Interplay of actin nematodynamics and anisotropic tension controls endothelial mechanics

Research output: Contribution to journalResearch articleContributedpeer-review

Contributors

  • Claire A. Dessalles - , Ecole Polytechnique, University of Geneva (Author)
  • Nicolas Cuny - , University of Geneva (Author)
  • Arthur Boutillon - , Clusters of Excellence PoL: Physics of Life, Chair of Tissue Dynamics (PoL), Ecole Polytechnique (Author)
  • Paul F. Salipante - , National Institute of Standards and Technology (NIST) (Author)
  • Avin Babataheri - , Ecole Polytechnique (Author)
  • Abdul I. Barakat - , Ecole Polytechnique (Author)
  • Guillaume Salbreux - , University of Geneva (Author)

Abstract

Blood vessels expand and contract actively as they continuously experience dynamic external stresses from blood flow. The mechanical response of the vessel wall is that of a composite material: its mechanical properties depend on its cellular components, which change dynamically as the cells respond to external stress. Mapping the relationship between these underlying cellular processes and emergent tissue mechanics is an ongoing challenge, particularly in endothelial cells. Here we assess the mechanics and cellular dynamics of an endothelial tube using a microstretcher that mimics the native environment of blood vessels. The characterization of the instantaneous monolayer elasticity reveals a strain-stiffening, actin-dependent and substrate-responsive behaviour. After a physiological pressure increase, the tissue displays a fluid-like expansion, with the reorientation of cell shape and actin fibres. We introduce a mechanical model that considers the actin fibres as a network in the nematic phase and couples their dynamics with active and elastic fibre tension. The model accurately describes the response to the pressure of endothelial tubes.

Details

Original languageEnglish
Pages (from-to)999-1008
Number of pages10
JournalNature physics
Volume21
Issue number6
Publication statusPublished - Jun 2025
Peer-reviewedYes

Keywords

ASJC Scopus subject areas