High-Throughput Quantification of GFP-LC3+ Dots by Automated Fluorescence Microscopy

绿色荧光蛋白 自噬 细胞质 自噬体 荧光显微镜 细胞生物学 细胞器 转染 荧光 化学 显微镜 荧光寿命成像显微镜 黄色荧光蛋白 生物物理学 生物 生物化学 基因 细胞凋亡 病理 物理 医学 量子力学
作者
José Manuel Bravo-San Pedro,Federico Pietrocola,Valentina Sica,Valentina Izzo,Allan Sauvat,Oliver Kepp,Maria Chiara Maiuri,Lorenzo Galluzzi
出处
期刊:Methods in Enzymology [Academic Press]
卷期号:: 71-86 被引量:21
标识
DOI:10.1016/bs.mie.2016.10.022
摘要

Macroautophagy is a specific variant of autophagy that involves a dedicated double-membraned organelle commonly known as autophagosome. Various methods have been developed to quantify the size of the autophagosomal compartment, which is an indirect indicator of macroautophagic responses, based on the peculiar ability of microtubule-associated protein 1 light chain 3 beta (MAP1LC3B; best known as LC3) to accumulate in forming autophagosomes upon maturation. One particularly convenient method to monitor the accumulation of mature LC3 within autophagosomes relies on a green fluorescent protein (GFP)-tagged variant of this protein and fluorescence microscopy. In physiological conditions, cells transfected temporarily or stably with a GFP-LC3-encoding construct exhibit a diffuse green fluorescence over the cytoplasm and nucleus. Conversely, in response to macroautophagy-promoting stimuli, the GFP-LC3 signal becomes punctate and often (but not always) predominantly cytoplasmic. The accumulation of GFP-LC3 in cytoplasmic dots, however, also ensues the blockage of any of the steps that ensure the degradation of mature autophagosomes, calling for the implementation of strategies that accurately discriminate between an increase in autophagic flux and an arrest in autophagic degradation. Various cell lines have been engineered to stably express GFP-LC3, which—combined with the appropriate controls of flux, high-throughput imaging stations, and automated image analysis—offer a relatively straightforward tool to screen large chemical or biological libraries for inducers or inhibitors of autophagy. Here, we describe a simple and robust method for the high-throughput quantification of GFP-LC3+ dots by automated fluorescence microscopy.
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