Literature DB >> 21046466

Contractility dominates adhesive ligand density in regulating cellular de-adhesion and retraction kinetics.

Shamik Sen1, Win Pin Ng, Sanjay Kumar.   

Abstract

Cells that are enzymatically detached from a solid substrate rapidly round up as the tensile prestress in the cytoskeleton is suddenly unopposed by cell-ECM adhesions. We recently showed that this retraction follows sigmoidal kinetics with time constants that correlate closely with cortical stiffness values. This raises the promising prospect that these de-adhesion measurements may be used for high-throughput screening of cell mechanical properties; however, an important limitation to doing so is the possibility that the retraction kinetics may also be influenced and potentially rate-limited by the time needed to sever matrix adhesions. In this study, we address this open question by separating contributions of contractility and adhesion to cellular de-adhesion and retraction kinetics. We first develop serum-free conditions under which U373 MG glioma cells can be cultured on substrates of fixed fibronectin density without direct matrix contributions from the medium. We show that while spreading area increases with ECM protein density, cortical stiffness and the time constants of retraction do not. Conversely, addition of lysophosphatidic acid (LPA) to stimulate cell contractility strongly speeds retraction, independent of the initial matrix protein density and LPA's contributions to spreading area. All of these trends hold in serum-rich medium commonly used in tissue culture, with the time constants of retraction much more closely tracking cortical stiffness than adhesive ligand density or cell spreading. These results support the use of cellular de-adhesion measurements to track cellular mechanical properties.

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Year:  2010        PMID: 21046466      PMCID: PMC3069333          DOI: 10.1007/s10439-010-0195-z

Source DB:  PubMed          Journal:  Ann Biomed Eng        ISSN: 0090-6964            Impact factor:   3.934


  29 in total

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  7 in total

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4.  Mechanical Durotactic Environment Enhances Specific Glioblastoma Cell Responses.

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5.  Synergistic modulation of cellular contractility by mixed extracellular matrices.

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6.  Fibronectin-integrin signaling is required for L-glutamine's protection against gut injury.

Authors:  Stefanie Niederlechner; Jelena Klawitter; Christine Baird; Alyssa R Kallweit; Uwe Christians; Paul E Wischmeyer
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7.  Probing cellular mechanoadaptation using cell-substrate de-adhesion dynamics: experiments and model.

Authors:  Soumya S S; Lakshmi Kavitha Sthanam; Ranjith Padinhateeri; Mandar M Inamdar; Shamik Sen
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  7 in total

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