Mapping eGFP Oligomer Mobility in Living Cell Nuclei

被引:116
作者
Dross, Nicolas [1 ]
Spriet, Corentin [2 ]
Zwerger, Monika [3 ]
Mueller, Gabriele [1 ]
Waldeck, Waldemar [1 ]
Langowski, Joerg [1 ]
机构
[1] German Canc Res Ctr, Div Biophys Macromol, Heidelberg, Germany
[2] IRI, Parc Haute Borne, Villeneuve Dascq, France
[3] German Canc Res Ctr, Div Funct Cell Biol, Heidelberg, Germany
关键词
D O I
10.1371/journal.pone.0005041
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
Movement of particles in cell nuclei can be affected by viscosity, directed flows, active transport, or the presence of obstacles such as the chromatin network. Here we investigate whether the mobility of small fluorescent proteins is affected by the chromatin density. Diffusion of inert fluorescent proteins was studied in living cell nuclei using fluorescence correlation spectroscopy (FCS) with a two-color confocal scanning detection system. We first present experiments exposing FCS-specific artifacts encountered in live cell studies as well as strategies to prevent them, in particular those arising from the choice of the fluorophore used for calibration of the focal volume, as well as temperature and acquisition conditions used for fluorescence fluctuation measurements. After defining the best acquisition conditions, we show for various human cell lines that the mobility of GFP varies significantly within the cell nucleus, but does not correlate with chromatin density. The intranuclear diffusional mobility strongly depends on protein size: in a series of GFP-oligomers, used as free inert fluorescent tracers, the diffusion coefficient decreased from the monomer to the tetramer much more than expected for molecules free in aqueous solution. Still, the entire intranuclear chromatin network is freely accessible for small proteins up to the size of eGFP-tetramers, regardless of the chromatin density or cell line. Even the densest chromatin regions do not exclude free eGFP-monomers or multimers.
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页数:13
相关论文
共 56 条
[1]   Identification of nuclear localisation sequences in spastin (SPG4) using a novel Tetra-GFP reporter system [J].
Beetz, C ;
Brodhun, M ;
Mountzouris, K ;
Kiehntopf, M ;
Berndt, A ;
Lehnert, D ;
Deufel, T ;
Bastmeyer, M ;
Schickel, J .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2004, 318 (04) :1079-1084
[2]   2-PHOTON FLUORESCENCE CORRELATION SPECTROSCOPY - METHOD AND APPLICATION TO THE INTRACELLULAR ENVIRONMENT [J].
BERLAND, KM ;
SO, PTC ;
GRATTON, E .
BIOPHYSICAL JOURNAL, 1995, 68 (02) :694-701
[3]   Raster image correlation spectroscopy (RICS) for measuring fast protein dynamics and concentrations with a commercial laser scanning confocal microscope [J].
Brown, C. M. ;
Dalal, R. B. ;
Hebert, B. ;
Digman, M. A. ;
Horwitz, A. R. ;
Gratton, E. .
JOURNAL OF MICROSCOPY-OXFORD, 2008, 229 (01) :78-91
[4]  
Bulseco Dylan A, 2003, Methods Cell Biol, V72, P465, DOI 10.1016/S0091-679X(03)72022-6
[5]   A monomeric red fluorescent protein [J].
Campbell, RE ;
Tour, O ;
Palmer, AE ;
Steinbach, PA ;
Baird, GS ;
Zacharias, DA ;
Tsien, RY .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2002, 99 (12) :7877-7882
[6]   Refractive index measurement in viable cells using quantitative phase-amplitude microscopy and confocal microscopy [J].
Curl, CL ;
Bellair, CJ ;
Harris, T ;
Allman, BE ;
Harris, PJ ;
Stewart, AG ;
Roberts, A ;
Nugent, KA ;
Delbridge, LMD .
CYTOMETRY PART A, 2005, 65A (01) :88-92
[7]   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
[8]  
DIGMAN MA, 2007, IMAGE ANAL MED MICRO, P207
[9]  
DROSS N, 2008, Patent No. 2020080108950
[10]   Calibration of probe volume in fluorescence correlation spectroscopy [J].
Gao, Yi ;
Zhong, Zhenming ;
Geng, M. Lei .
APPLIED SPECTROSCOPY, 2007, 61 (09) :956-962