Amb motiu del tancament d'estiu, la validació de documents es reprendrà a partir del 28 d'agost de 2026. Disculpeu les molèsties.
Con motivo del cierre de verano, la validación de documentos se reanudará a partir del 28 de agosto de 2026. Disculpad las molestias
Due to the summer closure, document validation will resume starting August 28, 2026. We apologize for any inconvenience.

Document type

Article

Version

Published version

Publication date

Publication license

cc-by (c) Krishnan, Ramaswamy et al., 2009
Please use this identifier to cite or link to this item: https://hdl.handle.net/2445/44093

Reinforcement versus Fluidization in Cytoskeletal Mechanoresponsiveness

Journal Title

Director/Tutor

Journal ISSN

Volume Title

Abstract

Every adherent eukaryotic cell exerts appreciable traction forces upon its substrate. Moreover, every resident cell within the heart, great vessels, bladder, gut or lung routinely experiences large periodic stretches. As an acute response to such stretches the cytoskeleton can stiffen, increase traction forces and reinforce, as reported by some, or can soften and fluidize, as reported more recently by our laboratory, but in any given circumstance it remains unknown which response might prevail or why. Using a novel nanotechnology, we show here that in loading conditions expected in most physiological circumstances the localized reinforcement response fails to scale up to the level of homogeneous cell stretch; fluidization trumps reinforcement. Whereas the reinforcement response is known to be mediated by upstream mechanosensing and downstream signaling, results presented here show the fluidization response to be altogether novel: it is a direct physical effect of mechanical force acting upon a structural lattice that is soft and fragile. Cytoskeletal softness and fragility, we argue, is consistent with early evolutionary adaptations of the eukaryotic cell to material properties of a soft inert microenvironment.

Citation

Citation

KRISHNAN, Ramaswamy, et al. Reinforcement versus Fluidization in Cytoskeletal Mechanoresponsiveness. PLoS One. 2009. Vol. 4, num. 5, pags. e5486. ISSN 1932-6203. [consulted: 9 of August of 2026]. Available at: https://hdl.handle.net/2445/44093

Export metadata

JSON - METS

Share record