Literature DB >> 34287982

Direct measurement of near-nano-Newton forces developed by self-organizing actomyosin fibers bound α-catenin.

Surabhi Sonam1, Clémence Vigouroux2, Antoine Jégou1, Guillaume Romet-Lemonne1, Christophe Le Clainche2, Benoit Ladoux1, René Marc Mège1.   

Abstract

BACKGROUND INFORMATION: Actin cytoskeleton contractility plays a critical role in morphogenetic processes by generating forces that are then transmitted to cell-cell and cell-ECM adhesion complexes. In turn, mechanical properties of the environment are sensed and transmitted to the cytoskeleton at cell adhesion sites, influencing cellular processes such as cell migration, differentiation and survival. Anchoring of the actomyosin cytoskeleton to adhesion sites is mediated by adaptor proteins such as talin or α-catenin that link F-actin to transmembrane cell adhesion receptors, thereby allowing mechanical coupling between the intracellular and extracellular compartments. Thus, a key issue is to be able to measure the forces generated by actomyosin and transmitted to the adhesion complexes. Approaches developed in cells and those probing single molecule mechanical properties of α-catenin molecules allowed to identify α-catenin, an F-actin binding protein which binds to the cadherin complexes as a major player in cadherin-based mechanotransduction. However, it is still very difficult to bridge intercellular forces measured at cellular levels and those measured at the single-molecule level.
RESULTS: Here, we applied an intermediate approach allowing reconstruction of the actomyosin-α-catenin complex in acellular conditions to probe directly the transmitted forces. For this, we combined micropatterning of purified α-catenin and spontaneous actomyosin network assembly in the presence of G-actin and Myosin II with microforce sensor arrays used so far to measure cell-generated forces.
CONCLUSIONS: Using this method, we show that self-organizing actomyosin bundles bound to micrometric α-catenin patches can apply near-nano-Newton forces. SIGNIFICANCE: Our results pave the way for future studies on molecular/cellular mechanotransduction and mechanosensing.
© 2021 Société Française des Microscopies and Société de Biologie Cellulaire de France. Published by John Wiley & Sons Ltd.

Entities:  

Keywords:  actomyosin; cell-cell adhesion; mechanical force; micro force sensing arrays; α-catenin

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Year:  2021        PMID: 34287982     DOI: 10.1111/boc.202100014

Source DB:  PubMed          Journal:  Biol Cell        ISSN: 0248-4900            Impact factor:   4.458


  1 in total

1.  Effect of high-throughput screening of circRNA01724 on a rat model of myocardial ischemia ventricular arrhythmia.

Authors:  Xiaomin Hu; Dan Wu; Bing Zou; Huiling Xiao; Tao Yang; Chenxi Wang; Hui Zhou; Wen Shen; Chenjie Zhang; Tao Wu
Journal:  J Thorac Dis       Date:  2022-04       Impact factor: 2.895

  1 in total

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