Fluorescence Recovery after Photobleaching of Yellow Fluorescent Protein Tagged p62 in Aggresome-like Induced Structures

被引:2
作者
Rademacher, David J. [1 ]
Cabe, Maleen [2 ]
Bakowska, Joanna C. [2 ]
机构
[1] Loyola Univ Chicago, Core Imaging Facil & Dept Microbiol & Immunol, Chicago, IL USA
[2] Loyola Univ Chicago, Dept Mol Pharmacol & Therapeut, Chicago, IL 60660 USA
来源
JOVE-JOURNAL OF VISUALIZED EXPERIMENTS | 2019年 / 145期
关键词
Biology; Issue; 145; fluorescence recovery after photobleaching; FRAP; yellow fluorescent protein; live cell imaging; protein mobility; murine macrophages; p62; sequestosome-1; aggresome; LIVING CELLS; DIFFUSION; MOBILITY;
D O I
10.3791/59288
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Fluorescence recovery after photobleaching (FRAP) is a microscopy technique that can be used to quantify protein mobility in live cells. In a typical FRAP experiment, steady-state fluorescence is observed by repeated imaging with low-intensity laser light. Subsequently, the fluorescent molecules are rapidly and irreversibly impaired via brief exposure to high-intensity laser light. Information about protein mobility is obtained by monitoring the recovery of fluorescence. We used FRAP to determine the mobility of p62 in aggresome-like induced structures (ALIS) in murine macrophages after stimulation with lipopolysaccharide (LPS). Because many existing FRAP protocols are either incomplete or complex, our goal was to provide a comprehensive, practical, and straightforward step-by-step protocol for FRAP experiments with live cells. Here, we describe RAW264.7 macrophage transfection with yellow fluorescent protein-p62 (YFP-p62), induction of ALIS by exposing the cells to LPS, and a step-by-step method for collecting prebleach and postbleach FRAP images and data analysis. Finally, we discuss important factors to consider when conducting a FRAP experiment.
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页数:7
相关论文
共 15 条
[1]   MOBILITY MEASUREMENT BY ANALYSIS OF FLUORESCENCE PHOTOBLEACHING RECOVERY KINETICS [J].
AXELROD, D ;
KOPPEL, DE ;
SCHLESSINGER, J ;
ELSON, E ;
WEBB, WW .
BIOPHYSICAL JOURNAL, 1976, 16 (09) :1055-1069
[2]   Measurement of molecular diffusion in solution by multiphoton fluorescence photobleaching recovery [J].
Brown, EB ;
Wu, ES ;
Zipfel, W ;
Webb, WW .
BIOPHYSICAL JOURNAL, 1999, 77 (05) :2837-2849
[3]   PB1 and UBA domains of p62 are essential for aggresome-like induced structure formation [J].
Cabe, Maleen ;
Rademacher, David J. ;
Karlsson, Amelia B. ;
Cherukuri, Srinivas ;
Bakowska, Joanna C. .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2018, 503 (04) :2306-2311
[4]  
Centonze Victoria, 1995, P549
[5]   Fluorescent Proteins and Their Applications in Imaging Living Cells and Tissues [J].
Chudakov, Dmitriy M. ;
Matz, Mikhail V. ;
Lukyanov, Sergey ;
Lukyanov, Konstantin A. .
PHYSIOLOGICAL REVIEWS, 2010, 90 (03) :1103-1163
[6]   Dissecting protein reaction dynamics in living cells by fluorescence recovery after photobleaching [J].
Fritzsche, Marco ;
Charras, Guillaume .
NATURE PROTOCOLS, 2015, 10 (05) :660-680
[7]   Photobleaching approaches to investigate diffusional mobility and trafficking of Ras in living cells [J].
Goodwin, JS ;
Kenworthy, AK .
METHODS, 2005, 37 (02) :154-164
[8]   Lateral Diffusion and Exocytosis of Membrane Proteins in Cultured Neurons Assessed using Fluorescence Recovery and Fluorescence-loss Photobleaching [J].
Hildick, Keri L. ;
Gonzalez-Gonzalez, Inmaculada M. ;
Jaskolski, Frederic ;
Henley, Jeremy. M. .
JOVE-JOURNAL OF VISUALIZED EXPERIMENTS, 2012, (60)
[9]   Advanced Fluorescence Microscopy Techniques-FRAP, FLIP, FLAP, FRET and FLIM [J].
Ishikawa-Ankerhold, Hellen C. ;
Ankerhold, Richard ;
Drummen, Gregor P. C. .
MOLECULES, 2012, 17 (04) :4047-4132
[10]  
Nissim-Rafinia M., 2011, JOVE-J VIS EXP, V52, P2696, DOI DOI 10.3791/2696