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Updated: Feb 7, 2026

Neonatal Cardiac Scaffolds: Novel Matrices for Regenerative Studies
Published on: November 5, 2016
Cardiac regenerative capacity is age- and disease-dependent in childhood heart disease
Alexandra Traister1, Rachana Patel1, Anita Huang1
1Labatt Family Heart Centre, Hospital for Sick Children, Toronto, Ontario.
Insights
Pediatric heart lesions show robust intrinsic stem cell capacity in the first year of life, declining significantly thereafter. Regenerative therapies using autologous stem cells are most effective in the neonatal period for conditions like hypoplastic left heart syndrome and dilated cardiomyopathy.
Area of Science:
- Regenerative Medicine
- Pediatric Cardiology
- Stem Cell Biology
Background:
- Intrinsic stem cell capacity in pediatric heart lesions is crucial for regenerative medicine.
- Understanding the influence of diagnosis and age on stem cell potential is vital for therapeutic applications.
Purpose of the Study:
- To define the intrinsic stem cell capacity in pediatric heart lesions.
- To investigate the effects of diagnosis and age on stem cell potential.
- To inform evidence-based use of autologous stem cell sources for regenerative therapy.
Main Methods:
- Ventricular explants from pediatric heart lesions (HLHS, TF, DCM, VSD) were cultured in vitro.
- Cardiospheres (C-spheres) were generated to assess endogenous stem cell capacity.
- C-sphere counts and cardiac progenitor cell presence were correlated with patient age, diagnosis, and echocardiographic function.
Main Results:
- Cardiac explants from patients under one year with TF and DCM robustly generated cardiac mesenchymal cells (CMCs) forming C-spheres.
- Beyond one year, cardiac stem cell content significantly reduced in TF, VSD, and DCM patients.
- Stem cell content in HLHS and DCM correlated with echocardiographic function, with better function indicating higher regenerative cellular content.
Conclusions:
- Autologous cardiomyogenic potential in pediatric heart lesions is high in the first year of life and declines afterward.
- Stem cell depletion occurs earlier in HLHS, correlating with ventricular failure onset.
- Regenerative therapies using autologous cells should be implemented neonatally before ventricular failure progresses.
Objective:
We sought to define the intrinsic stem cell capacity in pediatric heart lesions, and the effects of diagnosis and of age, in order to inform evidence-based use of potential autologous stem cell sources for regenerative medicine therapy.
Methods:
Ventricular explants derived from patients with hypoplastic left heart syndrome (HLHS), tetralogy of Fallot (TF), dilated cardiomyopathy (DCM) and ventricular septal defect (VSD) were analyzed following standard in vitro culture conditions, which yielded cardiospheres (C-spheres), indicative of endogenous stem cell capacity. C-sphere counts generated per 5 mm3 tissue explant and the presence of cardiac progenitor cells were correlated to patient age, diagnosis and echocardiographic function.
Results:
Cardiac explants from patients less than one year of age with TF and DCM robustly generated c-kit- and/or vimentin-positive cardiac mesenchymal cells (CMCs), populating spontaneously forming C-spheres. Beyond one year of age, there was a marked reduction or absence of cardiac explant-derivable cardiac stem cell content in patients with TF, VSD and DCM. Stem cell content in HLHS and DCM strongly correlated to the echocardiographic function in the corresponding ventricular chamber, with better echocardiographic function correlating to a more robust regenerative cellular content.
Conclusions:
We conclude that autologous cardiomyogenic potential in pediatric heart lesions is robust during the first year of life and uniformly declines thereafter. Depletion of stem cell content occurs at an earlier age in HLHS with the onset of ventricular failure in a chamber-specific pattern that correlates directly to ventricular dysfunction. These data suggest that regenerative therapies using autologous cellular sources should be implemented in the neonatal period before the potentially rapid onset of single ventricle failure in HLHS or the evolution of biventricular failure in DCM.
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