Traction Dynamics of Filopodia on Compliant Substrates
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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…
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978
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- 11.07
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- 100%
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- 18
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Authors
2Topics & keywords
Topics
Keywords
- Filopodia
- Clutch
- Myosin
- Traction (geology)
- Stiffness
- Slippage
- Tractive force
- Dynamics (music)
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