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Updated: Jun 28, 2025

In Vitro Model of Coronary Angiogenesis
Published on: March 10, 2020
Contribution of VEGF-B-Induced Endocardial Endothelial Cell Lineage in Physiological Versus Pathological Cardiac
Ibrahim Sultan1,2, Markus Ramste1,2, Pim Peletier1,2
1Wihuri Research Institute (I.S., M.R., P.P., K.A.H., Y.v.W., S.A., P.S., R.K., K.A.), Faculty of Medicine, Biomedicum Helsinki, University of Helsinki, Finland.
Insights
Autocrine vascular endothelial growth factor B (VEGF-B) signaling in the heart leads to septal defects and pathological cardiac hypertrophy by impairing endothelial cell migration. Paracrine VEGF-B promotes beneficial angiogenesis, highlighting differential roles in cardiac health.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Angiogenesis Research
Background:
- Vascular endothelial growth factor B (VEGF-B) shows therapeutic promise for ischemic heart conditions.
- Concerns exist regarding VEGF-B's potential to cause cardiac hypertrophy and adverse effects.
- Understanding VEGF-B's impact on endothelial cell proliferation and migration is crucial for its cardiac applications.
Purpose of the Study:
- To investigate the distinct cardiac effects of autocrine versus paracrine VEGF-B expression.
- To elucidate the role of endothelial cell proliferation and migration in VEGF-B-mediated cardiac outcomes.
- To differentiate beneficial from adverse effects of VEGF-B in the heart.
Main Methods:
- Single-cell RNA sequencing of cardiac endothelial cells in VEGF-B transgenic mouse models.
- Lineage tracing to determine the origin of novel VEGF-B-induced endothelial cell populations.
- Adeno-associated virus-mediated gene delivery to compare VEGF-B isoform effects and cardiac function assessment via echocardiography, MRI, and micro-CT.
Main Results:
- Autocrine VEGF-B (aP2-VEGF-B) impaired capillary formation and caused septal defects, unlike cardiomyocyte-specific VEGF-B.
- Paracrine VEGF-B induced proliferation and migration of endocardium-derived endothelial cells.
- Autocrine VEGF-B promoted endothelial cell proliferation but hindered migration, leading to pathological cardiac hypertrophy and altered vasculature.
Conclusions:
- Both autocrine and paracrine VEGF-B expand specific endocardium-derived endothelial cells.
- Autocrine VEGF-B signaling impairs endothelial cell migration and capillary integration, causing septal defects and pathological cardiac hypertrophy.
- VEGF-B's location of action dictates its angiogenic effects and potential for adverse cardiac remodeling.
Background:
Preclinical studies have shown the therapeutic potential of VEGF-B (vascular endothelial growth factor B) in revascularization of the ischemic myocardium, but the associated cardiac hypertrophy and adverse side effects remain a concern. To understand the importance of endothelial proliferation and migration for the beneficial versus adverse effects of VEGF-B in the heart, we explored the cardiac effects of autocrine versus paracrine VEGF-B expression in transgenic and gene-transduced mice.
Methods:
We used single-cell RNA sequencing to compare cardiac endothelial gene expression in VEGF-B transgenic mouse models. Lineage tracing was used to identify the origin of a VEGF-B-induced novel endothelial cell population and adeno-associated virus-mediated gene delivery to compare the effects of VEGF-B isoforms. Cardiac function was investigated using echocardiography, magnetic resonance imaging, and micro-computed tomography.
Results:
Unlike in physiological cardiac hypertrophy driven by a cardiomyocyte-specific VEGF-B transgene (myosin heavy chain alpha-VEGF-B), autocrine VEGF-B expression in cardiac endothelium (aP2 [adipocyte protein 2]-VEGF-B) was associated with septal defects and failure to increase perfused subendocardial capillaries postnatally. Paracrine VEGF-B led to robust proliferation and myocardial migration of a novel cardiac endothelial cell lineage (VEGF-B-induced endothelial cells) of endocardial origin, whereas autocrine VEGF-B increased proliferation of VEGF-B-induced endothelial cells but failed to promote their migration and efficient contribution to myocardial capillaries. The surviving aP2-VEGF-B offspring showed an altered ratio of secreted VEGF-B isoforms and developed massive pathological cardiac hypertrophy with a distinct cardiac vessel pattern. In the normal heart, we found a small VEGF-B-induced endothelial cell population that was only minimally expanded during myocardial infarction but not during physiological cardiac hypertrophy associated with mouse pregnancy.
Conclusions:
Paracrine and autocrine secretions of VEGF-B induce expansion of a specific endocardium-derived endothelial cell population with distinct angiogenic markers. However, autocrine VEGF-B signaling fails to promote VEGF-B-induced endothelial cell migration and contribution to myocardial capillaries, predisposing to septal defects and inducing a mismatch between angiogenesis and myocardial growth, which results in pathological cardiac hypertrophy.
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