Literature DB >> 24651116

Modeling crawling cell movement on soft engineered substrates.

Jakob Löber1, Falko Ziebert, Igor S Aranson.   

Abstract

Self-propelled motion, emerging spontaneously or in response to external cues, is a hallmark of living organisms. Systems of self-propelled synthetic particles are also relevant for multiple applications, from targeted drug delivery to the design of self-healing materials. Self-propulsion relies on the force transfer to the surrounding. While self-propelled swimming in the bulk of liquids is fairly well characterized, many open questions remain in our understanding of self-propelled motion along substrates, such as in the case of crawling cells or related biomimetic objects. How is the force transfer organized and how does it interplay with the deformability of the moving object and the substrate? How do the spatially dependent traction distribution and adhesion dynamics give rise to complex cell behavior? How can we engineer a specific cell response on synthetic compliant substrates? Here we generalize our recently developed model for a crawling cell by incorporating locally resolved traction forces and substrate deformations. The model captures the generic structure of the traction force distribution and faithfully reproduces experimental observations, like the response of a cell on a gradient in substrate elasticity (durotaxis). It also exhibits complex modes of cell movement such as "bipedal" motion. Our work may guide experiments on cell traction force microscopy and substrate-based cell sorting and can be helpful for the design of biomimetic "crawlers" and active and reconfigurable self-healing materials.

Entities:  

Mesh:

Year:  2014        PMID: 24651116     DOI: 10.1039/c3sm51597d

Source DB:  PubMed          Journal:  Soft Matter        ISSN: 1744-683X            Impact factor:   3.679


  16 in total

1.  Collective migration under hydrodynamic interactions: a computational approach.

Authors:  W Marth; A Voigt
Journal:  Interface Focus       Date:  2016-10-06       Impact factor: 3.906

2.  Active inter-cellular forces in collective cell motility.

Authors:  Guanming Zhang; Romain Mueller; Amin Doostmohammadi; Julia M Yeomans
Journal:  J R Soc Interface       Date:  2020-08-12       Impact factor: 4.118

3.  A minimal mechanosensing model predicts keratocyte evolution on flexible substrates.

Authors:  Zhiwen Zhang; Phoebus Rosakis; Thomas Y Hou; Guruswami Ravichandran
Journal:  J R Soc Interface       Date:  2020-05-06       Impact factor: 4.118

4.  Crawling and turning in a minimal reaction-diffusion cell motility model: Coupling cell shape and biochemistry.

Authors:  Brian A Camley; Yanxiang Zhao; Bo Li; Herbert Levine; Wouter-Jan Rappel
Journal:  Phys Rev E       Date:  2017-01-05       Impact factor: 2.529

5.  Computational modelling of cell motility modes emerging from cell-matrix adhesion dynamics.

Authors:  Leonie van Steijn; Inge M N Wortel; Clément Sire; Loïc Dupré; Guy Theraulaz; Roeland M H Merks
Journal:  PLoS Comput Biol       Date:  2022-02-14       Impact factor: 4.475

6.  A mesoscale mechanical model of cellular interactions.

Authors:  Kathleen T DiNapoli; Douglas N Robinson; Pablo A Iglesias
Journal:  Biophys J       Date:  2021-10-21       Impact factor: 4.033

7.  Unified multiscale theory of cellular mechanical adaptations to substrate stiffness.

Authors:  Peng-Cheng Chen; Xi-Qiao Feng; Bo Li
Journal:  Biophys J       Date:  2022-08-17       Impact factor: 3.699

8.  Durotaxis by Human Cancer Cells.

Authors:  Brian J DuChez; Andrew D Doyle; Emilios K Dimitriadis; Kenneth M Yamada
Journal:  Biophys J       Date:  2019-01-12       Impact factor: 4.033

Review 9.  Durotaxis: the mechanical control of directed cell migration.

Authors:  Jaime A Espina; Cristian L Marchant; Elias H Barriga
Journal:  FEBS J       Date:  2021-05-07       Impact factor: 5.622

10.  Collisions of deformable cells lead to collective migration.

Authors:  Jakob Löber; Falko Ziebert; Igor S Aranson
Journal:  Sci Rep       Date:  2015-03-17       Impact factor: 4.379

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