Single-cell response to stiffness exhibits muscle-like behavior
- 27 October 2009
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 106 (43) , 18243-18248
- https://doi.org/10.1073/pnas.0903994106
Abstract
Living cells sense the rigidity of their environment and adapt their activity to it. In particular, cells cultured on elastic substrates align their shape and their traction forces along the direction of highest stiffness and preferably migrate towards stiffer regions. Although numerous studies investigated the role of adhesion complexes in rigidity sensing, less is known about the specific contribution of acto-myosin based contractility. Here we used a custom-made single-cell technique to measure the traction force as well as the speed of shortening of isolated myoblasts deflecting microplates of variable stiffness. The rate of force generation increased with increasing stiffness and followed a Hill force-velocity relationship. Hence, cell response to stiffness was similar to muscle adaptation to load, reflecting the force-dependent kinetics of myosin binding to actin. These results reveal an unexpected mechanism of rigidity sensing, whereby the contractile acto-myosin units themselves can act as sensors. This mechanism may translate anisotropy in substrate rigidity into anisotropy in cytoskeletal tension, and could thus coordinate local activity of adhesion complexes and guide cell migration along rigidity gradients.Keywords
This publication has 42 references indexed in Scilit:
- Mechanosensing in actin stress fibers revealed by a close correlation between force and protein localizationJournal of Cell Science, 2009
- Blebbistatin specifically inhibits actin-myosin interaction in mouse cardiac muscleAmerican Journal of Physiology-Cell Physiology, 2007
- Mechanotransduction, asthma and airway smooth muscleDrug Discovery Today: Disease Models, 2007
- Rigidity-driven growth and migration of epithelial cells on microstructured anisotropic substratesProceedings of the National Academy of Sciences, 2007
- Fibronectin Rigidity Response through Fyn and p130Cas Recruitment to the Leading EdgeMolecular Biology of the Cell, 2006
- Local force and geometry sensing regulate cell functionsNature Reviews Molecular Cell Biology, 2006
- Mechanical forces alter zyxin unbinding kinetics within focal adhesions of living cellsJournal of Cellular Physiology, 2005
- Mechanical force mobilizes zyxin from focal adhesions to actin filaments and regulates cytoskeletal reinforcementThe Journal of cell biology, 2005
- Mechanism of Blebbistatin Inhibition of Myosin IIJournal of Biological Chemistry, 2004
- The relation between load and penetration in the axisymmetric boussinesq problem for a punch of arbitrary profileInternational Journal of Engineering Science, 1965