Arteries grow and remodel in response to mechanical stimuli. Hypertension, for example, results in arterial wall thickening. Cell-cell Notch signaling between vascular smooth muscle cells (VSMCs) is known to be involved in this process, but the underlying mechanisms are still unclear. Here, we investigated whether Notch mechanosensitivity to strain may regulate arterial thickening in hypertension. We developed a multiscale computational framework by coupling a finite element model of arterial mechanics, including residual stress, to an agent-based model of mechanosensitive Notch signaling, to predict VSMC phenotypes as an indicator of growth and remodeling. Our simulations revealed that the sensitivity of Notch to strain at mean blood press...
Blood vessels are dynamic structures whose properties are continuously adapted by resident vascular ...
A computational framework was implemented and validated to better understand the hypertensive artery...
The intermediate filament (IF) cytoskeleton has been proposed to regulate morphogenic processes by i...
Arteries grow and remodel in response to mechanical stimuli. Hypertension, for example, results in a...
Blood vessels grow and remodel in response to mechanical stimuli. Many computational models capture ...
This study couples a Finite Element model for arterial mechanics to an Agent-Based model for mechano...
Hemodynamic forces and Notch signaling are both known as key regulators of arterial remodeling and h...
Mechanical stimuli experienced by vascular smooth muscle cells (VSMCs) and mechanosensitive Notch si...
The final publication is available at Springer via http://dx.doi.org/10.1007/s00466-013-0959-zArteri...
It is well known that arteries grow and remodel in response to mechanical stimuli. Vascular smooth m...
Tissue development and homeostasis are controlled by mechanical cues. Perturbation of the mechanical...
Blood vessels are dynamic structures whose properties are continuously adapted by resident vascular ...
A computational framework was implemented and validated to better understand the hypertensive artery...
The intermediate filament (IF) cytoskeleton has been proposed to regulate morphogenic processes by i...
Arteries grow and remodel in response to mechanical stimuli. Hypertension, for example, results in a...
Blood vessels grow and remodel in response to mechanical stimuli. Many computational models capture ...
This study couples a Finite Element model for arterial mechanics to an Agent-Based model for mechano...
Hemodynamic forces and Notch signaling are both known as key regulators of arterial remodeling and h...
Mechanical stimuli experienced by vascular smooth muscle cells (VSMCs) and mechanosensitive Notch si...
The final publication is available at Springer via http://dx.doi.org/10.1007/s00466-013-0959-zArteri...
It is well known that arteries grow and remodel in response to mechanical stimuli. Vascular smooth m...
Tissue development and homeostasis are controlled by mechanical cues. Perturbation of the mechanical...
Blood vessels are dynamic structures whose properties are continuously adapted by resident vascular ...
A computational framework was implemented and validated to better understand the hypertensive artery...
The intermediate filament (IF) cytoskeleton has been proposed to regulate morphogenic processes by i...