TY - JOUR
T1 - Cell spreading and focal adhesion dynamics are regulated by spacing of integrin ligands
AU - Cavalcanti-Adam, Elisabetta Ada
AU - Volberg, Tova
AU - Micoulet, Alexandre
AU - Kessler, Horst
AU - Geiger, Benjamin
AU - Spatz, Joachim Pius
N1 - Funding Information:
E.A.C.A. is supported by a Marie Curie Intraeuropean Fellowship (EIF) Meif-ct-2003-501883. B.G. holds the E. Neter Chair in Cell and Tumor Biology. This study was supported by a grant from the Deutsche-Israeli Program (DIP), the Landesstiftung Baden-Württemberg, the Max Planck Society, and the STREP Nanocues (EU 6th framework program).
PY - 2007/4
Y1 - 2007/4
N2 - Integrin-mediated adhesion is regulated by multiple features of the adhesive surface, including its chemical composition, topography, and physical properties. In this study we investigated integrin lateral clustering, as a mechanism to control integrin functions, by characterizing the effect of nanoscale variations in the spacing between adhesive RGD ligands on cell spreading, migration, and focal adhesion dynamics. For this purpose, we used nanopatterned surfaces, containing RGD-biofunctionalized gold dots, surrounded by passivated gaps. By varying the spacing between the dots, we modulated the clustering of the associated integrins. We show that cell-surface attachment is not sensitive to pattern density, whereas the formation of stable focal adhesions and persistent spreading is. Thus cells plated on a 108-nm-spaced pattern exhibit delayed spreading with repeated protrusion-retraction cycles compared to cells growing on a 58-nm pattern. Cell motility on these surfaces is erratic and nonpersistent, leaving thin membrane tethers bound to the RGD pattern. Dynamic molecular profiling indicated that the adhesion sites formed with the 108-nm pattern undergo rapid turnover and contain reduced levels of zyxin. These findings indicate that a critical RGD density is essential for the establishment of mature and stable integrin adhesions, which, in turn, induce efficient cell spreading and formation of focal adhesions.
AB - Integrin-mediated adhesion is regulated by multiple features of the adhesive surface, including its chemical composition, topography, and physical properties. In this study we investigated integrin lateral clustering, as a mechanism to control integrin functions, by characterizing the effect of nanoscale variations in the spacing between adhesive RGD ligands on cell spreading, migration, and focal adhesion dynamics. For this purpose, we used nanopatterned surfaces, containing RGD-biofunctionalized gold dots, surrounded by passivated gaps. By varying the spacing between the dots, we modulated the clustering of the associated integrins. We show that cell-surface attachment is not sensitive to pattern density, whereas the formation of stable focal adhesions and persistent spreading is. Thus cells plated on a 108-nm-spaced pattern exhibit delayed spreading with repeated protrusion-retraction cycles compared to cells growing on a 58-nm pattern. Cell motility on these surfaces is erratic and nonpersistent, leaving thin membrane tethers bound to the RGD pattern. Dynamic molecular profiling indicated that the adhesion sites formed with the 108-nm pattern undergo rapid turnover and contain reduced levels of zyxin. These findings indicate that a critical RGD density is essential for the establishment of mature and stable integrin adhesions, which, in turn, induce efficient cell spreading and formation of focal adhesions.
UR - http://www.scopus.com/inward/record.url?scp=34147098381&partnerID=8YFLogxK
U2 - 10.1529/biophysj.106.089730
DO - 10.1529/biophysj.106.089730
M3 - Article
C2 - 17277192
AN - SCOPUS:34147098381
SN - 0006-3495
VL - 92
SP - 2964
EP - 2974
JO - Biophysical Journal
JF - Biophysical Journal
IS - 8
ER -