Dynamic conformational changes in the FERM domain of FAK are involved in focal-adhesion behavior during cell spreading and motility
Author(s) -
Ekaterina Papusheva,
Fernanda Mello de Queiroz,
Jérémie Dalous,
Yunyun Han,
Alessandro Esposito,
Elizabeth A. Jares-Erijmanxa,
Thomas M. Jovin,
Gertrude Bunt
Publication year - 2009
Publication title -
journal of cell science
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.384
H-Index - 278
eISSN - 1477-9137
pISSN - 0021-9533
DOI - 10.1242/jcs.028738
Subject(s) - ferm domain , focal adhesion , ptk2 , microbiology and biotechnology , biology , integrin , protein kinase domain , cell adhesion , extracellular matrix , conformational change , förster resonance energy transfer , signal transduction , biophysics , biochemistry , cell , membrane protein , protein kinase c , mitogen activated protein kinase kinase , physics , integral membrane protein , quantum mechanics , membrane , gene , mutant , fluorescence
Focal adhesion kinase (FAK) controls cellular adhesion and motility processes by its tight link to integrin- and extracellular-matrix-mediated signaling. To explore the dynamics of the regulation of FAK, we constructed a FRET-based probe that visualizes conformational rearrangements of the FERM domain of FAK in living cells. The sensor reports on an integrin-mediated conformational change in FAK following cellular adhesion. The perturbation is kinase-independent and involves the polybasic KAKTLR sequence in the FERM domain. It is manifested by an increased FRET signal and is expressed primarily in focal adhesions, and to a lesser extent in the cytoplasm. The conformational change in the FERM domain of FAK is observed in two consecutive phases during spreading - early and late - and is enriched in fully adhered motile cells at growing and sliding peripheral focal-adhesion sites, but not in stable or retracting focal adhesions. Inhibition of the actomyosin system indicates the involvement of tension signaling induced by Rho-associated kinase, rather than by myosin light-chain kinase, in the modulation of the FERM response. We conclude that the heterogeneous conformation of the FERM domain in focal adhesions of migrating cells reflects a complex regulatory mechanism for FAK that appears to be under the influence of cellular traction forces.
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