Literature DB >> 22797913

United we stand: integrating the actin cytoskeleton and cell-matrix adhesions in cellular mechanotransduction.

Ulrich S Schwarz1, Margaret L Gardel.   

Abstract

Many essential cellular functions in health and disease are closely linked to the ability of cells to respond to mechanical forces. In the context of cell adhesion to the extracellular matrix, the forces that are generated within the actin cytoskeleton and transmitted through integrin-based focal adhesions are essential for the cellular response to environmental clues, such as the spatial distribution of adhesive ligands or matrix stiffness. Whereas substantial progress has been made in identifying mechanosensitive molecules that can transduce mechanical force into biochemical signals, much less is known about the nature of cytoskeletal force generation and transmission that regulates the magnitude, duration and spatial distribution of forces imposed on these mechanosensitive complexes. By focusing on cell-matrix adhesion to flat elastic substrates, on which traction forces can be measured with high temporal and spatial resolution, we discuss our current understanding of the physical mechanisms that integrate a large range of molecular mechanotransduction events on cellular scales. Physical limits of stability emerge as one important element of the cellular response that complements the structural changes affected by regulatory systems in response to mechanical processes.

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Year:  2012        PMID: 22797913      PMCID: PMC3434863          DOI: 10.1242/jcs.093716

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


  117 in total

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Review 3.  Cell mechanics and the cytoskeleton.

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Review 4.  Tissue cells feel and respond to the stiffness of their substrate.

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5.  Interferometric fluorescent super-resolution microscopy resolves 3D cellular ultrastructure.

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Journal:  Proc Natl Acad Sci U S A       Date:  2009-02-06       Impact factor: 11.205

Review 6.  Coordination and collective properties of molecular motors: theory.

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7.  4D traction force microscopy reveals asymmetric cortical forces in migrating Dictyostelium cells.

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8.  Force generated by actomyosin contraction builds bridges between adhesive contacts.

Authors:  Olivier M Rossier; Nils Gauthier; Nicolas Biais; Wynn Vonnegut; Marc-Antoine Fardin; Philip Avigan; Evan R Heller; Anurag Mathur; Saba Ghassemi; Michael S Koeckert; James C Hone; Michael P Sheetz
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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
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10.  Analysis of the myosin-II-responsive focal adhesion proteome reveals a role for β-Pix in negative regulation of focal adhesion maturation.

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  110 in total

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3.  Morphogenesis can be driven by properly parametrised mechanical feedback.

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4.  Catch me because you can: a mathematical model for mechanosensing.

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Review 6.  Biomechanical relationships between the corneal endothelium and Descemet's membrane.

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7.  Downregulation of calponin 2 contributes to the quiescence of lung macrophages.

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Review 8.  Mechanosignaling in the vasculature: emerging concepts in sensing, transduction and physiological responses.

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9.  Cell shape dynamics reveal balance of elasticity and contractility in peripheral arcs.

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Review 10.  Balancing forces in migration.

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