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Published on: June 3, 2014
A multi-scale mechanobiological framework for vibration-induced intimal hyperplasia
Maha Reda1,2,3, Jérôme Chambert4, Emmanuelle Jacquet4
1Electromagnetism, Vibration, Optics Laboratory, Institut national de recherche et de sécurité (INRS), 54500, Vandœuvre-lès-Nancy, France. maha.reda@emse.fr.
Biomechanics and Modeling in Mechanobiology
|August 13, 2026
Summary
Chronic hand-arm vibrations (HAV) can cause intimal hyperplasia by reducing wall shear stress (WSS) in digital arteries. This leads to arterial wall thickening and ECM degradation, increasing stenosis risk.
Area of Science:
- Biomedical Engineering
- Vascular Biology
- Computational Mechanics
Background:
- Intimal hyperplasia is a key process in vascular diseases, regulated by mechanical forces like wall shear stress (WSS) and circumferential stress.
- Hand-arm vibrations (HAV) are suspected to contribute to intimal hyperplasia in digital arteries through altered WSS.
Purpose of the Study:
- To develop and utilize a mechanobiological framework to investigate the impact of HAV on intimal hyperplasia development.
- To simulate the effects of chronic vibration exposure on digital artery mechanics and cellular processes.
Main Methods:
- Coupling an agent-based model (ABM) for cellular/molecular mechanisms with a finite element model (FEM) for arterial mechanics.
- Incorporating WSS as an input reflecting vibration exposure and computing circumferential stresses.
- Calibrating model parameters using experimental data and literature.
Main Results:
- Simulations over 5 years showed negligible impact of arterial wall constitutive laws on stenosis progression.
- Reduced circumferential stress due to arterial wall thickening promoted ECM degradation via matrix metalloproteinase-2.
- The model successfully estimated vibration-induced stenosis rates.
Conclusions:
- Chronic HAV exposure can induce intimal hyperplasia and stenosis by reducing WSS and altering mechanical stresses.
- The developed mechanobiological framework is a valuable tool for studying vibration-induced vascular pathologies.
- The framework can be adapted for diverse biomechanical and pathological contexts of intimal hyperplasia.
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