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Traction dynamics of filopodia on compliant substrates.
- Source :
-
Science (New York, N.Y.) [Science] 2008 Dec 12; Vol. 322 (5908), pp. 1687-91. - Publication Year :
- 2008
-
Abstract
- Cells sense the environment's mechanical stiffness to control their own shape, migration, and fate. To better understand stiffness sensing, we constructed a stochastic model of the "motor-clutch" force transmission system, where molecular clutches link F-actin to the substrate and mechanically resist myosin-driven F-actin retrograde flow. The model predicts two distinct regimes: (i) "frictional slippage," with fast retrograde flow and low traction forces on stiff substrates and (ii) oscillatory "load-and-fail" dynamics, with slower retrograde flow and higher traction forces on soft substrates. We experimentally confirmed these model predictions in embryonic chick forebrain neurons by measuring the nanoscale dynamics of single-growth-cone filopodia. Furthermore, we experimentally observed a model-predicted switch in F-actin dynamics around an elastic modulus of 1 kilopascal. Thus, a motor-clutch system inherently senses and responds to the mechanical stiffness of the local environment.
- Subjects :
- Animals
Biomechanical Phenomena
Cell Adhesion
Cells, Cultured
Chick Embryo
Compliance
Computer Simulation
Elastic Modulus
Elasticity
Growth Cones ultrastructure
Models, Biological
Myosin Type II physiology
Neurons physiology
Surface Tension
Actin Cytoskeleton physiology
Actins physiology
Growth Cones physiology
Pseudopodia physiology
Subjects
Details
- Language :
- English
- ISSN :
- 1095-9203
- Volume :
- 322
- Issue :
- 5908
- Database :
- MEDLINE
- Journal :
- Science (New York, N.Y.)
- Publication Type :
- Academic Journal
- Accession number :
- 19074349
- Full Text :
- https://doi.org/10.1126/science.1163595