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Published on: May 13, 2016
Slit-roundabout signaling regulates the development of the cardiac systemic venous return and pericardium
Mathilda T M Mommersteeg1, William D Andrews, Athena R Ypsilanti
1Department of Cell and Developmental Biology, University College London, London, UK.
Insights
The Slit-Roundabout (Robo) pathway is crucial for mammalian heart development, regulating pericardium formation and venous return. Disruptions impact cardiac neural crest cells, leading to pericardial defects.
Area of Science:
- Cardiovascular Biology
- Developmental Biology
- Molecular Signaling
Background:
- The Slit-Roundabout (Robo) signaling pathway is known for its roles in Drosophila heart development.
- Its specific functions in mammalian heart development remain largely uncharacterized.
Purpose of the Study:
- To investigate the role of Slit-Robo signaling in murine pericardium formation.
- To elucidate its involvement in systemic venous return during heart development.
Main Methods:
- Analysis of gene expression for Robo receptors and Slit ligands in developing murine hearts.
- Phenotypic analysis of knockout embryos lacking Robo1, Robo2, or Slit3.
- Ligand binding assays to determine receptor-ligand specificity.
- Assessment of neural crest cell behavior and survival.
Main Results:
- Slit-Robo pathway components are expressed in key cardiac structures.
- Robo1 deficiency caused partial pericardial absence; Robo1/2 double mutants exhibited severe venous and sinus horn defects.
- Slit3 deficiency mirrored defects in caval vein development.
- Slit3 preferentially binds Robo1, and Slit2 binds Robo2.
- Pericardial defects stem from abnormal caval vein positioning and ectopic pericardial cavity formation, linked to impaired neural crest cell migration and survival.
Conclusions:
- A novel Slit-Robo signaling pathway is essential for mammalian heart development, including pericardium formation, sinus horn myocardium, and caval vein alignment.
- Impaired Slit3-Robo1 signaling disrupts cardiac neural crest cell functions, leading to pericardial defects.
Rationale:
The Slit-Roundabout (Robo) signaling pathway has pleiotropic functions during Drosophila heart development. However, its role in mammalian heart development is largely unknown.
Objective:
To analyze the role of Slit-Robo signaling in the formation of the pericardium and the systemic venous return in the murine heart.
Methods And Results:
Expression of genes encoding Robo1 and Robo2 receptors and their ligands Slit2 and Slit3 was found in or around the systemic venous return and pericardium during development. Analysis of embryos lacking Robo1 revealed partial absence of the pericardium, whereas Robo1/2 double mutants additionally showed severely reduced sinus horn myocardium, hypoplastic caval veins, and a persistent left inferior caval vein. Mice lacking Slit3 recapitulated the defects in the myocardialization, alignment, and morphology of the caval veins. Ligand binding assays confirmed Slit3 as the preferred ligand for the Robo1 receptor, whereas Slit2 showed preference for Robo2. Sinus node development was mostly unaffected in all mutants. In addition, we show absence of cross-regulation with previously identified regulators Tbx18 and Wt1. We provide evidence that pericardial defects are created by abnormal localization of the caval veins combined with ectopic pericardial cavity formation. Local increase in neural crest cell death and impaired neural crest adhesive and migratory properties underlie the ectopic pericardium formation.
Conclusions:
A novel Slit-Robo signaling pathway is involved in the development of the pericardium, the sinus horn myocardium, and the alignment of the caval veins. Reduced Slit3 binding in the absence of Robo1, causing impaired cardiac neural crest survival, adhesion, and migration, underlies the pericardial defects.
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