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Updated: Apr 14, 2026

Assessing Stem Cell DNA Integrity for Cardiac Cell Therapy
Published on: January 25, 2019
DNA damage response in neonatal and adult stromal cells compared with induced pluripotent stem cells
Stefanie Liedtke1, Sophie Biebernick1, Teja Falk Radke1
1Institute for Transplantation Diagnostics and Cell Therapeutics and Institute of Toxicology, Heinrich-Heine-University Medical Center, Düsseldorf, Germany; Department Cell and Developmental Biology, Max Planck Institute for Molecular Biomedicine, Münster, Germany.
Insights
Induced pluripotent stem cells (iPSCs) show higher sensitivity to DNA damage compared to neonatal and adult stromal cells. This highlights the need for age-matched cells in drug safety testing.
Area of Science:
- Cell biology
- Toxicology
- Genetics
Background:
- Developing in vitro drug safety testing requires age-matched cell models.
- DNA damage response (DDR) varies across cell types and developmental stages.
Purpose of the Study:
- To compare DDR in induced pluripotent stem cells (iPSCs) with neonatal and adult stromal cells.
- To assess the impact of genotoxic stress on stromal cell differentiation.
Main Methods:
- Exposing iPSCs and stromal cells to radiation and N-methyl-N-nitrosourea (MNU).
- Analyzing cytotoxicity, DNA repair foci (phosphorylated ATM and γH2AX), and gene expression via quantitative PCR.
- Investigating genotoxic stress effects during osteogenic differentiation.
Main Results:
- iPSCs exhibited higher sensitivity to MNU than stromal cells.
- Effective DNA repair was observed in all cell types, indicated by foci dynamics.
- iPSCs showed the highest basal expression of DDR and repair genes, followed by neonatal and then adult stromal cells.
- Osteogenic differentiation led to a downregulation of repair genes in stromal cells.
- Genotoxic stress impacted osteogenic differentiation in an agent- and time-dependent manner.
Conclusions:
- Developmental age influences basal DNA damage response and repair gene expression.
- Osteogenic differentiation downregulates DNA repair capacity.
- Age- and differentiation-matched cells are crucial for accurate in vitro drug toxicity testing.
Unlabelled:
Comprehensive analyses comparing individual DNA damage response (DDR) of induced pluripotent stem cells (iPSCs) with neonatal stromal cells with respect to their developmental age are limited. The imperative necessity of providing developmental age-matched cell sources for meaningful toxicological drug safety assessments in replacement of animal-based testing strategies is evident. Here, DDR after radiation or treatment with N-methyl-N-nitrosurea (MNU) was determined in iPSCs compared with neonatal and bone marrow stromal cells. Neonatal and adult stromal cells showed no significant morphologically detectable cytotoxicity following treatment with 1 Gy or 1 mM MNU, whereas iPSCs revealed a much higher sensitivity. Foci analyses revealed an effective DNA repair in stromal cell types and iPSCs, as reflected by a rapid formation and disappearance of phosphorylated ATM and γH2AX foci. Furthermore, quantitative polymerase chain reaction analyses revealed the highest basic expression level of DDR and repair-associated genes in iPSCs, followed by neonatal stromal cells and adult stromal cells with the lowest expression levels. In addition, the influence of genotoxic stress prior to and during osteogenic differentiation of neonatal and adult stromal cells was analyzed applying common differentiation procedures. Experiments presented here suggest a developmental age-dependent basic expression level of genes involved in the processing of DNA damage. In addition a differentiation-dependent downregulation of repair genes was observed during osteogenesis. These results strongly support the requirement to provide adequate cell sources for toxicological in vitro drug testing strategies that match to the developmental age and differentiation status of the presumptive target cell of interest.
Significance:
The results obtained in this study advance the understanding of DNA damage processing in human neonatal stromal cells as compared with adult stromal cells and induced pluripotent stem cells (iPSCs). The data suggest developmental age-dependent differences in DNA damage repair capacity. In iPSCs (closest to embryonic stem cells), the highest expression level of DNA damage response and repair genes was found, followed by neonatal stromal cells and adult stromal cells with the lowest overall expression. In addition, a differentiation-dependent downregulation of repair capacity was observed during osteogenic differentiation in neonatal stromal cells. Notably, the impact of genotoxic stress on osteogenic differentiation depended on the time the genotoxic insult took place and, moreover, was agent-specific. These results strongly support the necessity of offering and establishing adequate cell sources for informative toxicological testing matching to the developmental age and differentiation status of the respective cell of interest.
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