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Updated: Apr 21, 2026

In Vitro Model of Coronary Angiogenesis
Published on: March 10, 2020
The sinus venosus contributes to coronary vasculature through VEGFC-stimulated angiogenesis
Heidi I Chen1, Bikram Sharma1, Brynn N Akerberg2
1Department of Biological Sciences, Stanford University, Stanford, CA 94305, USA.
Insights
Researchers mapped coronary artery development using a new mouse model. Sinus venosus and endocardium contribute distinct vessel populations, with VEGFC crucial for sinus venosus-derived coronary growth.
Area of Science:
- Cardiovascular Biology
- Developmental Biology
- Regenerative Medicine
Background:
- Understanding coronary artery origins is key for heart disease regeneration.
- The contributions of sinus venosus, endocardium, and proepicardium to coronary vessels are unclear.
Purpose of the Study:
- To map the developmental origins of coronary vasculature.
- To elucidate the molecular mechanisms governing coronary development.
Main Methods:
- Utilized an ApjCreER mouse line for lineage tracing of sinus venosus-derived vessels.
- Compared lineage patterns with endocardial and proepicardial contributions.
- Investigated the role of VEGFC in coronary development.
Main Results:
- Demonstrated compartmentalization of coronary development.
- Sinus venosus-derived vessels formed dorsal and lateral coronary arteries, capillaries, and veins.
- Endocardial-derived vessels formed the ventral midline and septal coronary vasculature.
- Proepicardium contributed a smaller, uniformly distributed fraction of vessels.
- VEGFC absence inhibited dorsal/lateral coronary growth but not ventral growth.
Conclusions:
- Propose complementary sinus venosus- and endocardial-derived migratory routes form the coronary vasculature.
- Sinus venosus-derived coronary development requires VEGFC, highlighting its role in tissue-specific blood vessel development.
Abstract:
Identifying coronary artery progenitors and their developmental pathways could inspire novel regenerative treatments for heart disease. Multiple sources of coronary vessels have been proposed, including the sinus venosus (SV), endocardium and proepicardium, but their relative contributions to the coronary circulation and the molecular mechanisms regulating their development are poorly understood. We created an ApjCreER mouse line as a lineage-tracing tool to map SV-derived vessels onto the heart and compared the resulting lineage pattern with endocardial and proepicardial contributions to the coronary circulation. The data showed a striking compartmentalization to coronary development. ApjCreER-traced vessels contributed to a large number of arteries, capillaries and veins on the dorsal and lateral sides of the heart. By contrast, untraced vessels predominated in the midline of the ventral aspect and ventricular septum, which are vessel populations primarily derived from the endocardium. The proepicardium gave rise to a smaller fraction of vessels spaced relatively uniformly throughout the ventricular walls. Dorsal (SV-derived) and ventral (endocardial-derived) coronary vessels developed in response to different growth signals. The absence of VEGFC, which is expressed in the epicardium, dramatically inhibited dorsal and lateral coronary growth but left vessels on the ventral side unaffected. We propose that complementary SV-derived and endocardial-derived migratory routes unite to form the coronary vasculature and that the former requires VEGFC, revealing its role as a tissue-specific mediator of blood endothelial development.
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