α-Catenin cytomechanics – role in cadherin-dependent adhesion and mechanotransduction
Author(s) -
Adrienne K. Barry,
Hamid Tabdili,
Ismaeel Muhamed,
Jun Wu,
Nitesh Shashikanth,
Guillermo A. Gómez,
Alpha S. Yap,
Cara J. Gottardi,
Johan de Rooij,
Ning Wang,
Deborah Leckband
Publication year - 2014
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.139014
Subject(s) - cadherin , mechanotransduction , vinculin , catenin , biology , microbiology and biotechnology , cell adhesion , adhesion , actin , cytoskeleton , regulator , biophysics , cell , focal adhesion , signal transduction , materials science , biochemistry , wnt signaling pathway , composite material , gene
The findings presented here demonstrate the role of α-catenin in cadherin-based adhesion and mechanotransduction in different mechanical contexts. Bead-twisting measurements in conjunction with imaging, and the use of different cell lines and α-catenin mutants reveal that the acute local mechanical manipulation of cadherin bonds triggers vinculin and actin recruitment to cadherin adhesions in an actin- and α-catenin-dependent manner. The modest effect of α-catenin on the two-dimensional binding affinities of cell surface cadherins further suggests that force-activated adhesion strengthening is due to enhanced cadherin-cytoskeletal interactions rather than to α-catenin-dependent affinity modulation. Complementary investigations of cadherin-based rigidity sensing also suggest that, although α-catenin alters traction force generation, it is not the sole regulator of cell contractility on compliant cadherin-coated substrata.
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