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Updated: Jun 25, 2025

Modeling and Evaluation of Murine Diabetic Cardiomyopathy Model
Published on: November 29, 2024
Heparanase Stimulation of Physiologic Cardiac Hypertrophy Is Suppressed After Chronic Diabetes, Resulting in Cardiac
Chae Syng Lee1, Rui Shang1, Fulong Wang2
1Faculty of Pharmaceutical Sciences, University of British Columbia, Vancouver, British Columbia, Canada.
Insights
Heparanase overexpression causes physiologic cardiac hypertrophy, but diabetes can shift this to pathologic hypertrophy and heart dysfunction by disrupting metabolic support and cell survival mechanisms.
Area of Science:
- Cardiovascular Biology
- Endocrinology
- Molecular Medicine
Background:
- Endothelial cells regulate coronary smooth muscle tone and cardiomyocyte growth.
- Heparanase, expressed in endothelial cells, remodels the extracellular matrix, promotes angiogenesis, and influences cell survival.
- Heparanase's role in cardiac hypertrophy is not fully understood.
Purpose of the Study:
- To investigate the role of heparanase in cardiac hypertrophy.
- To explore the impact of diabetes on heparanase-mediated cardiac remodeling.
- To determine the transition from physiologic to pathologic cardiac hypertrophy.
Main Methods:
- Global heparanase overexpression in a rat model.
- Cardiomyocyte-specific vascular endothelial growth factor B overexpression.
- Induction of diabetes using streptozotocin.
- Analysis of cardiac gene expression, hypertrophy markers, and heart function.
Main Results:
- Global heparanase overexpression led to physiologic cardiac hypertrophy, potentially via HSPG clustering and neuregulin-1 release.
- Diabetes sensitized the heart to heparanase and neuregulin-1 release, causing pathologic hypertrophy and dysfunction.
- Vascular endothelial growth factor B overexpression also induced physiologic hypertrophy, but diabetes triggered a transition to pathologic changes.
Conclusions:
- Heparanase can induce physiologic cardiac hypertrophy, but its role is context-dependent.
- In the presence of diabetes, impaired cardiac energy generation and cell death pathways lead to a transition from physiologic to pathologic hypertrophy.
- Maintaining cardiac metabolic support and cell survival is crucial for preventing heart dysfunction during hypertrophy.
Abstract:
In addition to controlling smooth muscle tone in coronary vessels, endothelial cells also influence subjacent cardiomyocyte growth. Because heparanase, with exclusive expression in endothelial cells, enables extracellular matrix remodeling, angiogenesis, metabolic reprogramming, and cell survival, it is conceivable that it could also encourage development of cardiac hypertrophy. Global heparanase overexpression resulted in physiologic cardiac hypertrophy, likely an outcome of HSPG clustering and activation of hypertrophic signaling. The heparanase autocrine effect of releasing neuregulin-1 could have also contributed to this overexpression. Hyperglycemia induced by streptozotocin-induced diabetes sensitized the heart to flow-induced release of heparanase and neuregulin-1. Despite this excess secretion, progression of diabetes caused significant gene expression changes related to mitochondrial metabolism and cell death that led to development of pathologic hypertrophy and heart dysfunction. Physiologic cardiac hypertrophy was also observed in rats with cardiomyocyte-specific vascular endothelial growth factor B overexpression. When perfused, hearts from these animals released significantly higher amounts of both heparanase and neuregulin-1. However, subjecting these animals to diabetes triggered robust transcriptome changes related to metabolism and a transition to pathologic hypertrophy. Our data suggest that in the absence of mechanisms that support cardiac energy generation and prevention of cell death, as seen after diabetes, there is a transition from physiologic to pathologic cardiac hypertrophy and a decline in cardiac function.
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