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Nanometer Analysis of Cell Spreading on Matrix-coated Surfaces Reveals Two Distinct Cell States and STEPs

Overview
Journal Biophys J
Publisher Cell Press
Specialty Biophysics
Date 2004 Mar 3
PMID 14990505
Citations 88
Authors
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Abstract

When mouse embryonic fibroblasts in suspension contact a matrix-coated surface, they rapidly adhere and spread. Using total internal reflection fluorescence microscopy of dye-loaded fibroblasts to quantify cell-substrate contact, we found that increasing the surface matrix density resulted in faster spreading initiation whereas lamellipodial dynamics during spreading were unaltered. After spreading initiation, most cells spread in an anisotropic manner through stochastic, transient extension periods (STEPs) with approximately 30 STEPs over 10 min to reach an area of 1300 micro m(2) +/- 300 micro m(2). A second mode of spreading, increased in serum-deprived cells, lacked STEPs and spread in a rapid, isotropic manner for 1-4 min. This isotropic mode was characterized by a high rate of area increase, 340 micro m(2)/min with 78% of the cell edge extending. Anisotropic cells spread slower via STEPs, 126 micro m(2)/min with 34% of the edge extending. During the initial 2-4 min of fast, isotropic spreading, centripetal flow of actin was low (0.8 micro m/min) whereas in anisotropic cells it was high from early times (4.7 micro m/min). After initial isotropic spreading, rearward actin movement increased and isotropic cells displayed STEPs similar to anisotropic cells. Thus, the two cell states display dramatically different spreading whereas long-term motility is based on STEPs.

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References
1.
Soll D . The use of computers in understanding how animal cells crawl. Int Rev Cytol. 1995; 163:43-104. View

2.
Pollard T, Borisy G . Cellular motility driven by assembly and disassembly of actin filaments. Cell. 2003; 112(4):453-65. DOI: 10.1016/s0092-8674(03)00120-x. View

3.
Groth T, Altankov G . Studies on cell-biomaterial interaction: role of tyrosine phosphorylation during fibroblast spreading on surfaces varying in wettability. Biomaterials. 1996; 17(12):1227-34. DOI: 10.1016/0142-9612(96)84943-x. View

4.
Choquet D, Felsenfeld D, Sheetz M . Extracellular matrix rigidity causes strengthening of integrin-cytoskeleton linkages. Cell. 1997; 88(1):39-48. DOI: 10.1016/s0092-8674(00)81856-5. View

5.
Dunn G, Zicha D, Fraylich P . Rapid, microtubule-dependent fluctuations of the cell margin. J Cell Sci. 1998; 110 ( Pt 24):3091-8. DOI: 10.1242/jcs.110.24.3091. View