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.

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