Signaling mechanisms and dynamics governing the myocardial-epicardial fate switch during human cardiogenesis.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 42497271.
- Also identified by DOI 10.1126/sciadv.aee5316 and PMC identifier 13398490.
- Licence recorded as CC BY-NC.
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Abstract
The signaling mechanisms and developmental dynamics that govern the divergence of myocardial and epicardial lineages during human heart development remain poorly understood. Here, we developed a human pluripotent stem cell-based cardiac development model and employed time-course single-cell RNA sequencing to delineate cardiac lineage specification trajectories. We identified retinoic acid (RA) as a critical fate switch at the cardiac mesoderm stage. RA instructs epicardial lineage commitment of cardiac mesoderm through a primed-epicardium to proepicardium-like population and finally to epicardium, a process requiring precise BMP modulation. Conversely, RA absence directs cardiac mesoderm along a default myocardial pathway, yielding developing and mature cardiomyocytes. Both trajectories are governed by the hierarchical activation of key transcription factors. Our study integrates signaling and dynamics to elucidate the temporal regulatory network of the RA-BMP axis in human cardiac fate determination. These findings provide fundamental insights into human cardiogenesis and a crucial roadmap for modeling heart disease and advancing regenerative strategies.
Medical subject headings
- Pericardium
- Signal Transduction
- Organogenesis
- Myocardium
- Heart