Department of Chemistry and Biochemistry, University of California Los Angeles, Los Angeles, California.
Institute for Quantitative and Computational Biosciences, University of California Los Angeles, Los Angeles, California.
Curr Protoc. 2023 May;3(5):e771. doi: 10.1002/cpz1.771.
Adenosine monophosphate (AMP)-activated protein kinase (AMPK) is a master regulator of cellular metabolism, phosphorylating a variety of downstream targets throughout the cell. Subcellular AMPK activity results in regulation of glycolysis, lipid and protein biosynthesis, mitochondrial function, and gene expression. But how AMPK senses and responds to stimuli in a compartment-specific manner is not well understood, leaving an incomplete picture of compartmentalized AMPK activity. Key tools for studying subcellular AMPK activity are genetically encoded AMPK activity reporters (AMPKARs), which allow for the quantitative visualization of subcelluar AMPK activity. However, many AMPKARs suffer from poor dynamic range and sensitivity, limiting their application. I recently reported the development of a new excitation-ratiometric (ExRai) AMPKAR, a single-fluorophore AMPKAR with enhanced dynamic range for detection of subtle, subcellular AMPK activity. I used ExRai AMPKAR to study subcellular AMPK activity at several locations, including the lysosome and mitochondria, identifying new mechanisms for the regulation of AMPK activity. Here, I describe the use of ExRai AMPKAR to image subcellular AMPK activity in mouse embryonic fibroblasts using both widefield and confocal microscopy. I also describe the culture of mouse embryonic fibroblasts. Through the use of ExRai AMPKAR, subcellular AMPK activity can be illuminated to better understand how this central kinase regulates cellular metabolism. © 2023 The Author. Current Protocols published by Wiley Periodicals LLC. Basic Protocol: Imaging subcellular AMPK activity using ExRai AMPKAR Support Protocol 1: Culturing of mouse embryonic fibroblasts for live-cell imaging Support Protocol 2: Live-cell imaging of ExRai AMPKAR using confocal microscopy.
一磷酸腺苷(AMP)激活的蛋白激酶(AMPK)是细胞代谢的主要调节因子,通过磷酸化细胞内各种下游靶标来调节细胞代谢。细胞内 AMPK 的活性可调节糖酵解、脂质和蛋白质的生物合成、线粒体功能和基因表达。但是,AMPK 如何以特定于隔室的方式感知和响应刺激,其机制尚不完全清楚,导致对隔室化 AMPK 活性的认识不完整。研究细胞内 AMPK 活性的关键工具是遗传编码的 AMPK 活性报告基因(AMPKARs),它可以定量可视化细胞内 AMPK 活性。然而,许多 AMPKARs 存在动态范围和灵敏度差的问题,限制了它们的应用。我最近报道了一种新型激发比(ExRai)AMPKAR 的开发,这是一种具有增强的动态范围的单荧光 AMPKAR,可用于检测细微的细胞内 AMPK 活性。我使用 ExRai AMPKAR 研究了包括溶酶体和线粒体在内的多个部位的细胞内 AMPK 活性,确定了 AMPK 活性调节的新机制。在这里,我描述了使用 ExRai AMPKAR 通过宽场和共聚焦显微镜在小鼠胚胎成纤维细胞中成像细胞内 AMPK 活性。我还描述了小鼠胚胎成纤维细胞的培养。通过使用 ExRai AMPKAR,可以照亮细胞内 AMPK 活性,以更好地理解这种核心激酶如何调节细胞代谢。© 2023 作者。Wiley Periodicals LLC 出版的《当代协议》。基本方案:使用 ExRai AMPKAR 成像细胞内 AMPK 活性 支持方案 1:用于活细胞成像的小鼠胚胎成纤维细胞培养 支持方案 2:使用共聚焦显微镜对 ExRai AMPKAR 进行活细胞成像。