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Updated: Jun 11, 2025

En Face Endocardial Cushion Preparation for Planar Morphogenesis Analysis in Mouse Embryos
Published on: July 27, 2022
The pericardium forms as a distinct structure during heart formation
Hannah R Moran1, Obed O Nyarko2, Rebecca O'Rourke1
1Department of Pediatrics, Section of Developmental Biology, University of Colorado School of Medicine, Anschutz Medical Campus, Aurora, CO, USA.
Insights
The pericardium, a sac supporting heart function, originates from anterior mesothelial progenitors in the lateral plate mesoderm, separate from the heart field. This discovery clarifies heart development and links pericardial stiffness to pediatric cardiomyopathies.
Area of Science:
- Developmental Biology
- Cardiovascular Research
- Cell Biology
Background:
- The pericardium, a mesothelial sac, is crucial for heart function, homeostasis, and immune responses.
- Its precise developmental origins have been unclear due to conflicting models.
- Understanding pericardium development is key to understanding heart morphogenesis.
Purpose of the Study:
- To elucidate the developmental origins of the pericardium.
- To identify the progenitor cells and developmental pathways of the pericardium.
- To investigate the link between pericardial properties and pediatric cardiomyopathies.
Main Methods:
- Live imaging and lineage tracking in zebrafish.
- Single-cell transcriptomics of lateral plate mesoderm.
- Machine learning-assisted cell tracking and atomic force microscopy in neonatal rats.
Main Results:
- The pericardium arises from dedicated anterior mesothelial progenitors within the lateral plate mesoderm, distinct from the cardiac heart field.
- Pericardial precursors migrate and fuse to form the pericardial cavity independently of heart tube formation.
- Wnt/β-catenin signaling regulates pericardial cell number, and disrupted Wnt signaling contributes to pericardial stiffness, linked to pediatric dilated cardiomyopathy.
Conclusions:
- Pericardium formation is an independent developmental process integrated into heart morphogenesis.
- Disrupted pericardial tissue properties, such as increased stiffness, are associated with pediatric cardiomyopathies.
- This study provides a new framework for understanding pericardium development and its role in cardiac disease.
Abstract:
The heart integrates diverse cell lineages into a functional unit, including the pericardium, a mesothelial sac that supports heart movement, homeostasis, and immune responses. However, despite its critical roles, the developmental origins of the pericardium remain uncertain due to disparate models. Here, using live imaging, lineage tracking, and single-cell transcriptomics in zebrafish, we find the pericardium forms within the lateral plate mesoderm from dedicated anterior mesothelial progenitors and distinct from the classic heart field. Imaging of transgenic reporters in zebrafish documents lateral plate mesoderm cells that emerge lateral of the classic heart field and among a continuous mesothelial progenitor field. Single-cell transcriptomics and trajectories of hand2-expressing lateral plate mesoderm reveal distinct populations of mesothelial and cardiac precursors, including pericardial precursors that are distinct from the cardiomyocyte lineage. The mesothelial gene expression signature is conserved in mammals and carries over to post-natal development. Light sheet-based live-imaging and machine learning-supported cell tracking documents that during heart tube formation, pericardial precursors that reside at the anterior edge of the heart field migrate anteriorly and medially before fusing, enclosing the embryonic heart to form a single pericardial cavity. Pericardium formation proceeds even upon genetic disruption of heart tube formation, uncoupling the two structures. Canonical Wnt/β-catenin signaling modulates pericardial cell number, resulting in a stretched pericardial epithelium with reduced cell number upon canonical Wnt inhibition. We connect the pathological expression of secreted Wnt antagonists of the SFRP family found in pediatric dilated cardiomyopathy to increased pericardial stiffness: sFRP1 in the presence of increased catecholamines causes cardiomyocyte stiffness in neonatal rats as measured by atomic force microscopy. Altogether, our data integrate pericardium formation as an independent process into heart morphogenesis and connect disrupted pericardial tissue properties such as pericardial stiffness to pediatric cardiomyopathies.
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