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Updated: May 12, 2026

Analysis of Cardiomyocyte Development using Immunofluorescence in Embryonic Mouse Heart
Published on: March 26, 2015
GDF10 promotes rodent cardiomyocyte maturation during the postnatal period
Maria Uscategui Calderon1, Maria L Spaeth2, Marissa Granitto3
1Molecular and Developmental Biology Graduate Program, Division of Developmental Biology, Cincinnati Children's Hospital Medical Center, University of Cincinnati College of Medicine, Cincinnati, OH, USA; The Heart Institute, Division of Molecular Cardiovascular Biology, Cincinnati Children's Hospital Medical Center, Cincinnati, OH, USA.
Insights
Growth Differentiation Factor 10 (GDF10), produced by cardiac fibroblasts, is crucial for cardiomyocyte maturation after birth. Loss of GDF10 delays heart development, but it normalizes by postnatal day 10.
Area of Science:
- Cardiovascular Biology
- Developmental Biology
- Cell Biology
Background:
- Postnatal heart development involves coordinated maturation of cardiomyocytes and cardiac fibroblasts.
- Cardiac fibroblasts play a role in cardiomyocyte maturation.
- The specific molecular mechanisms mediating this crosstalk are not fully understood.
Purpose of the Study:
- To investigate the role of Growth Differentiation Factor 10 (GDF10), expressed by cardiac fibroblasts, in postnatal heart development.
- To determine GDF10's function in cardiomyocyte maturation, including cell cycle arrest, hypertrophy, and gene expression changes.
Main Methods:
- Utilized neonatal rat ventricular myocyte (NRVM) cultures for in vitro studies.
- Administered GDF10 to NRVMs to assess its effects on cardiomyocyte maturation markers.
- Performed RNA sequencing on GDF10-treated NRVMs.
- Generated Gdf10-null mice to study its in vivo role in postnatal heart development at different time points (P7 and P10).
Main Results:
- GDF10 treatment in NRVMs promoted cardiomyocyte maturation, indicated by increased binucleation, cell size, and expression of mature sarcomeric proteins.
- GDF10 treatment downregulated cell cycle progression genes and upregulated cell cycle inhibitors in NRVMs.
- In vivo, Gdf10 loss delayed cardiomyocyte maturation (cell size, binucleation, gene expression) and prolonged mitotic activity at P7.
- These developmental delays normalized by P10 in Gdf10-null mice.
Conclusions:
- GDF10 is a key mediator of crosstalk between cardiac fibroblasts and cardiomyocytes.
- GDF10 is essential for the timely execution of critical cardiomyocyte maturation steps post-birth.
- This factor influences binucleation, hypertrophy, gene expression of mature sarcomeric isoforms, and cell cycle arrest during the postnatal period.
Abstract:
Cardiomyocytes and cardiac fibroblasts undergo coordinated maturation after birth, and cardiac fibroblasts are required for postnatal cardiomyocyte maturation in mice. Here, we investigate the role of cardiac fibroblast-expressed Growth Differentiation Factor 10 (GDF10) in postnatal heart development. In neonatal mice, Gdf10 is expressed specifically in cardiac fibroblasts, with its highest expression coincident with the onset of cardiomyocyte cell cycle arrest and transition to hypertrophic growth. In neonatal rat ventricular myocyte (NRVM) cultures, GDF10 treatment promotes cardiomyocyte maturation indicated by increased binucleation, downregulation of cell cycle progression genes, and upregulation of cell cycle inhibitor genes. GDF10 treatment leads to an increase in cardiomyocyte cell size, together with increased expression of mature sarcomeric protein isoforms and decreased expression of fetal cardiac genes. RNAsequencing of GDF10-treated NRVM shows an increase in the expression of genes related to myocardial maturation, including upregulation of sodium and potassium channel genes. In vivo, loss of Gdf10 leads to a delay in myocardial maturation indicated by decreased cardiomyocyte cell size and binucleation, as well as increased mitotic activity, at postnatal (P) day 7. Further, induction of mature sarcomeric protein isoform gene expression is delayed, and expression of cell cycle progression genes is prolonged. However, by P10, indicators of cardiomyocyte maturation and mitotic activity are normalized in Gdf10-null hearts relative to controls. Together, these results implicate GDF10 as a novel crosstalk mediator between cardiomyocytes and cardiac fibroblasts, which is required for appropriate timing of cardiomyocyte maturation steps including binucleation, hypertrophy, mature sarcomeric isoform gene expression, and cell cycle arrest in the postnatal period.
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