粒体自噬
扫描电镜
细胞生物学
共焦显微镜
共焦
荧光寿命成像显微镜
体内
荧光
绿色荧光蛋白
生物
化学
荧光显微镜
生物物理学
线粒体
自噬
生物化学
光学
物理
遗传学
基因
细胞凋亡
激光器
受激发射
作者
Nuo Sun,Daniela Malide,Jie Liu,Ilsa I. Rovira,Christian A. Combs,Toren Finkel
出处
期刊:Nature Protocols
[Springer Nature]
日期:2017-07-13
卷期号:12 (8): 1576-1587
被引量:243
标识
DOI:10.1038/nprot.2017.060
摘要
Mitophagy is a cellular process that selectively removes damaged, old or dysfunctional mitochondria. Defective mitophagy is thought to contribute to normal aging and to various neurodegenerative and cardiovascular diseases. Previous methods used to detect mitophagy in vivo were cumbersome, insensitive and difficult to quantify. We created a transgenic mouse model that expresses the pH-dependent fluorescent protein mt-Keima in order to more readily assess mitophagy. Keima is a pH-sensitive, dual-excitation ratiometric fluorescent protein that also exhibits resistance to lysosomal proteases. At the physiological pH of the mitochondria (pH 8.0), the shorter-wavelength excitation predominates. Within the acidic lysosome (pH 4.5) after mitophagy, mt-Keima undergoes a gradual shift to longer-wavelength excitation. In this protocol, we describe how to monitor mitophagic flux in living cells over an 18-h time frame, as well as how to quantify mitophagy using the mt-Keima probe. This protocol also describes how to use confocal microscopy to visualize mitophagy in living tissues obtained from mt-Keima transgenic mice. With this protocol, the mt-Keima probe can reliably be imaged within the first 60 min after tissue collection. We also describe how to apply mt-Keima with stimulated emission depletion (STED) microscopy, which can potentially provide substantially higher-resolution images. Typically, the approximate time frame for time-lapse fluorescence imaging of mt-Keima is 20 h for living cells. For confocal analysis of tissue from an mt-Keima mouse, the whole procedure generally takes no longer than 60 min, and the STED imaging usually takes <2 h.
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