4.3 Article

Systematic Transmission Electron Microscopy-Based Identification and 3D Reconstruction of Cellular Degradation Machinery

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ADVANCED BIOLOGY
卷 7, 期 6, 页码 -

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WILEY-V C H VERLAG GMBH
DOI: 10.1002/adbi.202200221

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3D reconstruction; autophagosomes; autophagy; lysosomes; transmission electron microscopy

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This paper describes an approach to reproducibly identify and distinguish subcellular structures involved in macroautophagy. Methods are provided to avoid common pitfalls and how to distinguish between various subcellular structures is discussed. Different imaging techniques, such as TEM, immunofluorescence, and immunogold labeling are explored, and the results show the accurate quantification of cellular degradation machinery under various conditions.
Various intracellular degradation organelles, including autophagosomes, lysosomes, and endosomes, work in tandem to perform autophagy, which is crucial for cellular homeostasis. Altered autophagy contributes to the pathophysiology of various diseases, including cancers and metabolic diseases. This paper aims to describe an approach to reproducibly identify and distinguish subcellular structures involved in macroautophagy. Methods are provided that help avoid common pitfalls. How to distinguish between lysosomes, lipid droplets, autolysosomes, autophagosomes, and inclusion bodies are also discussed. These methods use transmission electron microscopy (TEM), which is able to generate nanometer-scale micrographs of cellular degradation components in a fixed sample. Serial block face-scanning electron microscopy is also used to visualize the 3D morphology of degradation machinery using the Amira software. In addition to TEM and 3D reconstruction, other imaging techniques are discussed, such as immunofluorescence and immunogold labeling, which can be used to classify cellular organelles, reliably and accurately. Results show how these methods may be used to accurately quantify cellular degradation machinery under various conditions, such as treatment with the endoplasmic reticulum stressor thapsigargin or ablation of the dynamin-related protein 1.

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