Fluorescence Lifetime Imaging of Molecular Rotors in Living Cells

被引:11
|
作者
Suhling, Klaus [1 ]
Levitt, James A. [1 ]
Chung, Pei-Hua [1 ]
Kuimova, Marina K. [2 ]
Yahioglu, Gokhan [3 ]
机构
[1] Kings Coll London, Dept Phys, London WC2R 2LS, England
[2] Univ London Imperial Coll Sci Technol & Med, Dept Chem, London SW7 2AZ, England
[3] PhotoBiotics Ltd, London, England
来源
JOVE-JOURNAL OF VISUALIZED EXPERIMENTS | 2012年 / 60期
基金
英国工程与自然科学研究理事会; 英国生物技术与生命科学研究理事会;
关键词
Bioengineering; Issue; 60; fluorescence; microscopy; FLIM; fluorescent molecular rotors;
D O I
10.3791/2925
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
Diffusion is often an important rate-determining step in chemical reactions or biological processes and plays a role in a wide range of intracellular events. Viscosity is one of the key parameters affecting the diffusion of molecules and proteins, and changes in viscosity have been linked to disease and malfunction at the cellular level. (1-3) While methods to measure the bulk viscosity are well developed, imaging microviscosity remains a challenge. Viscosity maps of microscopic objects, such as single cells, have until recently been hard to obtain. Mapping viscosity with fluorescence techniques is advantageous because, similar to other optical techniques, it is minimally invasive, non-destructive and can be applied to living cells and tissues. Fluorescent molecular rotors exhibit fluorescence lifetimes and quantum yields which are a function of the viscosity of their microenvironment. (4,5) Intramolecular twisting or rotation leads to non-radiative decay from the excited state back to the ground state. A viscous environment slows this rotation or twisting, restricting access to this non-radiative decay pathway. This leads to an increase in the fluorescence quantum yield and the fluorescence lifetime. Fluorescence Lifetime Imaging ( FLIM) of modified hydrophobic BODIPY dyes that act as fluorescent molecular rotors show that the fluorescence lifetime of these probes is a function of the microviscosity of their environment. (6-8) A logarithmic plot of the fluorescence lifetime versus the solvent viscosity yields a straight line that obeys the Forster Hoffman equation. (9) This plot also serves as a calibration graph to convert fluorescence lifetime into viscosity. Following incubation of living cells with the modified BODIPY fluorescent molecular rotor, a punctate dye distribution is observed in the fluorescence images. The viscosity value obtained in the puncta in live cells is around 100 times higher than that of water and of cellular cytoplasm. (6,7) Time-resolved fluorescence anisotropy measurements yield rotational correlation times in agreement with these large microviscosity values. Mapping the fluorescence lifetime is independent of the fluorescence intensity, and thus allows the separation of probe concentration and viscosity effects. In summary, we have developed a practical and versatile approach to map the microviscosity in cells based on FLIM of fluorescent molecular rotors.
引用
收藏
页数:5
相关论文
共 50 条
  • [31] Fluorescence lifetime imaging of E-combretastatin uptake and distribution in live mammalian cells
    Bisby, Roger H.
    Botchway, Stanley W.
    Hadfield, John A.
    McGown, Alan T.
    Parker, Anthony W.
    Scherer, Kathrin M.
    EUROPEAN JOURNAL OF CANCER, 2012, 48 (12) : 1896 - 1903
  • [32] Fluorescence and Polarization Imaging of Membrane Dynamics in Living Cells
    Wagner, M.
    Weber, P.
    Bruns, T.
    Strauss, W. S. L.
    Schneckenburger, H.
    DYNAMICS AND FLUCTUATIONS IN BIOMEDICAL PHOTONICS VI, 2009, 7176
  • [33] Single-Molecule Fluorescence Imaging in Living Cells
    Xia, Tie
    Li, Nan
    Fang, Xiaohong
    ANNUAL REVIEW OF PHYSICAL CHEMISTRY, VOL 64, 2013, 64 : 459 - 480
  • [34] Development and Application of Thermometry in Living Cells by Fluorescence Imaging
    Okabe, Kohki
    BUNSEKI KAGAKU, 2014, 63 (06) : 455 - 465
  • [35] Multiscale fluorescence imaging of living samples
    Yicong Wu
    Hari Shroff
    Histochemistry and Cell Biology, 2022, 158 : 301 - 323
  • [36] Fluorescence lifetime imaging microscopy
    Torrado, Belen
    Pannunzio, Bruno
    Malacrida, Leonel
    Digman, Michelle A.
    NATURE REVIEWS METHODS PRIMERS, 2024, 4 (01):
  • [37] Multiscale fluorescence imaging of living samples
    Wu, Yicong
    Shroff, Hari
    HISTOCHEMISTRY AND CELL BIOLOGY, 2022, 158 (04) : 301 - 323
  • [38] Responsive Carbonized Polymer Dots for Optical Super-resolution and Fluorescence Lifetime Imaging of Nucleic Acids in Living Cells
    Liu, Yanfeng
    Song, Yiwan
    Zhang, Jia
    Yang, Zhigang
    Peng, Xiao
    Yan, Wei
    Qu, Junle
    ACS APPLIED MATERIALS & INTERFACES, 2021, 13 (43) : 50733 - 50743
  • [39] FLUORESCENCE MORPHOLOGY AND FLUORESCENCE LIFETIME IMAGING MICROSCOPY (FLIM) OF RABBIT KNEE TISSUES IN THE EXPERIMENTAL ARTHRITIS MODEL
    Rudys, Romualdas
    Bagdonas, Saulius
    Kirdaite, Gailute
    Papeckiene, Jurga
    Rotomskis, Ricardas
    MEDICAL PHYSICS IN THE BALTIC STATES, 2012, : 56 - +
  • [40] Plastic fiber optics for micro-imaging of fluorescence signals in living cells
    Sakurai, Takashi
    Natsume, Mitsuo
    Koida, Kowa
    IMAGING, MANIPULATION, AND ANALYSIS OF BIOMOLECULES, CELLS, AND TISSUES XIII, 2015, 9328