Precise measurement of diffusion coefficients using scanning fluorescence correlation spectroscopy

被引:369
作者
Petrasek, Zdenek [1 ]
Schwille, Petra [1 ]
机构
[1] Tech Univ Dresden, Biotechnol Zentrum, Biophys Grp, Dresden, Germany
关键词
D O I
10.1529/biophysj.107.108811
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
We have implemented scanning fluorescence correlation spectroscopy (sFCS) for precise determination of diffusion coefficients of fluorescent molecules in solution. The measurement volume where the molecules are excited, and from which the fluorescence is detected, was scanned in a circle with radius comparable to its size at frequencies 0.5-2 kHz. The scan radius R, determined with high accuracy by careful calibration, provides the spatial measure required for the determination of the diffusion coefficient D, without the need to know the exact size of the measurement volume. The difficulties in the determination of the measurement volume size have limited the application of standard FCS with fixed measurement volume to relative measurements, where the diffusion coefficient is determined by comparison with a standard. We demonstrate, on examples of several common fluorescent dyes, that sFCS can be used to measure D with high precision without a need for a standard. The correct value of D can be determined in the presence of weak photobleaching, and when the measurement volume size is modified, indicating the robustness of the method. The applicability of the presented implementation of sFCS to biological systems in demonstrated on the measurement of the diffusion coefficient of eGFP in the cytoplasm of HeLa cells. With the help of simulations, we find the optimal value of the scan radius R for the experiment.
引用
收藏
页码:1437 / 1448
页数:12
相关论文
共 40 条
[1]  
Amediek A, 2002, SINGLE MOL, V3, P201, DOI 10.1002/1438-5171(200208)3:4<201::AID-SIMO201>3.0.CO
[2]  
2-7
[3]   A dynamic view of cellular processes by in vivo fluorescence auto- and cross-correlation spectroscopy [J].
Bacia, K ;
Schwille, P .
METHODS, 2003, 29 (01) :74-85
[4]   How to determine diffusion coefficients in planar phospholipid systems by confocal fluorescence correlation spectroscopy [J].
Benda, A ;
Benes, M ;
Marecek, V ;
Lhotsky, A ;
Hermens, WT ;
Hof, M .
LANGMUIR, 2003, 19 (10) :4120-4126
[5]   Scanning two-photon fluctuation correlation spectroscopy: Particle counting measurements for detection of molecular aggregation [J].
Berland, KM ;
So, PTC ;
Chen, Y ;
Mantulin, WW ;
Gratton, E .
BIOPHYSICAL JOURNAL, 1996, 71 (01) :410-420
[6]   Spatial fluorescence cross-correlation spectroscopy between core and ring pinholes [J].
Blancquaert, Yoann ;
Delon, Antoine ;
Derouard, Jacques ;
Jaffiol, Rodolphe .
BIOPHOTONICS AND NEW THERAPY FRONTIERS, 2006, 6191
[7]   Diffusion coefficient measurements in microfluidic devices [J].
Culbertson, CT ;
Jacobson, SC ;
Ramsey, JM .
TALANTA, 2002, 56 (02) :365-373
[8]   Two-focus fluorescence correlation spectroscopy: A new tool for accurate and absolute diffusion measurements [J].
Dertinger, Thomas ;
Pacheco, Victor ;
von der Hocht, Iris ;
Hartmann, Rudolf ;
Gregor, Ingo ;
Enderlein, Joerg .
CHEMPHYSCHEM, 2007, 8 (03) :433-443
[9]   Measuring fast dynamics in solutions and cells with a laser scanning microscope [J].
Digman, MA ;
Brown, CM ;
Sengupta, P ;
Wiseman, PW ;
Horwitz, AR ;
Gratton, E .
BIOPHYSICAL JOURNAL, 2005, 89 (02) :1317-1327
[10]  
Dittrich PS, 2001, APPL PHYS B-LASERS O, V73, P829, DOI 10.1007/sO03400100737