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A Robust and Subject-Specific Hemodynamic Model of the Lower Limb Based on Noninvasive Arterial Measurements
Laurent Dumas1, Tamara El Bouti2, Didier Lucor3
1Professor Lab. de Mathématiques de Versailles, CNRS, UVSQ, Université Paris-Saclay, Versailles 78035, France
Insights
This study introduces a novel numerical method to assess arterial stiffness, a key predictor of cardiovascular diseases. This approach enables early and reliable diagnosis through noninvasive clinical examination.
Area of Science:
- Biomedical Engineering
- Cardiovascular Research
- Computational Fluid Dynamics
Background:
- Cardiovascular diseases are the leading cause of mortality globally.
- Arterial stiffening is a significant predictor of cardiovascular diseases.
- Experimental measurement of arterial stiffness distribution is challenging.
Purpose of the Study:
- To develop a numerical approach for determining arterial stiffness distribution.
- To create a subject-specific one-dimensional model of the arterial network.
- To enable early and reliable diagnosis of cardiovascular diseases.
Main Methods:
- Utilized a subject-specific one-dimensional model of the arterial network.
- Solved an inverse problem to calibrate arterial stiffness parameters using noninvasive in vivo measurements.
- Performed uncertainty quantification analysis on hemodynamic indices like arterial pulse pressure.
Main Results:
- The numerical approach successfully determined arterial stiffness distribution.
- Uncertainty quantification identified key input parameter contributions to hemodynamic variations.
- Demonstrated robustness and subject-specificity of the model for clinical application.
Conclusions:
- The proposed numerical method offers a robust, subject-specific tool for practitioners.
- Enables early and reliable diagnosis of cardiovascular diseases via noninvasive examination.
- Advances the understanding and assessment of arterial biomechanics in clinical settings.
Abstract:
Cardiovascular diseases are currently the leading cause of mortality in the population of developed countries, due to the constant increase in cardiovascular risk factors, such as high blood pressure, cholesterol, overweight, tobacco use, lack of physical activity, etc. Numerous prospective and retrospective studies have shown that arterial stiffening is a relevant predictor of these diseases. Unfortunately, the arterial stiffness distribution across the human body is difficult to measure experimentally. We propose a numerical approach to determine the arterial stiffness distribution of an arterial network using a subject-specific one-dimensional model. The proposed approach calibrates the optimal parameters of the reduced-order model, including the arterial stiffness, by solving an inverse problem associated with the noninvasive in vivo measurements. An uncertainty quantification analysis has also been carried out to measure the contribution of the model input parameters variability, alone or by interaction with other inputs, to the variation of clinically relevant hemodynamic indices, here the arterial pulse pressure. The results obtained for a lower limb model, demonstrate that the numerical approach presented here can provide a robust and subject-specific tool to the practitioner, allowing an early and reliable diagnosis of cardiovascular diseases based on a noninvasive clinical examination.
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