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Updated: Jul 3, 2026

Computerized Adaptive Testing System of Functional Assessment of Stroke
Published on: January 7, 2019
A comprehensive stroke risk assessment by combining atrial computational fluid dynamics simulations and functional
Alberto Zingaro1,2,3, Zan Ahmad4,5, Eugene Kholmovski4,6
1ADVANCE, Alliance for Cardiovascular Diagnostic and Treatment Innovation, Johns Hopkins University, 3400 N. Charles St., Baltimore, MD, 21218, USA. alberto.zingaro@polimi.it.
Insights
Integrating cardiac magnetic resonance (CMR) and computational fluid dynamics (CFD) improves stroke risk assessment. Combining functional data with patient-specific simulations offers personalized insights, outperforming traditional methods.
Area of Science:
- Cardiovascular Imaging and Hemodynamics
- Biomedical Engineering
- Computational Fluid Dynamics
Background:
- Stroke risk stratification is crucial for intervention, but current models lack personalization.
- Cardiac dynamics play a significant role in stroke etiology.
- Existing risk models often fail to capture individual patient variations.
Purpose of the Study:
- To develop a personalized stroke risk assessment framework.
- To integrate functional data from cardiac magnetic resonance (CMR) with patient-specific computational fluid dynamics (CFD) simulations.
- To enhance the mechanistic understanding of stroke risk by analyzing hemodynamic features.
Main Methods:
- Utilized CINE CMR to compute kinematic features and assess left atrial volumes.
- Incorporated patient-specific atrial displacement into CFD simulations.
- Developed a novel framework for integrating hemodynamic and functional metrics.
Main Results:
- Stroke patients exhibited smaller left atrial volumes.
- Patient-specific atrial motion significantly influenced hemodynamic simulations, challenging rigid wall assumptions.
- Normalizing hemodynamic features by stroke volume, not ejection fraction, clearly differentiated stroke from control cases in the left atrium and appendage.
Conclusions:
- The synergistic fusion of CMR-derived functional data and patient-informed CFD simulations provides a personalized understanding of stroke risk.
- This integrated approach offers superior differentiation between stroke and control cases compared to standalone assessments.
- The findings highlight the clinical significance of motion-informed, personalized risk assessments for improved stroke prediction.
Abstract:
Stroke, a major global health concern often rooted in cardiac dynamics, demands precise risk evaluation for targeted intervention. Current risk models, like the score, often lack the granularity required for personalized predictions. In this study, we present a nuanced and thorough stroke risk assessment by integrating functional insights from cardiac magnetic resonance (CMR) with patient-specific computational fluid dynamics (CFD) simulations. Our cohort, evenly split between control and stroke groups, comprises eight patients. Utilizing CINE CMR, we compute kinematic features, revealing smaller left atrial volumes for stroke patients. The incorporation of patient-specific atrial displacement into our hemodynamic simulations unveils the influence of atrial compliance on the flow fields, emphasizing the importance of LA motion in CFD simulations and challenging the conventional rigid wall assumption in hemodynamics models. Standardizing hemodynamic features with functional metrics enhances the differentiation between stroke and control cases. While standalone assessments provide limited clarity, the synergistic fusion of CMR-derived functional data and patient-informed CFD simulations offers a personalized and mechanistic understanding, distinctly segregating stroke from control cases. Specifically, our investigation reveals a crucial clinical insight: normalizing hemodynamic features based on ejection fraction fails to differentiate between stroke and control patients. Differently, when normalized with stroke volume, a clear and clinically significant distinction emerges and this holds true for both the left atrium and its appendage, providing valuable implications for precise stroke risk assessment in clinical settings. This work introduces a novel framework for seamlessly integrating hemodynamic and functional metrics, laying the groundwork for improved predictive models, and highlighting the significance of motion-informed, personalized risk assessments.
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