Literature DB >> 20462375

Actin dynamics: from nanoscale to microscale.

Anders E Carlsson1.   

Abstract

The dynamic nature of actin in cells manifests itself constantly. Polymerization near the cell edge is balanced by depolymerization in the interior, externally induced actin polymerization is followed by depolymerization, and spontaneous oscillations of actin at the cell periphery are frequently seen. I discuss how mathematical modeling relates quantitative measures of actin dynamics to the rates of underlying molecular level processes. The dynamic properties addressed include the rate of actin assembly at the leading edge of a moving cell, the disassembly rates of intracellular actin networks, the polymerization time course in externally stimulated cells, and spontaneous spatiotemporal patterns formed by actin. Although several aspects of actin assembly have been clarified by increasingly sophisticated models, our understanding of rapid actin disassembly is limited, and the origins of nonmonotonic features in externally stimulated actin polymerization remain unclear. Theory has generated several concrete, testable hypotheses for the origins of spontaneous actin waves and cell-edge oscillations. The development and use of more biomimetic systems applicable to the geometry of a cell will be key to obtaining a quantitative understanding of actin dynamics in cells.

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Year:  2010        PMID: 20462375      PMCID: PMC2967719          DOI: 10.1146/annurev.biophys.093008.131207

Source DB:  PubMed          Journal:  Annu Rev Biophys        ISSN: 1936-122X            Impact factor:   12.981


  83 in total

1.  Different WASP family proteins stimulate different Arp2/3 complex-dependent actin-nucleating activities.

Authors:  J Zalevsky; L Lempert; H Kranitz; R D Mullins
Journal:  Curr Biol       Date:  2001-12-11       Impact factor: 10.834

2.  F-actin assembly in Dictyostelium cell locomotion and shape oscillations propagates as a self-organized reaction-diffusion wave.

Authors:  Michael G Vicker
Journal:  FEBS Lett       Date:  2002-01-02       Impact factor: 4.124

3.  Eukaryotic cell locomotion depends on the propagation of self-organized reaction-diffusion waves and oscillations of actin filament assembly.

Authors:  Michael G Vicker
Journal:  Exp Cell Res       Date:  2002-04-15       Impact factor: 3.905

Review 4.  On the edge: modeling protrusion.

Authors:  Alex Mogilner
Journal:  Curr Opin Cell Biol       Date:  2005-11-28       Impact factor: 8.382

Review 5.  Quantitative fluorescent speckle microscopy of cytoskeleton dynamics.

Authors:  Gaudenz Danuser; Clare M Waterman-Storer
Journal:  Annu Rev Biophys Biomol Struct       Date:  2006

6.  Pak3 inhibits local actin filament formation to regulate global cell polarity.

Authors:  Y Asano; A Jiménez-Dalmaroni; T B Liverpool; M C Marchetti; L Giomi; A Kiger; T Duke; B Baum
Journal:  HFSP J       Date:  2009-04-10

7.  Pyrene actin: documentation of the validity of a sensitive assay for actin polymerization.

Authors:  J A Cooper; S B Walker; T D Pollard
Journal:  J Muscle Res Cell Motil       Date:  1983-04       Impact factor: 2.698

8.  Membrane-induced bundling of actin filaments.

Authors:  Allen P Liu; David L Richmond; Lutz Maibaum; Sander Pronk; Phillip L Geissler; Daniel A Fletcher
Journal:  Nat Phys       Date:  2008-08-31       Impact factor: 20.034

9.  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

10.  An actin-based wave generator organizes cell motility.

Authors:  Orion D Weiner; William A Marganski; Lani F Wu; Steven J Altschuler; Marc W Kirschner
Journal:  PLoS Biol       Date:  2007-09       Impact factor: 8.029

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  29 in total

1.  Self-feedback in actin polymerization.

Authors:  Anders E Carlsson
Journal:  Adv Exp Med Biol       Date:  2012       Impact factor: 2.622

Review 2.  The cytoskeleton and neurite initiation.

Authors:  Kevin C Flynn
Journal:  Bioarchitecture       Date:  2013 Jul-Aug

3.  Comparison of [corrected] actin- and glass-supported phospholipid bilayer diffusion coefficients.

Authors:  Sarah M Sterling; Ryan Dawes; Edward S Allgeyer; Sharon L Ashworth; David J Neivandt
Journal:  Biophys J       Date:  2015-04-21       Impact factor: 4.033

4.  Physical microscopic model of proteins under force.

Authors:  Nikolay V Dokholyan
Journal:  J Phys Chem B       Date:  2012-03-15       Impact factor: 2.991

5.  Quantification of fibre polymerization through Fourier space image analysis.

Authors:  Ali Nekouzadeh; Guy M Genin
Journal:  Proc Math Phys Eng Sci       Date:  2011-03-09       Impact factor: 2.704

Review 6.  Emergent complexity of the cytoskeleton: from single filaments to tissue.

Authors:  F Huber; J Schnauß; S Rönicke; P Rauch; K Müller; C Fütterer; J Käs
Journal:  Adv Phys       Date:  2013-03-06       Impact factor: 25.375

Review 7.  Regulation of Cell Behavior by Hydrostatic Pressure.

Authors:  Shaobao Liu; Ru Tao; Ming Wang; Jin Tian; Guy M Genin; Tian Jian Lu; Feng Xu
Journal:  Appl Mech Rev       Date:  2019-07-23       Impact factor: 7.281

8.  A model for intracellular actin waves explored by nonlinear local perturbation analysis.

Authors:  May Anne Mata; Meghan Dutot; Leah Edelstein-Keshet; William R Holmes
Journal:  J Theor Biol       Date:  2013-07-02       Impact factor: 2.691

9.  Regimes of wave type patterning driven by refractory actin feedback: transition from static polarization to dynamic wave behaviour.

Authors:  W R Holmes; A E Carlsson; L Edelstein-Keshet
Journal:  Phys Biol       Date:  2012-07-11       Impact factor: 2.583

10.  Force-mediated cellular anisotropy and plasticity dictate the elongation dynamics of embryos.

Authors:  Chao Fang; Xi Wei; Xueying Shao; Yuan Lin
Journal:  Sci Adv       Date:  2021-06-30       Impact factor: 14.136

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