Literature DB >> 26240176

Vinculin phosphorylation at residues Y100 and Y1065 is required for cellular force transmission.

Vera Auernheimer1, Lena A Lautscham1, Maria Leidenberger2, Oliver Friedrich2, Barbara Kappes2, Ben Fabry1, Wolfgang H Goldmann3.   

Abstract

The focal adhesion protein vinculin connects the actin cytoskeleton, through talin and integrins, with the extracellular matrix. Vinculin consists of a globular head and tail domain, which undergo conformational changes from a closed auto-inhibited conformation in the cytoplasm to an open conformation in focal adhesions. Src-mediated phosphorylation has been suggested to regulate this conformational switch. To explore the role of phosphorylation in vinculin activation, we used knock-out mouse embryonic fibroblasts re-expressing different vinculin mutants in traction microscopy, magnetic tweezer microrheology, FRAP and actin-binding assays. Compared to cells expressing wild-type or constitutively active vinculin, we found reduced tractions, cytoskeletal stiffness, adhesion strength, and increased vinculin dynamics in cells expressing constitutively inactive vinculin or vinculin where Src-mediated phosphorylation was blocked by replacing tyrosine at position 100 and/or 1065 with a non-phosphorylatable phenylalanine residue. Replacing tyrosine residues with phospho-mimicking glutamic acid residues restored cellular tractions, stiffness and adhesion strength, as well as vinculin dynamics, and facilitated vinculin-actin binding. These data demonstrate that Src-mediated phosphorylation is necessary for vinculin activation, and that phosphorylation controls cytoskeletal mechanics by regulating force transmission between the actin cytoskeleton and focal adhesion proteins.
© 2015. Published by The Company of Biologists Ltd.

Entities:  

Keywords:  Actin pulldown; Cell stiffness; FRAP; Focal adhesion; Mechanotransduction; Traction; Tyrosine phosphorylation; Vinculin

Mesh:

Substances:

Year:  2015        PMID: 26240176      PMCID: PMC4582403          DOI: 10.1242/jcs.172031

Source DB:  PubMed          Journal:  J Cell Sci        ISSN: 0021-9533            Impact factor:   5.285


  59 in total

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Journal:  Biochem J       Date:  2002-03-15       Impact factor: 3.857

2.  The ultrastructure of chicken gizzard vinculin as visualized by high-resolution electron microscopy.

Authors:  J Winkler; H Lünsdorf; B M Jockusch
Journal:  J Struct Biol       Date:  1996 Mar-Apr       Impact factor: 2.867

3.  Three-dimensional structure of vinculin bound to actin filaments.

Authors:  Mandy E W Janssen; Eldar Kim; Hongjun Liu; L Miya Fujimoto; Andrey Bobkov; Niels Volkmann; Dorit Hanein
Journal:  Mol Cell       Date:  2006-01-20       Impact factor: 17.970

4.  Head/tail interaction of vinculin influences cell mechanical behavior.

Authors:  Gerold Diez; Vera Auernheimer; Ben Fabry; Wolfgang H Goldmann
Journal:  Biochem Biophys Res Commun       Date:  2011-02-03       Impact factor: 3.575

5.  Differences in elasticity of vinculin-deficient F9 cells measured by magnetometry and atomic force microscopy.

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Journal:  Exp Cell Res       Date:  1998-03-15       Impact factor: 3.905

6.  Serine phosphorylation on position 1033 of vinculin impacts cellular mechanics.

Authors:  Vera Auernheimer; Wolfgang H Goldmann
Journal:  Biochem Biophys Res Commun       Date:  2014-07-01       Impact factor: 3.575

7.  Mechano-coupling and regulation of contractility by the vinculin tail domain.

Authors:  Claudia Tanja Mierke; Philip Kollmannsberger; Daniel Paranhos Zitterbart; James Smith; Ben Fabry; Wolfgang Heinrich Goldmann
Journal:  Biophys J       Date:  2007-09-21       Impact factor: 4.033

