomography of cryofixed, freeze-substituted, and plastic-embedded samples allows three-dimensional visualization and display of dynamic, pleiomorphic structures at a resolution of approximately 7 nm in cell volumes up to approximately 25 microm(3). In this review, we describe the electron tomography protocols that we have employed to determine the 3D architecture of complex cellular structures, thereby gaining insights into their functional organization. We stress the need for studying specimens preserved by cryofixation methods to obtain accurate information on the geometry and size of cellular structures. We also discuss some of the challenges associated with the staining of certain types of membranes. Finally, we provide examples of how tomographic data can be analyzed, dissected, and displayed using the tools built into the IMOD software package.
细胞生物学的一个主要目标是揭示细胞过程的机制。对参与这些过程的细胞器和亚细胞结构的详细结构理解通常构成了阐明其功能的基础。电子断层扫描是一种用于三维表征亚细胞结构和结构细节的强大技术。对冷冻固定、冷冻替代和塑料包埋样品进行电子断层扫描,可以在细胞体积高达约25立方微米的情况下,以约7纳米的分辨率对动态、多形结构进行三维可视化和显示。在本综述中,我们描述了我们用于确定复杂细胞结构三维结构的电子断层扫描方案,从而深入了解其功能组织。我们强调需要研究通过冷冻固定方法保存的标本,以获得关于细胞结构几何形状和大小的准确信息。我们还讨论了与某些类型膜染色相关的一些挑战。最后,我们提供了一些示例,说明如何使用IMOD软件包中内置的工具来分析、剖析和显示断层扫描数据。