The University of Queensland, Institute for Molecular Bioscience, Brisbane, Queensland 4072, Australia.
EMBL Australia Node in Single Molecule Science , School of Medical Sciences, University of New South Wales Sydney, New South Wales 2033, Australia.
J Cell Sci. 2024 Oct 15;137(20). doi: 10.1242/jcs.262163. Epub 2024 Oct 30.
Unambiguous targeting of cellular structures for in situ cryo-electron microscopy in the heterogeneous, dense and compacted environment of the cytoplasm remains challenging. Here, we have developed a cryogenic correlative light and electron microscopy (cryo-CLEM) workflow that utilizes thin cells grown on a mechanically defined substratum for rapid analysis of organelles and macromolecular complexes by cryo-electron tomography (cryo-ET). We coupled these advancements with optogenetics to redistribute perinuclear-localised organelles to the cell periphery, allowing visualisation of organelles that would otherwise be positioned in cellular regions too thick for cryo-ET. This reliable and robust workflow allows for fast in situ analyses without the requirement for cryo-focused ion beam milling. Using this protocol, cells can be frozen, imaged by cryo-fluorescence microscopy and be ready for batch cryo-ET within a day.
在细胞质中异质、致密和压实的环境中,对细胞结构进行明确的原位低温电子显微镜靶向定位仍然具有挑战性。在这里,我们开发了一种低温相关的光电子显微镜(cryo-CLEM)工作流程,该流程利用在机械定义的基底上生长的薄细胞,通过低温电子断层扫描(cryo-ET)快速分析细胞器和大分子复合物。我们将这些进展与光遗传学相结合,将核周定位的细胞器重新分布到细胞外周,从而可以观察到原本位于低温电子断层扫描太厚的细胞区域的细胞器。这种可靠且强大的工作流程允许快速进行原位分析,而无需低温聚焦离子束铣削。使用该方案,细胞可以在一天内被冷冻、通过低温荧光显微镜成像,并准备进行批量低温电子断层扫描。