8.  F-actin binding site masked by the intramolecular association of vinculin head and tail domains.

Authors:  R P Johnson; S W Craig
Journal:  Nature       Date:  1995-01-19       Impact factor: 49.962

9.  Measuring mechanical tension across vinculin reveals regulation of focal adhesion dynamics.

Authors:  Carsten Grashoff; Brenton D Hoffman; Michael D Brenner; Ruobo Zhou; Maddy Parsons; Michael T Yang; Mark A McLean; Stephen G Sligar; Christopher S Chen; Taekjip Ha; Martin A Schwartz
Journal:  Nature       Date:  2010-07-08       Impact factor: 49.962

10.  Distribution of the cell substratum attachment (CSAT) antigen on myogenic and fibroblastic cells in culture.

Authors:  C H Damsky; K A Knudsen; D Bradley; C A Buck; A F Horwitz
Journal:  J Cell Biol       Date:  1985-05       Impact factor: 10.539

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  24 in total

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Authors:  Korinn N Murphy; Amanda J Brinkworth
Journal:  Int J Mol Sci       Date:  2021-01-29       Impact factor: 5.923

2.  Resolving the cadherin-F-actin connection.

Authors:  Mitchell K L Han; Johan de Rooij
Journal:  Nat Cell Biol       Date:  2016-12-23       Impact factor: 28.824

3.  SHP-2 is activated in response to force on E-cadherin and dephosphorylates vinculin Y822.

Authors:  Hannah Campbell; Christy Heidema; Daisy G Pilarczyk; Kris A DeMali
Journal:  J Cell Sci       Date:  2018-12-14       Impact factor: 5.285

Review 4.  The mechanical regulation of integrin-cadherin crosstalk organizes cells, signaling and forces.

Authors:  Keeley L Mui; Christopher S Chen; Richard K Assoian
Journal:  J Cell Sci       Date:  2016-02-26       Impact factor: 5.285

5.  Molecular Simulations Suggest a Force-Dependent Mechanism of Vinculin Activation.

Authors:  Li Sun; Jeffrey K Noel; Herbert Levine; José N Onuchic
Journal:  Biophys J       Date:  2017-10-17       Impact factor: 4.033

6.  Complete Model of Vinculin Suggests the Mechanism of Activation by Helical Super-Bundle Unfurling.

Authors:  Dominik L Stec; Boguslaw Stec
Journal:  Protein J       Date:  2022-01-10       Impact factor: 2.371

7.  Vinculin Force-Sensitive Dynamics at Focal Adhesions Enable Effective Directed Cell Migration.

Authors:  Katheryn E Rothenberg; David W Scott; Nicolas Christoforou; Brenton D Hoffman
Journal:  Biophys J       Date:  2018-04-10       Impact factor: 4.033

8.  The Role of Hypoxia in Corneal Extracellular Matrix Deposition and Cell Motility.

Authors:  Obianamma E Onochie; Anwuli J Onyejose; Celeste B Rich; Vickery Trinkaus-Randall
Journal:  Anat Rec (Hoboken)       Date:  2019-04-05       Impact factor: 2.064

9.  Vinexin family (SORBS) proteins play different roles in stiffness-sensing and contractile force generation.

Authors:  Takafumi Ichikawa; Masahiro Kita; Tsubasa S Matsui; Ayaka Ichikawa Nagasato; Tomohiko Araki; Shian-Huey Chiang; Takuhito Sezaki; Yasuhisa Kimura; Kazumitsu Ueda; Shinji Deguchi; Alan R Saltiel; Noriyuki Kioka
Journal:  J Cell Sci       Date:  2017-09-01       Impact factor: 5.285

10.  mTORC2 regulates hierarchical micro/nano topography-induced osteogenic differentiation via promoting cell adhesion and cytoskeletal polymerization.

Authors:  Qian Gao; Yuying Hou; Zhe Li; Jinyang Hu; Dawei Huo; Huimin Zheng; Junjiang Zhang; Xiaoyu Yao; Rui Gao; Xudong Wu; Lei Sui
Journal:  J Cell Mol Med       Date:  2021-06-10       Impact factor: 5.310

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