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Updated: Mar 17, 2026

Calcification of Vascular Smooth Muscle Cells and Imaging of Aortic Calcification and Inflammation
Published on: May 31, 2016
Development of a Patient-Specific Multi-Scale Model to Understand Atherosclerosis and Calcification Locations:
Mona Alimohammadi1, Cesar Pichardo-Almarza1, Obiekezie Agu2
1Mechanical Engineering, University College London London UK.
Insights
This study introduces a mathematical model to predict atherosclerotic plaque and vascular calcification sites. The model improves prediction accuracy by analyzing hemodynamic factors and patient-specific data.
Area of Science:
- Cardiovascular research
- Biomedical engineering
- Computational fluid dynamics
Background:
- Vascular calcification stiffens the aorta, linked to hypertension and atherosclerosis.
- Atherogenesis is a complex, multifactorial process occurring across multiple scales.
- Predicting atherogenesis sites is crucial for clinical diagnosis and treatment planning.
Purpose of the Study:
- To develop a mathematical model for predicting atherosclerotic plaque and calcification locations.
- To analyze vascular calcification and atherosclerotic areas in an aortic dissection patient.
- To investigate the influence of hemodynamic factors on plaque and calcification distribution.
Main Methods:
- A multi-scale modeling approach coupling fluid-structure interaction simulations with endothelial mechanotransduction.
- Utilizing patient-specific data and state-of-the-art hemodynamic factors as inputs.
- Comparing model predictions with clinical imaging data.
Main Results:
- A significantly improved correlation between elevated hydraulic conductivity/volume flux and the presence of calcification/plaques.
- The HOLMES shear index and a non-Newtonian viscosity model enhanced prediction accuracy compared to traditional indicators.
- Model predictions showed good agreement with clinical imaging data.
Conclusions:
- The proposed mechanistic, multi-scale modeling approach shows promise as a predictive tool for atherogenesis.
- Combined biomechanical/biochemical modeling offers powerful insights into complex vascular phenomena.
- Key hemodynamic parameters play a critical role in the development and distribution of vascular calcification and atherosclerotic plaques.
Abstract:
Vascular calcification results in stiffening of the aorta and is associated with hypertension and atherosclerosis. Atherogenesis is a complex, multifactorial, and systemic process; the result of a number of factors, each operating simultaneously at several spatial and temporal scales. The ability to predict sites of atherogenesis would be of great use to clinicians in order to improve diagnostic and treatment planning. In this paper, we present a mathematical model as a tool to understand why atherosclerotic plaque and calcifications occur in specific locations. This model is then used to analyze vascular calcification and atherosclerotic areas in an aortic dissection patient using a mechanistic, multi-scale modeling approach, coupling patient-specific, fluid-structure interaction simulations with a model of endothelial mechanotransduction. A number of hemodynamic factors based on state-of-the-art literature are used as inputs to the endothelial permeability model, in order to investigate plaque and calcification distributions, which are compared with clinical imaging data. A significantly improved correlation between elevated hydraulic conductivity or volume flux and the presence of calcification and plaques was achieved by using a shear index comprising both mean and oscillatory shear components (HOLMES) and a non-Newtonian viscosity model as inputs, as compared to widely used hemodynamic indicators. The proposed approach shows promise as a predictive tool. The improvements obtained using the combined biomechanical/biochemical modeling approach highlight the benefits of mechanistic modeling as a powerful tool to understand complex phenomena and provides insight into the relative importance of key hemodynamic parameters.
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