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Updated: Jul 11, 2025

Analysis of Coronary Vessels in Cleared Embryonic Hearts
Published on: December 7, 2016
Development of the arterial roots and ventricular outflow tracts
Robert H Anderson1, Wouter H Lamers2, Jill P J M Hikspoors2
1Biosciences Institute, Newcastle University, Newcastle upon Tyne, UK.
Insights
Understanding heart outflow tract development is key. This study reveals a tripartite structure, clarifying the separation into systemic and pulmonary arteries in human and mouse embryos.
Area of Science:
- Developmental Biology
- Cardiovascular Anatomy
- Embryology
Background:
- The separation of the embryonic heart's outflow tract into pulmonary and systemic arteries is incompletely understood.
- Existing descriptions often simplify the developing outflow tract into two parts, overlooking its complex tripartite nature.
Purpose of the Study:
- To elucidate the anatomical changes during outflow tract remodeling.
- To clarify the developmental basis for the tripartite structure of the definitive outflow tract.
Main Methods:
- Analysis of serially sectioned histological datasets from human and mouse embryos.
- High-resolution episcopic microscopy for detailed tissue examination.
- 3D reconstruction of embryonic datasets to visualize tissue contributions.
Main Results:
- The developing outflow tract can be recognized in three parts, correlating with the definitive tripartite structure.
- Valvar swellings and remodeled cardiac jelly cushions contribute to arterial root and subpulmonary infundibulum formation.
- The study details the fusion and muscularization processes forming the subpulmonary infundibulum.
Conclusions:
- The tripartite arrangement of the outflow tract during development is confirmed.
- This study provides a detailed anatomical account of outflow tract septation, enhancing understanding of congenital heart defects.
Abstract:
The separation of the outflow tract of the developing heart into the systemic and pulmonary arterial channels remains controversial and poorly understood. The definitive outflow tracts have three components. The developing outflow tract, in contrast, has usually been described in two parts. When the tract has exclusively myocardial walls, such bipartite description is justified, with an obvious dogleg bend separating proximal and distal components. With the addition of non-myocardial walls distally, it becomes possible to recognise three parts. The middle part, which initially still has myocardial walls, contains within its lumen a pair of intercalated valvar swellings. The swellings interdigitate with the distal ends of major outflow cushions, formed by the remodelling of cardiac jelly, to form the primordiums of the arterial roots. The proximal parts of the major cushions, occupying the proximal part of the outflow tract, which also has myocardial walls, themselves fuse and muscularise. The myocardial shelf thus formed remodels to become the free-standing subpulmonary infundibulum. Details of all these processes are currently lacking. In this account, we describe the anatomical changes seen during the overall remodelling. Our interpretations are based on the interrogation of serially sectioned histological and high-resolution episcopic microscopy datasets prepared from developing human and mouse embryos, with some of the datasets processed and reconstructed to reveal the specific nature of the tissues contributing to the separation of the outflow channels. Our findings confirm that the tripartite postnatal arrangement can be correlated with the changes occurring during development.
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