Force loading on molecular clutches governs the stability of cell lamellipodia

R Ruihao Xue (Chinese Academy of Sciences Key Laboratory of Mechanical Behavior and Design of Materials, Department of Modern Mechanics, University of Science and Technology of China) L Lezi Kang (Department of Modern Mechanics, University of Science and Technology of China) Y Yonggang Chen (Department of Process Research and Development) H Haoxiang Yang (Department of Modern Mechanics, University of Science and Technology of China) H Hongyuan Jiang (Department of Modern Mechanics, University of Science and Technology of China) Z Ze Gong (Chinese Academy of Sciences Key Laboratory of Mechanical Behavior and Design of Materials, Department of Modern Mechanics, University of Science and Technology of China)

Abstract

Cells use lamellipodia, thin actin-rich membrane protrusions, to probe the mechanical properties of their microenvironment. During mechanosensing, lamellipodia often exhibit dynamic instability in the form of protrusion-retraction cycles. However, how this mechanical instability arises during mechanotransduction remains poorly understood. Here, we develop a minimal mechanochemical model for lamellipodial dynamics that integrates membrane deformation, myosin contractility, and binding kinetics of adhesion molecules (molecular clutches). Through stochastic simulations and analytical mean-field analysis, we demonstrate that both loading rate and force magnitude applied by myosin-driven retrograde flow control the clutch binding kinetics, governing lamellipodial stability and cellular mechanosensing. Specifically, a slow loading rate promotes sustained clutch engagement and traction buildup, while a high force magnitude ruptures bound clutches. Their temporal interplay gives rise to protrusion-retraction cycles in lamellipodia. Furthermore, the model predicts a biphasic response to myosin perturbation, consistent with quantitative experimental observations. Overall, the theoretical model highlights force loading as the key mechanical input driving lamellipodial instability and cellular mechanosensing, advancing our understanding of mechanotransduction during cell spreading.

Article Details

Volume / Issue Vol. 123, Issue 22
Published June 02, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (6)

R

Ruihao Xue

Chinese Academy of Sciences Key Laboratory of Mechanical Behavior and Design of Materials, Department of Modern Mechanics, University of Science and Technology of China

L

Lezi Kang

Department of Modern Mechanics, University of Science and Technology of China

Y

Yonggang Chen

Department of Process Research and Development

H

Haoxiang Yang

Department of Modern Mechanics, University of Science and Technology of China

H

Hongyuan Jiang

Department of Modern Mechanics, University of Science and Technology of China

Z

Ze Gong

Chinese Academy of Sciences Key Laboratory of Mechanical Behavior and Design of Materials, Department of Modern Mechanics, University of Science and Technology of China