Literature DB >> 29925032

Transition from Actin-Driven to Water-Driven Cell Migration Depends on External Hydraulic Resistance.

Yizeng Li1, Sean X Sun2.   

Abstract

Cells in vivo can reside in diverse physical and biochemical environments. For example, epithelial cells typically live in a two-dimensional (2D) environment, whereas metastatic cancer cells can move through dense three-dimensional matrices. These distinct environments impose different kinds of mechanical forces on cells and thus potentially can influence the mechanism of cell migration. For example, cell movement on 2D flat surfaces is mostly driven by forces from focal adhesion and actin polymerization, whereas in confined geometries, it can be driven by water permeation. In this work, we utilize a two-phase model of the cellular cytoplasm in which the mechanics of the cytosol and the F-actin network are treated on an equal footing. Using conservation laws and simple force balance considerations, we are able to describe the contributions of water flux, actin polymerization and flow, and focal adhesions to cell migration both on 2D surfaces and in confined spaces. The theory shows how cell migration can seamlessly transition from a focal adhesion- and actin-based mechanism on 2D surfaces to a water-based mechanism in confined geometries.
Copyright © 2018 Biophysical Society. Published by Elsevier Inc. All rights reserved.

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Year:  2018        PMID: 29925032      PMCID: PMC6026332          DOI: 10.1016/j.bpj.2018.04.045

Source DB:  PubMed          Journal:  Biophys J        ISSN: 0006-3495            Impact factor:   4.033


  48 in total

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  14 in total

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5.  Hydraulic resistance induces cell phenotypic transition in confinement.

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6.  Active random forces can drive differential cellular positioning and enhance motor-driven transport.

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7.  Hydrogen, Bicarbonate, and Their Associated Exchangers in Cell Volume Regulation.

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8.  Cell sensing and decision-making in confinement: The role of TRPM7 in a tug of war between hydraulic pressure and cross-sectional area.

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9.  Predicting Confined 1D Cell Migration from Parameters Calibrated to a 2D Motor-Clutch Model.

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