Vimentin regulates Notch signaling strength and arterial remodeling in response to hemodynamic stress
Nicole C . A. van Engeland; Suvi T. Ruohonen; Sandra Loerakker; Daniel Antfolk; John E. Eriksson; Tommaso Ristori; Cecilia M. Sahlgren; Saku Ruohonen; Salla Nuutinen; Carlijn V. C . Bouten; Eriika Savontaus; Rob C. H. Driessen; Oscar M. J. A. Stassen; Adolfo Rivero-Müller; Kayla J. Bayless; Freddy Suarez Rodriguez; Camille L. Duran; Marika Sjöqvist
Vimentin regulates Notch signaling strength and arterial remodeling in response to hemodynamic stress
Nicole C . A. van Engeland
Suvi T. Ruohonen
Sandra Loerakker
Daniel Antfolk
John E. Eriksson
Tommaso Ristori
Cecilia M. Sahlgren
Saku Ruohonen
Salla Nuutinen
Carlijn V. C . Bouten
Eriika Savontaus
Rob C. H. Driessen
Oscar M. J. A. Stassen
Adolfo Rivero-Müller
Kayla J. Bayless
Freddy Suarez Rodriguez
Camille L. Duran
Marika Sjöqvist
NATURE PUBLISHING GROUP
Julkaisun pysyvä osoite on:
https://urn.fi/URN:NBN:fi-fe2021042821920
https://urn.fi/URN:NBN:fi-fe2021042821920
Tiivistelmä
The intermediate filament (IF) cytoskeleton has been proposed to regulate morphogenic processes by integrating the cell fate signaling machinery with mechanical cues. Signaling between endothelial cells (ECs) and vascular smooth muscle cells (VSMCs) through the Notch pathway regulates arterial remodeling in response to changes in blood flow. Here we show that the IF-protein vimentin regulates Notch signaling strength and arterial remodeling in response to hemodynamic forces. Vimentin is important for Notch transactivation by ECs and vimentin knockout mice (VimKO) display disrupted VSMC differentiation and adverse remodeling in aortic explants and in vivo. Shear stress increases Jagged1 levels and Notch activation in a vimentin-dependent manner. Shear stress induces phosphorylation of vimentin at serine 38 and phosphorylated vimentin interacts with Jagged1 and increases Notch activation potential. Reduced Jagged1-Notch transactivation strength disrupts lateral signal induction through the arterial wall leading to adverse remodeling. Taken together we demonstrate that vimentin forms a central part of a mechanochemical transduction pathway that regulates multilayer communication and structural homeostasis of the arterial wall.
Kokoelmat
- Rinnakkaistallenteet [19207]