Literature DB >> 28752950

Cell protrusion and retraction driven by fluctuations in actin polymerization: A two-dimensional model.

Gillian L Ryan1,2, Danielle Holz2, Sawako Yamashiro3, Daisuke Taniguchi3, Naoki Watanabe3, Dimitrios Vavylonis2.   

Abstract

Animal cells that spread onto a surface often rely on actin-rich lamellipodial extensions to execute protrusion. Many cell types recently adhered on a two-dimensional substrate exhibit protrusion and retraction of their lamellipodia, even though the cell is not translating. Travelling waves of protrusion have also been observed, similar to those observed in crawling cells. These regular patterns of protrusion and retraction allow quantitative analysis for comparison to mathematical models. The periodic fluctuations in leading edge position of XTC cells have been linked to excitable actin dynamics using a one-dimensional model of actin dynamics, as a function of arc-length along the cell. In this work we extend this earlier model of actin dynamics into two dimensions (along the arc-length and radial directions of the cell) and include a model membrane that protrudes and retracts in response to the changing number of free barbed ends of actin filaments near the membrane. We show that if the polymerization rate at the barbed ends changes in response to changes in their local concentration at the leading edge and/or the opposing force from the cell membrane, the model can reproduce the patterns of membrane protrusion and retraction seen in experiment. We investigate both Brownian ratchet and switch-like force-velocity relationships between the membrane load forces and actin polymerization rate. The switch-like polymerization dynamics recover the observed patterns of protrusion and retraction as well as the fluctuations in F-actin concentration profiles. The model generates predictions for the behavior of cells after local membrane tension perturbations.
© 2017 Wiley Periodicals, Inc.

Entities:  

Keywords:  actin polymerization; cell motility; excitable dynamics; lamellipodium; mathematical modeling

Mesh:

Substances:

Year:  2017        PMID: 28752950      PMCID: PMC5725282          DOI: 10.1002/cm.21389

Source DB:  PubMed          Journal:  Cytoskeleton (Hoboken)        ISSN: 1949-3592


  53 in total

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2.  Modeling of protrusion phenotypes driven by the actin-membrane interaction.

Authors:  Mihaela Enculescu; Mohsen Sabouri-Ghomi; Gaudenz Danuser; Martin Falcke
Journal:  Biophys J       Date:  2010-04-21       Impact factor: 4.033

3.  Dynamics of membranes driven by actin polymerization.

Authors:  Nir S Gov; Ajay Gopinathan
Journal:  Biophys J       Date:  2005-10-20       Impact factor: 4.033

4.  Closing the loop: lamellipodia dynamics from the perspective of front propagation.

Authors:  Yair Adler; Sefi Givli
Journal:  Phys Rev E Stat Nonlin Soft Matter Phys       Date:  2013-10-22

5.  Keratocyte lamellipodial protrusion is characterized by a concave force-velocity relation.

Authors:  Fabian Heinemann; Holger Doschke; Manfred Radmacher
Journal:  Biophys J       Date:  2011-03-16       Impact factor: 4.033

6.  Computational model for amoeboid motion: Coupling membrane and cytosol dynamics.

Authors:  Adrian Moure; Hector Gomez
Journal:  Phys Rev E       Date:  2016-10-26       Impact factor: 2.529

7.  Adhesion-Dependent Wave Generation in Crawling Cells.

Authors:  Erin L Barnhart; Jun Allard; Sunny S Lou; Julie A Theriot; Alex Mogilner
Journal:  Curr Biol       Date:  2016-12-08       Impact factor: 10.834

8.  Membrane waves driven by actin and Myosin.

Authors:  R Shlomovitz; N S Gov
Journal:  Phys Rev Lett       Date:  2007-04-20       Impact factor: 9.161

9.  An adhesion-dependent switch between mechanisms that determine motile cell shape.

Authors:  Erin L Barnhart; Kun-Chun Lee; Kinneret Keren; Alex Mogilner; Julie A Theriot
Journal:  PLoS Biol       Date:  2011-05-03       Impact factor: 8.029

10.  An excitable signal integrator couples to an idling cytoskeletal oscillator to drive cell migration.

Authors:  Chuan-Hsiang Huang; Ming Tang; Changji Shi; Pablo A Iglesias; Peter N Devreotes
Journal:  Nat Cell Biol       Date:  2013-10-20       Impact factor: 28.824

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  7 in total

1.  Thermodynamically consistent treatment of the growth of a biopolymer in the presence of a smooth obstacle interaction potential.

Authors:  F Motahari; A E Carlsson
Journal:  Phys Rev E       Date:  2019-10       Impact factor: 2.529

Review 2.  A Tale of Two States: Normal and Transformed, With and Without Rigidity Sensing.

Authors:  Michael Sheetz
Journal:  Annu Rev Cell Dev Biol       Date:  2019-08-14       Impact factor: 13.827

3.  GSTpi regulates VE-cadherin stabilization through promoting S-glutathionylation of Src.

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4.  Discrete mechanical model of lamellipodial actin network implements molecular clutch mechanism and generates arcs and microspikes.

Authors:  David M Rutkowski; Dimitrios Vavylonis
Journal:  PLoS Comput Biol       Date:  2021-10-18       Impact factor: 4.475

Review 5.  Cell-cell adhesion interface: orthogonal and parallel forces from contraction, protrusion, and retraction.

Authors:  Vivian W Tang
Journal:  F1000Res       Date:  2018-09-25

Review 6.  My various thoughts on actin.

Authors:  Fumio Oosawa
Journal:  Biophys Physicobiol       Date:  2018-07-18

7.  WAVE1 and WAVE2 have distinct and overlapping roles in controlling actin assembly at the leading edge.

Authors:  Qing Tang; Matthias Schaks; Neha Koundinya; Changsong Yang; Luther W Pollard; Tatyana M Svitkina; Klemens Rottner; Bruce L Goode
Journal:  Mol Biol Cell       Date:  2020-07-22       Impact factor: 4.138

  7 in total

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