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Updated: Aug 10, 2025

Lumped-Parameter and Finite Element Modeling of Heart Failure with Preserved Ejection Fraction
Published on: February 13, 2021
Combining three independent pathological stressors induces a heart failure with preserved ejection fraction phenotype
Yijia Li1, Hajime Kubo1, Daohai Yu2
1Cardiovascular Research Center, Lewis Katz School of Medicine, Temple University, Philadelphia, Pennsylvania, United States.
Insights
Combining increased calcium (Ca2+) influx, high-fat diet, and l-NAME stressors in mice created a heart failure with preserved ejection fraction (HFpEF) model. This "3-Hit" model, involving cardiomyocyte hypertrophy and fibrosis, aids in testing new HFpEF therapies.
Area of Science:
- Cardiovascular Research
- Molecular Cardiology
- Pathophysiology
Background:
- Heart failure with preserved ejection fraction (HFpEF) pathogenesis remains multifactorial and poorly understood.
- Existing mouse models do not fully recapitulate the complex pathology of HFpEF.
- Transgenic mice with cardiomyocyte-specific inducible Cavβ2a expression exhibit increased Ca2+ handling and modest cardiac changes.
Purpose of the Study:
- To investigate if a transgenic mouse model with altered Ca2+ handling develops HFpEF when subjected to additional stressors.
- To establish a novel "3-Hit" mouse model combining genetic predisposition with environmental challenges for HFpEF research.
- To evaluate the therapeutic potential of a histone deacetylase (HDAC) inhibitor in mitigating HFpEF phenotypes.
Main Methods:
- Generation of a "3-Hit" mouse model by combining a Cavβ2a-transgenic background with high-fat diet and l-NAME administration.
- Monthly echocardiography to assess cardiac function and structure.
- Terminal invasive hemodynamic measurements, organ weight analysis, and cardiac tissue assessment for hypertrophy, fibrosis, and immune cell infiltration.
Main Results:
- The "3-Hit" model (β2a-HFD-LN mice) developed a robust HFpEF phenotype, including diastolic dysfunction, preserved ejection fraction, cardiomyocyte hypertrophy, and myocardial fibrosis.
- Increased atrial natriuretic peptide (ANP) levels and M2-macrophage populations were observed in the HFpEF model.
- Treatment with suberoylanilide hydroxamic acid (SAHA), an HDAC inhibitor, significantly attenuated the HFpEF phenotype.
Conclusions:
- The combination of genetic predisposition (Cavβ2a expression), high-fat diet, and l-NAME reliably induces an HFpEF phenotype in mice.
- Histone deacetylase (HDAC) activity plays a crucial role in mediating cardiomyocyte hypertrophy, fibrosis, and the overall HFpEF pathology.
- This "3-Hit" mouse model provides a valuable platform for preclinical testing of novel therapeutic strategies targeting HFpEF.
Abstract:
Heart failure (HF) with preserved ejection fraction (HFpEF) is defined as HF with an ejection fraction (EF) ≥ 50% and elevated cardiac diastolic filling pressures. The underlying causes of HFpEF are multifactorial and not well-defined. A transgenic mouse with low levels of cardiomyocyte (CM)-specific inducible Cavβ2a expression (β2a-Tg mice) showed increased cytosolic CM Ca2+, and modest levels of CM hypertrophy, and fibrosis. This study aimed to determine if β2a-Tg mice develop an HFpEF phenotype when challenged with two additional stressors, high-fat diet (HFD) and Nω-nitro-l-arginine methyl ester (l-NAME, LN). Four-month-old wild-type (WT) and β2a-Tg mice were given either normal chow (WT-N, β2a-N) or HFD and/or l-NAME (WT-HFD, WT-LN, WT-HFD-LN, β2a-HFD, β2a-LN, and β2a-HFD-LN). Some animals were treated with the histone deacetylase (HDAC) (hypertrophy regulators) inhibitor suberoylanilide hydroxamic acid (SAHA) (β2a-HFD-LN-SAHA). Echocardiography was performed monthly. After 4 mo of treatment, terminal studies were performed including invasive hemodynamics and organs weight measurements. Cardiac tissue was collected. Four months of HFD plus l-NAME treatment did not induce a profound HFpEF phenotype in FVB WT mice. β2a-HFD-LN (3-Hit) mice developed features of HFpEF, including increased atrial natriuretic peptide (ANP) levels, preserved EF, diastolic dysfunction, robust CM hypertrophy, increased M2-macrophage population, and myocardial fibrosis. SAHA reduced the HFpEF phenotype in the 3-Hit mouse model, by attenuating these effects. The 3-Hit mouse model induced a reliable HFpEF phenotype with CM hypertrophy, cardiac fibrosis, and increased M2-macrophage population. This model could be used for identifying and preclinical testing of novel therapeutic strategies.NEW & NOTEWORTHY Our study shows that three independent pathological stressors (increased Ca2+ influx, high-fat diet, and l-NAME) together produce a profound HFpEF phenotype. The primary mechanisms include HDAC-dependent-CM hypertrophy, necrosis, increased M2-macrophage population, fibroblast activation, and myocardial fibrosis. A role for HDAC activation in the HFpEF phenotype was shown in studies with SAHA treatment, which prevented the severe HFpEF phenotype. This "3-Hit" mouse model could be helpful in identifying novel therapeutic strategies to treat HFpEF.
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