Abstract
We have developed a new method for observing cell/substrate contacts of living cells in culture based on the optical excitation of surface plasmons. Surface plasmons are quanta of an electromagnetic wave that travel along the interface between a metal and a dielectric layer. The evanescent field associated with this excitation decays exponentially perpendicular to the interface, on the order of some hundreds of nanometers. Cells were cultured on an aluminum-coated glass prism and illuminated from below with a laser beam. Because the cells interfere with the evanescent field, the intensity of the reflected light, which is projected onto a camera chip, correlates with the cell/substrate distance. Contacts between the cell membrane and the substrate can thus be visualized at high contrast with a vertical resolution in the nanometer range. The lateral resolution along the propagation direction of surface plasmons is given by their lateral momentum, whereas perpendicular to it, the resolution is determined by the optical diffraction limit. For quantitative analysis of cell/substrate distances, cells were imaged at various angles of incidence to obtain locally resolved resonance curves. By comparing our experimental data with theoretical surface plasmon curves we obtained a cell/substrate distance of 160 +/- 10 nm for most parts of the cells. Peripheral lamellipodia, in contrast, formed contacts with a cell substrate/distance of 25 +/- 10 nm.
MeSH Terms
Animals
Biophysical Phenomena
Biophysics
Cell Adhesion
Cells, Cultured
Goldfish
Microscopy/instrumentation,methods
Microscopy, Interference
Neuroglia/cytology
Surface Plasmon Resonance/instrumentation,methods
Surface Properties
Authors & Affiliations
7 authors, click to expand affiliations / ORCID
Giebel K
Faculty for Physics, University of Konstanz, D-78457 Konstanz, Germany.
Bechinger C
Herminghaus S
Riedel M
Leiderer P
Weiland U
Bastmeyer M
References (16)
16 references, click to expand
-
Riding the evanescent wave.
Curr Biol. 1993 Dec 1;3(12):913-5
PMID: 15335835
-
Rapid cellular translocation is related to close contacts formed between various cultured cells and their substrata.
J Cell Sci. 1982 Apr;54:23-34
PMID: 7076724
-
Application of total internal reflection fluorescence microscopy to study cell adhesion to biomaterials.
Biomaterials. 1998 Mar;19(4-5):307-25
PMID: 9677147
-
Fish optic nerve oligodendrocytes support axonal regeneration of fish and mammalian retinal ganglion cells.
Glia. 1993 May;8(1):1-11
PMID: 8509160
-
Cell-to-substrate contacts in living fibroblasts: an interference reflexion study with an evaluation of the technique.
J Cell Sci. 1976 Jun;21(1):129-59
PMID: 932106
-
Quantitative analysis of variable-angle total internal reflection fluorescence microscopy (VA-TIRFM) of cell/substrate contacts.
J Microsc. 1994 Jan;173(Pt 1):39-51
PMID: 8120882
-
The interpretation of interference-reflection images of spread cells: significant contributions from thin peripheral cytoplasm.
J Cell Sci. 1981 Jun;49:237-47
PMID: 7309806
-
Endothelial cell adhesion in real time. Measurements in vitro by tandem scanning confocal image analysis.
J Clin Invest. 1993 Jun;91(6):2640-52
PMID: 8514872
-
Similarities and differences between fish oligodendrocytes and Schwann cells in vitro.
Glia. 1994 Aug;11(4):300-14
PMID: 7960034
-
Quantitative studies of endothelial cell adhesion. Directional remodeling of focal adhesion sites in response to flow forces.
J Clin Invest. 1994 May;93(5):2031-8
PMID: 8182135
-
Using self-assembled monolayers to understand the interactions of man-made surfaces with proteins and cells.
Annu Rev Biophys Biomol Struct. 1996;25:55-78
PMID: 8800464
-
Structural organization of interphase 3T3 fibroblasts studied by total internal reflection fluorescence microscopy.
J Cell Biol. 1985 Apr;100(4):1091-102
PMID: 3980580
-
Interference reflection microscopy in cell biology: methodology and applications.
J Cell Sci. 1985 Apr;75:279-301
PMID: 3900106
-
THE MECHANISM OF ADHESION OF CELLS TO GLASS. A STUDY BY INTERFERENCE REFLECTION MICROSCOPY.
J Cell Biol. 1964 Feb;20:199-215
PMID: 14126869
-
Total internal inflection fluorescent microscopy.
J Microsc. 1983 Jan;129(Pt 1):19-28
PMID: 6827590
-
Tandem scanning reflected-light microscopy of cell-substratum adhesions and stress fibres in Swiss 3T3 cells.
J Cell Sci. 1989 May;93 ( Pt 1):143-6
PMID: 2482294