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Updated: Apr 30, 2026

Induction and Validation of Cellular Senescence in Primary Human Cells
Published on: June 20, 2018
Proof of principle: quality control of therapeutic cell preparations using senescence-associated DNA-methylation
Anne Schellenberg, Sébastien Mauen, Carmen Mareike Koch
1Helmholtz-Institute for Biomedical Technology, Stem Cell Biology and Cellular Engineering, RWTH Aachen University Medical School, Pauwelsstrasse 20, 52074 Aachen, Germany. wwagner@ukaachen.de.
Background:
Tracking of replicative senescence is of fundamental relevance in cellular therapy. Cell preparations - such as mesenchymal stromal cells (MSCs) - undergo continuous changes during culture expansion, which is reflected by impaired proliferation and loss of differentiation potential. This process is associated with epigenetic modifications: during in vitro culture, cells acquire senescence-associated DNA methylation (SA-DNAm) changes at specific sites in the genome. We have recently described an Epigenetic-Senescence-Signature that facilitates prediction of the state of cellular aging by analysis of DNAm at six CpG sites (associated with the genes GRM7, CASR, PRAMEF2, SELP, CASP14 and KRTAP13-3), but this has not yet been proven over subsequent passages and with MSCs isolated under good manufacturing practice (GMP) conditions.
Findings:
MSCs were isolated from human bone marrow and GMP-conform expanded for up to 11 passages. Cumulative population doublings (cPDs) and long-term growth curves were calculated based on cell numbers at each passage. Furthermore, 32 cryopreserved aliquots of these cell preparations were retrospectively analyzed using our Epigenetic-Senescence-Signature: DNAm-level was analyzed at six specific CpGs, and the results were used to estimate cPDs, time of culture expansion, and passage numbers. Overall, predicted and real parameters revealed a good correlation, particularly in cPDs. Based on predicted cPDs we could reconstruct long-term growth curves and demonstrated the continuous increase in replicative senescence on molecular level.
Conclusion:
Epigenetic analysis of specific CpG sites in the genome can be used to estimate the state of cellular aging for quality control of therapeutic cell products.
Insights
Tracking cellular aging is crucial for cell therapy. Epigenetic analysis of DNA methylation at specific sites accurately predicts replicative senescence in mesenchymal stromal cells (MSCs) during culture expansion.
Area of Science:
- Cellular biology
- Epigenetics
- Regenerative medicine
Background:
- Replicative senescence impacts cell therapy efficacy, affecting cell proliferation and differentiation.
- Mesenchymal stromal cells (MSCs) undergo epigenetic modifications, including senescence-associated DNA methylation (SA-DNAm), during in vitro culture.
- Previous work identified an Epigenetic-Senescence-Signature for predicting cellular aging, but validation in GMP-grade MSCs across passages was needed.
Purpose of the Study:
- To validate the Epigenetic-Senescence-Signature for predicting cellular aging in GMP-grade MSCs.
- To assess the correlation between predicted and actual cellular aging parameters (cPDs, passage number, culture time).
- To demonstrate the continuous molecular tracking of replicative senescence during cell expansion.
Main Methods:
- Human bone marrow-derived MSCs were expanded under GMP conditions up to 11 passages.
- Cumulative population doublings (cPDs) and growth curves were determined.
- Retrospective analysis of 32 cryopreserved MSC aliquots using the Epigenetic-Senescence-Signature (DNAm analysis at six CpGs).
Main Results:
- A strong correlation was observed between predicted and actual parameters, especially for cPDs.
- The Epigenetic-Senescence-Signature accurately estimated cPDs, culture duration, and passage numbers.
- Reconstructed growth curves confirmed the continuous molecular increase of replicative senescence.
Conclusions:
- Epigenetic analysis of specific CpG sites provides a reliable method for estimating cellular aging.
- This approach can be implemented for quality control of therapeutic cell products.
- The Epigenetic-Senescence-Signature offers a molecular tool to monitor cell therapy product quality.
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