Literature DB >> 26536259

A Combination of Actin Treadmilling and Cross-Linking Drives Contraction of Random Actomyosin Arrays.

Dietmar B Oelz1, Boris Y Rubinstein2, Alex Mogilner3.   

Abstract

We investigate computationally the self-organization and contraction of an initially random actomyosin ring. In the framework of a detailed physical model for a ring of cross-linked actin filaments and myosin-II clusters, we derive the force balance equations and solve them numerically. We find that to contract, actin filaments have to treadmill and to be sufficiently cross linked, and myosin has to be processive. The simulations reveal how contraction scales with mechanochemical parameters. For example, they show that the ring made of longer filaments generates greater force but contracts slower. The model predicts that the ring contracts with a constant rate proportional to the initial ring radius if either myosin is released from the ring during contraction and actin filaments shorten, or if myosin is retained in the ring, while the actin filament number decreases. We demonstrate that a balance of actin nucleation and compression-dependent disassembly can also sustain contraction. Finally, the model demonstrates that with time pattern formation takes place in the ring, worsening the contractile process. The more random the actin dynamics are, the higher the contractility will be.
Copyright © 2015 Biophysical Society. Published by Elsevier Inc. All rights reserved.

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Year:  2015        PMID: 26536259      PMCID: PMC4643270          DOI: 10.1016/j.bpj.2015.09.013

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


  45 in total

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Authors:  Samantha Stam; Jon Alberts; Margaret L Gardel; Edwin Munro
Journal:  Biophys J       Date:  2015-04-21       Impact factor: 4.033

2.  Active multistage coarsening of actin networks driven by myosin motors.

Authors:  Marina Soares e Silva; Martin Depken; Björn Stuhrmann; Marijn Korsten; Fred C MacKintosh; Gijsje H Koenderink
Journal:  Proc Natl Acad Sci U S A       Date:  2011-05-18       Impact factor: 11.205

3.  A viscous two-phase model for contractile actomyosin bundles.

Authors:  Dietmar Oelz
Journal:  J Math Biol       Date:  2013-05-14       Impact factor: 2.259

4.  The emergence of sarcomeric, graded-polarity and spindle-like patterns in bundles of short cytoskeletal polymers and two opposite molecular motors.

Authors:  E M Craig; S Dey; A Mogilner
Journal:  J Phys Condens Matter       Date:  2011-08-23       Impact factor: 2.333

Review 5.  Actin-binding proteins in cell motility.

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6.  Actin depolymerization drives actomyosin ring contraction during budding yeast cytokinesis.

Authors:  Inês Mendes Pinto; Boris Rubinstein; Andrei Kucharavy; Jay R Unruh; Rong Li
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7.  Stress generation by myosin minifilaments in actin bundles.

Authors:  Nilushi L Dasanayake; Anders E Carlsson
Journal:  Phys Biol       Date:  2013-04-17       Impact factor: 2.583

8.  Myosin concentration underlies cell size-dependent scalability of actomyosin ring constriction.

Authors:  Meredith E K Calvert; Graham D Wright; Fong Yew Leong; Keng-Hwee Chiam; Yinxiao Chen; Gregory Jedd; Mohan K Balasubramanian
Journal:  J Cell Biol       Date:  2011-11-28       Impact factor: 10.539

9.  Geometrical and mechanical properties control actin filament organization.

Authors:  Gaëlle Letort; Antonio Z Politi; Hajer Ennomani; Manuel Théry; Francois Nedelec; Laurent Blanchoin
Journal:  PLoS Comput Biol       Date:  2015-05-27       Impact factor: 4.475

10.  Actin cable distribution and dynamics arising from cross-linking, motor pulling, and filament turnover.

Authors:  Haosu Tang; Damien Laporte; Dimitrios Vavylonis
Journal:  Mol Biol Cell       Date:  2014-08-07       Impact factor: 4.138

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  24 in total

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Authors:  Kenneth S Gerien; Jian-Qiu Wu
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Review 2.  Unite to divide - how models and biological experimentation have come together to reveal mechanisms of cytokinesis.

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Journal:  J Cell Sci       Date:  2018-12-18       Impact factor: 5.285

3.  Bond Type and Discretization of Nonmuscle Myosin II Are Critical for Simulated Contractile Dynamics.

Authors:  Daniel B Cortes; Max Gordon; Francois Nédélec; Amy S Maddox
Journal:  Biophys J       Date:  2020-04-21       Impact factor: 4.033

4.  The Actin Cytoskeleton as an Active Adaptive Material.

Authors:  Shiladitya Banerjee; Margaret L Gardel; Ulrich S Schwarz
Journal:  Annu Rev Condens Matter Phys       Date:  2019-12-06       Impact factor: 16.109

5.  Actomyosin contraction, aggregation and traveling waves in a treadmilling actin array.

Authors:  Dietmar Oelz; Alex Mogilner
Journal:  Physica D       Date:  2016-04-01       Impact factor: 2.300

6.  Architecture and Connectivity Govern Actin Network Contractility.

Authors:  Hajer Ennomani; Gaëlle Letort; Christophe Guérin; Jean-Louis Martiel; Wenxiang Cao; François Nédélec; Enrique M De La Cruz; Manuel Théry; Laurent Blanchoin
Journal:  Curr Biol       Date:  2016-02-18       Impact factor: 10.834

7.  Protein friction and filament bending facilitate contraction of disordered actomyosin networks.

Authors:  Alexander K Y Tam; Alex Mogilner; Dietmar B Oelz
Journal:  Biophys J       Date:  2021-08-12       Impact factor: 3.699

Review 8.  Molecular Mechanism of Cytokinesis.

Authors:  Thomas D Pollard; Ben O'Shaughnessy
Journal:  Annu Rev Biochem       Date:  2019-01-16       Impact factor: 23.643

9.  Role of Turnover in Active Stress Generation in a Filament Network.

Authors:  Tetsuya Hiraiwa; Guillaume Salbreux
Journal:  Phys Rev Lett       Date:  2016-05-06       Impact factor: 9.161

10.  MEDYAN: Mechanochemical Simulations of Contraction and Polarity Alignment in Actomyosin Networks.

Authors:  Konstantin Popov; James Komianos; Garegin A Papoian
Journal:  PLoS Comput Biol       Date:  2016-04-27       Impact factor: 4.475

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