Temperature dependence of diffusion in model and live cell membranes characterized by imaging fluorescence correlation spectroscopy

被引:70
|
作者
Bag, Nirmalya [2 ,3 ]
Yap, Darilyn Hui Xin [2 ,3 ]
Wohland, Thorsten [1 ,2 ,3 ]
机构
[1] Natl Univ Singapore, Dept Biol Sci, Singapore 117557, Singapore
[2] Natl Univ Singapore, Dept Chem, Singapore 117548, Singapore
[3] Natl Univ Singapore, Ctr Bioimaging Sci, Singapore 117548, Singapore
来源
BIOCHIMICA ET BIOPHYSICA ACTA-BIOMEMBRANES | 2014年 / 1838卷 / 03期
关键词
Membrane organization; Lipid phase; Activation energy; Camera-based FCS; FCS diffusion law; LIPID RAFTS; LATERAL DIFFUSION; PHASE-SEPARATION; PLASMA-MEMBRANE; TRANSLATIONAL DIFFUSION; RANDOM-WALK; FREE-VOLUME; T-CELLS; CHOLESTEROL; MICROSCOPY;
D O I
10.1016/j.bbamem.2013.10.009
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The organization of the plasma membrane is regulated by the dynamic equilibrium between the liquid ordered (L-o) and liquid disordered (L-d) phases. The abundance of the L-o phase is assumed to be a consequence of the interaction between cholesterol and the other lipids, which are otherwise in either the L-d or gel (S-o) phase. The characteristic lipid packing in these phases results in significant differences in their respective lateral dynamics. In this study, imaging total internal reflection fluorescence correlation spectroscopy (ITIR-FCS) is applied to monitor the diffusion within supported lipid bilayers (SLBs) as functions of temperature and composition. We show that the temperature dependence of membrane lateral diffusion, which is parameterized by the Arrhenius activation energy (E-Arr), can resolve the sub-resolution phase behavior of lipid mixtures. The FCS diffusion law, a novel membrane heterogeneity ruler implemented in ITIR-FCS, is applied to show that the domains in the S-o-L-d phase are static and large while they are small and dynamic in the L-o-L-d phase. Diffusion measurements and the subsequent FCS diffusion law analyses at different temperatures show that the modulation in membrane dynamics at high temperature (313 K) is a cumulative effect of domain melting and rigidity relaxation. Finally, we extend these studies to the plasma membranes of commonly used neuroblastoma, HeLa and fibroblast cells. The temperature dependence of membrane dynamics for neuroblastoma cells is significantly different from that of HeLa or fibroblast cells as the different cell types exhibit a high level of compositional heterogeneity. (C) 2013 Elsevier B.V. All rights reserved.
引用
收藏
页码:802 / 813
页数:12
相关论文
共 50 条
  • [21] Time-Resolved Fluorescence Spectroscopy Measures Clustering and Mobility of a G Protein-Coupled Receptor Opsin in Live Cell Membranes
    Comar, William D.
    Schubert, Sarah M.
    Jastrzebska, Beata
    Palczewski, Krzysztof
    Smith, Adam W.
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2014, 136 (23) : 8342 - 8349
  • [22] Fluorescence correlation spectroscopy diffusion laws in the presence of moving nanodomains
    Sachl, Radek
    Bergstrand, Jan
    Widengren, Jerker
    Hof, Martin
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2016, 49 (11)
  • [23] Analysis of Quantum Rod Diffusion by Polarized Fluorescence Correlation Spectroscopy
    Lee, Jaeran
    Fujii, Fumihiko
    Kim, Soo Yong
    Pack, Chan-Gi
    Kim, Sok Won
    JOURNAL OF FLUORESCENCE, 2014, 24 (05) : 1371 - 1378
  • [24] Super-resolution fluorescence imaging and correlation spectroscopy: principles and examples of application
    Jovanovic-Talisman, Tijana
    Vukojevic, Vladana
    JOURNAL OF THE SERBIAN CHEMICAL SOCIETY, 2013, 78 (11) : 1671 - 1688
  • [25] Optical Antenna-Based Fluorescence Correlation Spectroscopy to Probe the Nanoscale Dynamics of Biological Membranes
    Winkler, Pamina M.
    Regmi, Raju
    Flauraud, Valentin
    Brugger, Juergen
    Rigneault, Herve
    Wenger, Jerome
    Garcia-Parajo, Maria F.
    JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 2018, 9 (01): : 110 - 119
  • [26] Nano-viscosity of supercooled liquid measured by fluorescence correlation spectroscopy: Pressure and temperature dependence and the density scaling
    Meier, G.
    Gapinski, J.
    Ratajczyk, M.
    Lettinga, M. P.
    Hirtz, K.
    Banachowicz, E.
    Patkowski, A.
    JOURNAL OF CHEMICAL PHYSICS, 2018, 148 (09)
  • [27] Spatially Multiplexed Imaging: Fluorescence Correlation Spectroscopy for Efficient Measurement of Molecular Diffusion at Solid-Liquid Interfaces
    Cooper, Justin T.
    Harris, Joel M.
    APPLIED SPECTROSCOPY, 2016, 70 (04) : 695 - 701
  • [28] A novel computational framework for D(t) from Fluorescence Recovery after Photobleaching data reveals various anomalous diffusion types in live cell membranes
    Kang, Minchul
    Day, Charles A.
    Kenworthy, Anne K.
    TRAFFIC, 2019, 20 (11) : 867 - 880
  • [29] Statistical Analysis of Scanning Fluorescence Correlation Spectroscopy Data Differentiates Free from Hindered Diffusion
    Schneider, Falk
    Waithe, Dominic
    Lagerholm, B. Christoffer
    Shrestha, Dilip
    Sezgin, Erdinc
    Eggeling, Christian
    Fritzsche, Marco
    ACS NANO, 2018, 12 (08) : 8540 - 8546
  • [30] Fluorescence correlation and lifetime correlation spectroscopy applied to the study of supported lipid bilayer models of the cell membrane
    Basit, Hajra
    Lopez, Sergio G.
    Keyes, Tia E.
    METHODS, 2014, 68 (02) : 286 - 299