Monitoring Bile Acid Transport in Single Living Cells Using a Genetically Encoded Forster Resonance Energy Transfer Sensor

被引:42
|
作者
van der Velden, Lieke M. [1 ]
Golynskiy, Misha V. [2 ]
Bijsmans, Ingrid T. G. W. [1 ]
van Mil, Saskia W. C. [1 ]
Klomp, Leo W. J. [1 ]
Merkx, Maarten [2 ]
van de Graaf, Stan F. J. [1 ]
机构
[1] Univ Med Ctr Utrecht, Dept Metab Dis, NL-3508 AB Utrecht, Netherlands
[2] Eindhoven Univ Technol, Dept Biomed Engn, Biol Chem Lab, NL-5600 MB Eindhoven, Netherlands
关键词
SALT EXPORT PUMP; X-RECEPTOR FXR; NUCLEAR RECEPTOR; ORGANIC SOLUTE; IDENTIFICATION; CHOLESTASIS; SENSITIVITY; INHIBITION; EXPRESSION; LIGANDS;
D O I
10.1002/hep.26012
中图分类号
R57 [消化系及腹部疾病];
学科分类号
摘要
Bile acids are pivotal for the absorption of dietary lipids and vitamins and function as important signaling molecules in metabolism. Here, we describe a genetically encoded fluorescent bile acid sensor (BAS) that allows for spatiotemporal monitoring of bile acid transport in single living cells. Changes in concentration of multiple physiological and pathophysiological bile acid species were detected as robust changes in Forster resonance energy transfer (FRET) in a range of cell types. Specific subcellular targeting of the sensor demonstrated rapid influx of bile acids into the cytoplasm and nucleus, but no FRET changes were observed in the peroxisomes. Furthermore, expression of the liver fatty acid binding protein reduced the availability of bile acids in the nucleus. The sensor allows for single cell visualization of uptake and accumulation of conjugated bile acids, mediated by the Na+-taurocholate cotransporting protein (NTCP). In addition, cyprinol sulphate uptake, mediated by the putative zebrafish homologue of the apical sodium bile acid transporter, was visualized using a sensor based on the zebrafish farnesoid X receptor. The reversible nature of the sensor also enabled measurements of bile acid efflux in living cells, and expression of the organic solute transporter alpha beta (OST alpha beta) resulted in influx and efflux of conjugated chenodeoxycholic acid. Finally, combined visualization of bile acid uptake and fluorescent labeling of several NTCP variants indicated that the sensor can also be used to study the functional effect of patient mutations in genes affecting bile acid homeostasis. Conclusion: A genetically encoded fluorescent BAS was developed that allows intracellular imaging of bile acid homeostasis in single living cells in real time. (HEPATOLOGY 2013;57:740-752)
引用
收藏
页码:740 / 752
页数:13
相关论文
共 50 条
  • [1] A genetically encoded Forster resonance energy transfer sensor for monitoring in vivo trehalose-6-phosphate dynamics
    Peroza, Estevao A.
    Ewald, Jennifer C.
    Parakkal, Geetha
    Skotheim, Jan M.
    Zamboni, Nicola
    ANALYTICAL BIOCHEMISTRY, 2015, 474 : 1 - 7
  • [2] Visualization of growth signal transduction cascades in living cells with genetically encoded probes based on Forster resonance energy transfer
    Aoki, Kazuhiro
    Kiyokawa, Etsuko
    Nakamura, Takeshi
    Matsuda, Michiyuki
    PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY B-BIOLOGICAL SCIENCES, 2008, 363 (1500) : 2143 - 2151
  • [3] Imaging of the Lactate/Pyruvate Ratio Using a Genetically Encoded Forster Resonance Energy Transfer Indicator
    Galaz, Alex
    Cortes-Molina, Francisca
    Arce-Molina, Robinson
    Romero-Gomez, Ignacio
    Antonio Mardones, Gonzalo
    Barros, L. Felipe
    San Martin, Alejandro
    ANALYTICAL CHEMISTRY, 2020, 92 (15) : 10643 - 10650
  • [4] Two Decades of Genetically Encoded Biosensors Based on Forster Resonance Energy Transfer
    Terai, Kenta
    Imanishi, Ayako
    Li, Chunjie
    Matsuda, Michiyuki
    CELL STRUCTURE AND FUNCTION, 2019, 44 (02) : 153 - 169
  • [5] Genetically Encoded Forster Resonance Energy Transfer-Based Biosensors Studied on the Single-Molecule Level
    Hoefig, Henning
    Otten, Julia
    Steffen, Victoria
    Pohl, Martina
    Boersma, Arnold J.
    Fitter, Joerg
    ACS SENSORS, 2018, 3 (08): : 1462 - 1470
  • [6] Quantification of Forster resonance energy transfer by monitoring sensitized emission in living plant cells
    Mueller, Saram.
    Galliardt, Helena
    Schneider, Jessica
    Barisas, B. George
    Seidel, Thorsten
    FRONTIERS IN PLANT SCIENCE, 2013, 4
  • [7] Fluorescence resonance energy transfer imaging of PKC signalling in living cells using genetically encoded fluorescent probes
    Goedhart, Joachim
    Gadella, Theodorus W. J., Jr.
    JOURNAL OF THE ROYAL SOCIETY INTERFACE, 2009, 6 : S27 - S34
  • [8] Forster Resonance Energy Transfer Measurements in Living Plant Cells
    Schmidtpott, Sonja Michele
    Seidel, Thorsten
    JOVE-JOURNAL OF VISUALIZED EXPERIMENTS, 2021, (172):
  • [9] Real Time Monitoring of Intracellular Bile Acid Dynamics Using a Genetically Encoded FRET-based Bile Acid Sensor
    Van de Wiel, Sandra
    Merkx, Maarten
    Van de Graaf, Stan
    JOVE-JOURNAL OF VISUALIZED EXPERIMENTS, 2016, (107):
  • [10] Genetically Encoded Forster Resonance Energy Transfer Sensors for the Conformation of the Src Family Kinase Lck
    Paster, Wolfgang
    Paar, Christian
    Eckerstorfer, Paul
    Jakober, Andrea
    Drbal, Karel
    Schuetz, Gerhard J.
    Sonnleitner, Alois
    Stockinger, Hannes
    JOURNAL OF IMMUNOLOGY, 2009, 182 (04): : 2160 - 2167