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Updated: Aug 23, 2025

Patient-specific Modeling of the Heart: Estimation of Ventricular Fiber Orientations
Published on: January 8, 2013
Rule-based definition of muscle bundles in patient-specific models of the left atrium
Simone Rossi1, Laryssa Abdala1, Andrew Woodward2
1Department of Mathematics, UNC Chapel Hill, Chapel Hill, NC, United States.
Insights
This study introduces a new algorithm for creating personalized atrial fibrillation models. The method accurately reconstructs left atrial fiber architecture, improving stroke risk assessment and treatment planning.
Area of Science:
- Computational modeling
- Cardiac electrophysiology
- Medical imaging analysis
Background:
- Atrial fibrillation (AF) is a prevalent arrhythmia, increasing with age.
- Current stroke risk scores (e.g., CHA2DS2VASc) lack personalization.
- Accurate patient-specific atrial models are crucial for personalized risk assessment and treatment.
Purpose of the Study:
- To develop a semi-automated, rule-based algorithm for generating patient-specific left atrial (LA) fiber orientation.
- To enable more personalized risk stratification and treatment planning for atrial fibrillation patients.
Main Methods:
- A novel algorithm using harmonic equation solutions to decompose LA anatomy into subregions.
- Generation of a two-layer fiber field within each subregion based on solution gradients.
- Validation using nine patient-specific LA models from AF patients with WATCHMAN device implantation, encompassing diverse anatomical variations.
Main Results:
- Successfully reconstructed LA fiber orientation across various patient morphologies, including different left atrial appendage (LAA) and pulmonary vein (PV) configurations.
- Electrophysiology (EP) simulations confirmed the algorithm's utility in capturing complex electrical activation patterns.
- Demonstrated the importance of multi-layer fiber architecture for accurate electrophysiological modeling.
Conclusions:
- The proposed algorithm offers a straightforward, reproducible method for reconstructing LA fiber bundles in diverse anatomies.
- This approach facilitates the creation of personalized computational models for improved AF management.
- The study highlights the significance of detailed atrial fiber architecture in understanding and predicting AF-related events.
Abstract:
Atrial fibrillation (AF) is the most common arrhythmia encountered clinically, and as the population ages, its prevalence is increasing. Although the CHA2DS2 VASc score is the most used risk-stratification system for stroke risk in AF, it lacks personalization. Patient-specific computer models of the atria can facilitate personalized risk assessment and treatment planning. However, a challenge faced in creating such models is the complexity of the atrial muscle arrangement and its influence on the atrial fiber architecture. This work proposes a semi-automated rule-based algorithm to generate the local fiber orientation in the left atrium (LA). We use the solutions of several harmonic equations to decompose the LA anatomy into subregions. Solution gradients define a two-layer fiber field in each subregion. The robustness of our approach is demonstrated by recreating the fiber orientation on nine models of the LA obtained from AF patients who underwent WATCHMAN device implantation. This cohort of patients encompasses a variety of morphology variants of the left atrium, both in terms of the left atrial appendages (LAAs) and the number of pulmonary veins (PVs). We test the fiber construction algorithm by performing electrophysiology (EP) simulations. Furthermore, this study is the first to compare its results with other rule-based algorithms for the LA fiber architecture definition available in the literature. This analysis suggests that a multi-layer fiber architecture is important to capture complex electrical activation patterns. A notable advantage of our approach is the ability to reconstruct the main LA fiber bundles in a variety of morphologies while solving for a small number of harmonic fields, leading to a comparatively straightforward and reproducible approach.
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