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Updated: Sep 9, 2025

Lumped-Parameter and Finite Element Modeling of Heart Failure with Preserved Ejection Fraction
Published on: February 13, 2021
A multi-scale finite element method for investigating fiber remodeling in hypertrophic cardiomyopathy
Mohammad Mehri1, Kenneth S Campbell2, Lik Chuan Lee3
1Department of Mechanical and Aerospace Engineering, University of Kentucky, Lexington, KY, USA.
Insights
Hypertrophic cardiomyopathy (HCM) causes significant fiber disarray due to cellular abnormalities, impacting heart function. This study reveals how different cell issues lead to varied disarray patterns, affecting cardiac pumping and highlighting epicardial vulnerability.
Area of Science:
- Cardiovascular Research
- Biomedical Engineering
- Computational Biology
Background:
- Hypertrophic cardiomyopathy (HCM) is characterized by myocardial fiber disarray, a key factor in cardiac dysfunction and heart failure.
- Understanding the link between cellular abnormalities and macroscopic structural changes in HCM is crucial for disease management.
Purpose of the Study:
- To investigate how heterogeneous cellular abnormalities (hypercontractility, hypocontractility, fibrosis) in HCM contribute to myocardial fiber disarray.
- To quantify the impact of these abnormalities on cardiac pumping function using a multiscale modeling framework.
Main Methods:
- Utilized the MyoFE finite element cardiac modeling framework to simulate myofiber and collagen reorientation.
- Employed a stress-based law to predict fiber disarray patterns resulting from distinct cellular perturbations.
- Analyzed the effects of simulated hypercontractility, hypocontractility, and fibrosis on left ventricular (LV) mechanics and function.
Main Results:
- Heterogeneous cellular abnormalities significantly disrupt myocardial mechanics, leading to substantial fiber disarray.
- The pattern and severity of fiber disarray varied based on the specific cellular perturbation.
- Higher fiber disarray was consistently observed near the epicardium compared to the endocardium across all simulated LV models.
- Cardiac performance declined in remodeled LVs, with notable reductions in models exhibiting fibrosis and hypocontractility.
Conclusions:
- HCM-induced cellular abnormalities are major drivers of myocardial fiber disarray, influencing cardiac function.
- The spatial distribution of fiber disarray, particularly epicardial vulnerability, is linked to regional myocardial mechanics.
- These findings offer insights into HCM pathophysiology and provide a basis for developing targeted therapeutic strategies.
Abstract:
A significant hallmark of hypertrophic cardiomyopathy (HCM) is fiber disarray, which is associated with various cardiac events such as heart failure. Quantifying fiber disarray remains critical for understanding the disease's complex pathophysiology. This study investigates the role of heterogeneous HCM-induced cellular abnormalities in the development of fiber disarray and their subsequent impact on cardiac pumping function. Fiber disarray is predicted using a stress-based law to reorient myofibers and collagen within a multiscale finite element cardiac modeling framework, MyoFE. Specifically, the model is used to quantify the distinct impacts of heterogeneous distributions of hypercontractility, hypocontractility, and fibrosis on fiber disarray development and examines their effect on functional characteristics of the heart. Our results show that heterogenous cell level abnormalities highly disrupt the normal mechanics of myocardium and lead to significant fiber disarray. The pattern of disarray varies depending on the specific perturbation, offering valuable insights into the progression of HCM. Despite the random distribution of perturbed regions within the cardiac muscle, significantly higher fiber disarray is observed near the epicardium compared to the endocardium across all perturbed left ventricle (LV) models. This regional difference in fiber disarray, irrespective of perturbation severity, aligns with previous DT-MRI studies, highlighting the role of regional myocardial mechanics in the development of fiber disarray. Furthermore, cardiac performance declined in the remodeled LVs, particularly in those with fibrosis and hypocontractility. These findings provide important insights into the structural and functional consequences of HCM and offer a framework for future investigations into therapeutic interventions targeting cardiac remodeling.
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