Connecting local active forces to macroscopic stress in elastic media

被引:15
作者
Ronceray, Pierre [1 ]
Lenz, Martin [1 ]
机构
[1] Univ Paris 11, CNRS, LPTMS, UMR 8626, F-91405 Orsay, France
关键词
CONTRACTILITY; CELLS;
D O I
10.1039/c4sm02526a
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
In contrast with ordinary materials, living matter drives its own motion by generating active, out-of-equilibrium internal stresses. These stresses typically originate from localized active elements embedded in an elastic medium, such as molecular motors inside the cell or contractile cells in a tissue. While many large-scale phenomenological theories of such active media have been developed, a systematic understanding of the emergence of stress from the local force-generating elements is lacking. In this paper, we present a rigorous theoretical framework to study this relationship. We show that the medium's macroscopic active stress tensor is equal to the active elements' force dipole tensor per unit volume in both continuum and discrete linear homogeneous media of arbitrary geometries. This relationship is conserved on average in the presence of disorder, but can be violated in nonlinear elastic media. Such effects can lead to either a reinforcement or an attenuation of the active stresses, giving us a glimpse of the ways in which nature might harness microscopic forces to create active materials.
引用
收藏
页码:1597 / 1605
页数:9
相关论文
共 37 条
[1]   THE PRESSURIZED HOLLOW SPHERE PROBLEM IN FINITE ELASTOSTATICS FOR A CLASS OF COMPRESSIBLE MATERIALS [J].
ABEYARATNE, R ;
HORGAN, CO .
INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 1984, 20 (08) :715-723
[2]   Remodeling of Fibrous Extracellular Matrices by Contractile Cells: Predictions from Discrete Fiber Network Simulations [J].
Abhilash, A. S. ;
Baker, Brendon M. ;
Trappmann, Britta ;
Chen, Christopher S. ;
Shenoy, Vivek B. .
BIOPHYSICAL JOURNAL, 2014, 107 (08) :1829-1840
[3]  
Alberts B., 2008, Molecular Biology of the Cell, V5th
[4]   Morphology of the lamellipodium and organization of actin filaments at the leading edge of crawling cells [J].
Atilgan, E ;
Wirtz, D ;
Sun, SX .
BIOPHYSICAL JOURNAL, 2005, 89 (05) :3589-3602
[5]   A quantitative analysis of contractility in active cytoskeletal protein networks [J].
Bendix, Paul M. ;
Koenderink, Glisje H. ;
Cuvelier, Damien ;
Dogic, Zvonimir ;
Koeleman, Bernard N. ;
Brieher, William M. ;
Field, Christine M. ;
Mahadevan, L. ;
Weitz, David A. .
BIOPHYSICAL JOURNAL, 2008, 94 (08) :3126-3136
[6]   Modeling semiflexible polymer networks [J].
Broedersz, C. P. ;
MacKintosh, F. C. .
REVIEWS OF MODERN PHYSICS, 2014, 86 (03) :995-1036
[7]   Molecular motors stiffen non-affine semiflexible polymer networks [J].
Broedersz, C. P. ;
MacKintosh, F. C. .
SOFT MATTER, 2011, 7 (07) :3186-3191
[8]   Contractile stress generation by actomyosin gels [J].
Carlsson, A. E. .
PHYSICAL REVIEW E, 2006, 74 (05)
[9]   Stress generation by myosin minifilaments in actin bundles [J].
Dasanayake, Nilushi L. ;
Carlsson, Anders E. .
PHYSICAL BIOLOGY, 2013, 10 (03)
[10]   General Mechanism of Actomyosin Contractility [J].
Dasanayake, Nilushi L. ;
Michalski, Paul J. ;
Carlsson, Anders E. .
PHYSICAL REVIEW LETTERS, 2011, 107 (11)