Monitoring cell membrane recycling dynamics of proteins using whole-cell fluorescence recovery after photobleaching of pH-sensitive genetic tags

被引:0
|
作者
Piotr Michaluk
Dmitri A. Rusakov
机构
[1] University College London,UCL Queen Square Institute of Neurology
[2] BRAINCITY,undefined
[3] Laboratory of Neurobiology,undefined
[4] Nencki Institute of Experimental Biology PAS,undefined
来源
Nature Protocols | 2022年 / 17卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Population behavior of signaling molecules on the cell surface is key to their adaptive function. Live imaging of proteins tagged with fluorescent molecules has been an essential tool in understanding this behavior. Typically, genetic or chemical tags are used to target molecules present throughout the cell, whereas antibody-based tags label the externally exposed molecular domains only. Both approaches could potentially overlook the intricate process of in–out membrane recycling in which target molecules appear or disappear on the cell surface. This limitation is overcome by using a pH-sensitive fluorescent tag, such as Super-Ecliptic pHluorin (SEP), because its emission depends on whether it resides inside or outside the cell. Here we focus on the main glial glutamate transporter GLT1 and describe a genetic design that equips GLT1 molecules with SEP without interfering with the transporter’s main function. Expressing GLT1-SEP in astroglia in cultures or in hippocampal slices enables monitoring of the real-time dynamics of the cell-surface and cytosolic fractions of the transporter in living cells. Whole-cell fluorescence recovery after photobleaching and quantitative image-kinetic analysis of the resulting time-lapse images enables assessment of the rate of GLT1-SEP recycling on the cell surface, a fundamental trafficking parameter unattainable previously. The present protocol takes 15–20 d to set up cell preparations, and 2–3 d to carry out live cell experiments and data analyses. The protocol can be adapted to study different membrane molecules of interest, particularly those proteins whose lifetime on the cell surface is critical to their adaptive function.
引用
收藏
页码:3056 / 3079
页数:23
相关论文
共 19 条
  • [1] Monitoring cell membrane recycling dynamics of proteins using whole-cell fluorescence recovery after photobleaching of pH-sensitive genetic tags
    Michaluk, Piotr
    Rusakov, Dmitri A.
    NATURE PROTOCOLS, 2022, 17 (12) : 3056 - 3079
  • [2] FORTIS: a live-cell assay to monitor AMPA receptors using pH-sensitive fluorescence tags
    María Calleja-Felipe
    Magdalena Natalia Wojtas
    Marta Diaz-González
    Dalila Ciceri
    Raúl Escribano
    Alberto Ouro
    Miguel Morales
    Shira Knafo
    Translational Psychiatry, 11
  • [3] FORTIS: a live-cell assay to monitor AMPA receptors using pH-sensitive fluorescence tags
    Calleja-Felipe, Maria
    Wojtas, Magdalena Natalia
    Diaz-Gonzalez, Marta
    Ciceri, Dalila
    Escribano, Raul
    Ouro, Alberto
    Morales, Miguel
    Knafo, Shira
    TRANSLATIONAL PSYCHIATRY, 2021, 11 (01)
  • [4] Analysis of NTPDase2 in the cell membrane using fluorescence recovery after photobleaching (FRAP)
    Kipper, Franciele Cristina
    Kikuchi Tamajusuku, Alessandra Sayuri
    Minussi, Darlan Conterno
    Vargas, Jose Eduardo
    Oliveira Battastini, Ana Maria
    Kaczmarek, Elzbieta
    Robson, Simon Christopher
    Lenz, Guido
    Wink, Marcia Rosangela
    CYTOMETRY PART A, 2018, 93A (02) : 232 - 238
  • [5] Monitoring condensate dynamics in S. cerevisiae using fluorescence recovery after photobleaching
    Sprunger, Macy L.
    Jackrel, Meredith E.
    STAR PROTOCOLS, 2022, 3 (03): : 101592
  • [6] Dynamic diffusion in softwood and hardwood cell walls using fluorescence recovery after photobleaching
    Donaldson, Lloyd
    Pearson, Hamish
    HOLZFORSCHUNG, 2024, 78 (06) : 329 - 342
  • [7] CHEEK CELL-MEMBRANE FLUIDITY MEASURED BY FLUORESCENCE RECOVERY AFTER PHOTOBLEACHING AND STEADY-STATE FLUORESCENCE ANISOTROPY
    LADHA, S
    MACKIE, AR
    CLARK, DC
    JOURNAL OF MEMBRANE BIOLOGY, 1994, 142 (02) : 223 - 228
  • [8] Monitoring the cytosolic entry of cell-penetrating peptides using a pH-sensitive fluorophore
    Qian, Ziqing
    Dougherty, Patrick G.
    Pei, Dehua
    CHEMICAL COMMUNICATIONS, 2015, 51 (11) : 2162 - 2165
  • [9] Fluorescence recovery after photobleaching (FRAP) methods for visualizing protein dynamics in living mammalian cell nuclei
    Stavreva, DA
    McNally, JG
    CHROMATIN AND CHROMATIN REMODELING ENZYMES, PT A, 2004, 375 : 443 - 455
  • [10] Analysis of spectrin dynamics in red cell ghosts by total internal reflection fluorescence recovery after photobleaching (TIR-FRAP).
    Bicknese, S
    Kotula, L
    Shohet, SB
    BLOOD, 1995, 86 (10) : 1858 - 1858